Mechanical locking system for floor panels

Information

  • Patent Grant
  • 11261608
  • Patent Number
    11,261,608
  • Date Filed
    Tuesday, June 23, 2020
    4 years ago
  • Date Issued
    Tuesday, March 1, 2022
    2 years ago
Abstract
Floor panels are shown, which are provided with a mechanical locking system including a flexible tongue in a displacement groove. The flexible tongue may be formed from the core material of the floor panels and inserted during production into the displacement groove. The locking system may be locked with vertical folding.
Description
TECHNICAL FIELD

The disclosure generally relates to the field of mechanical locking systems for floor panels and building panels. The disclosure shows floorboards, locking systems and production methods.


FIELD OF APPLICATION OF THE INVENTION

Embodiments of the present invention are particularly suitable for use in thin floating floors, which are formed of floor panels which are joined mechanically with a locking system preferably integrated with the floor panel, i.e. mounted at the factory, are made up of one or more upper layers of thermoplastic or thermosetting material or wood veneer, an intermediate core of wood-fibre-based material or plastic material and preferably a lower balancing layer on the rear side of the core. Embodiments of the invention can also be used for joining building panels which preferably contain a board material for instance wall panels, ceilings, furniture components and similar. It may also be used to connect ceramic tiles.


The following description of prior-art technique, problems of known systems and objects and features of embodiments of the invention will therefore, as a non-restrictive example, be aimed above all at this field of application and in particular at floor panels and especially at laminate floors and thin resilient thermoplastic floor panels such as so called luxury vinyl tiles, generally referred to as LVT, formed as rectangular floor panels with long and shorts edges intended to be mechanically joined to each other on both long and short edges.


The long and short edges are mainly used to simplify the description of embodiments of the invention. The panels may be square. Floor panels are generally produced with the surface layer pointing downwards in order to eliminate thickness tolerances of the core material. The major part of the embodiments is shown with the surface pointing upwards in order to simplify the description.


It should be emphasized that embodiments of the invention can be used in any floor panel on long and/or short edges and it may be combined with all types of known locking system on long or short edges that lock the panels in the horizontal and/or vertical direction.


BACKGROUND OF THE INVENTION

Relevant parts of this prior art description are also a part of embodiments of the invention.


Several floor panels on the market are installed in a floating manner with mechanical locking systems formed at the long and short edges. These systems comprise locking means, which lock the panels horizontally and vertically. The mechanical locking systems are usually formed by machining of the core of the panel. Alternatively, parts of the locking system can be formed of a separate material, for instance aluminium or plastic material, which is integrated with the floor panel, i.e. joined with the floor panel in connection with the manufacture thereof.


Laminate flooring usually comprise a 6-8 millimetre, mm, wood based core, a 0.2 mm thick upper decorative surface layer of laminate and a 0.1 mm thick lower balancing layer of laminate, plastic, paper or like material. A laminate surface comprises melamine-impregnated paper. The most common core material is fibreboard with high density and good stability usually called HDF—High Density Fibreboard. The impregnated paper is laminated to the core with heat and pressure. HDF material is hard and has a low flexibility especially in the vertical direction perpendicular to the fibre orientation.


Recently a new type of powder based laminate floors, generally referred to as WFF floors (Wood Fibre Floors), have been introduced. Impregnated paper is replaced with a dry powder mix comprising wood fibres, melamine particles, aluminium oxide and pigments. The powder is applied on an HDF core and cured under heat and pressure. Generally, high quality HDF is used with a high resin content and low water swelling. Advanced decors may be formed by means of digital printing. Water based ink may be injected into the upper surface of the powder or injected in several transparent powder layers prior to pressing such that a very wear resistant 3D-print may be obtained. A digital binder and powder printing generally referred to as the “BAP method” may also be used to create advanced 3D-prints. Pigmented powder, or so-called dry ink, may be bonded in several layers with a digitally applied binder pattern comprising blank ink without pigments. The high wear resistance is often used to produce copies of stone and tiles. Such WFF floors may be rather wide and the material cost for the short edge locking system may be rather high.


LVT flooring with a thickness of 3-6 mm usually comprises a transparent wear layer which may be coated with an ultra-violet, UV, cured polyurethane, PU, lacquer and a decorative plastic foil under the transparent foil. The wear layer and the decorative foil are laminated to one or several core layers comprising a mix of thermoplastic material and mineral fillers. The plastic core is generally soft and very flexible.


Wood Plastic Composite floors, generally referred to as WPC floors, are similar to LVT floors. The core comprises thermosetting material mixed with wood fibre fillers and is generally stronger and much more rigid than the mineral based LVT core.


Thermoplastic material such as polyvinyl chloride, PVC, polypropylene, PP, or polyethylene, PE, may be combined with a mix of wood fibres and mineral particles and this may provide a wide variety of floor panels with different densities and flexibilities.


Moisture resistant HDF with a high resin content, LVT floors and WPC floors comprise stronger and more flexible core materials than conventional HDF based laminate floors and they are generally produced with a lower thickness.


A minimum thickness in several of the above mentioned floor types are mainly required in order to form the locking system. The panel itself is generally strong and flexible and a thickness of about 3-5 mm would in many applications be sufficient but cannot be used since it is not possible to form strong locking systems in such thin floors.


The above mentioned floor types comprise different core materials with different flexibility, density and strengths. Locking systems must be adapted to such different material properties in order to provide a strong and cost efficient locking function.


Definition of Some Terms

In the following text, the visible surface of the installed floor panel is called “front side” or “floor surface”, while the opposite side of the floor panel, facing the sub floor, is called “rear side”. The edge between the front and rear side is called “joint edge”. By “horizontal plane” is meant a plane, which extends parallel to the front side. Immediately juxtaposed upper parts of two adjacent joint edges of two joined floor panels together define a “vertical plane” perpendicular to the horizontal plane. By “vertical locking” is meant locking parallel to the vertical plane. By “horizontal locking” is meant locking parallel to the horizontal plane.


By “up” is meant towards the front side, by “down” towards the rear side, by “inwardly” mainly horizontally towards an inner and centre part of the panel and by “outwardly” mainly horizontally away from the centre part of the panel.


Related Art and Problems Thereof

For mechanical joining of long edges as well as short edges in the vertical and horizontal direction perpendicular to the edges several methods may be used. One of the most used methods is the angle-snap method. The long edges are installed by angling. The short edges are locked by horizontal snapping. The vertical connection is generally a tongue and a groove and the horizontal connection is a strip with a locking element in on edge that cooperates with a locking groove in the adjacent edge. Snapping is obtained with a flexible strip.


Similar locking systems may also be produced with a rigid strip and they are connected with an angling-angling method where both short and long edges are angled into a locked position.


Advanced so-called “fold down locking systems” with a separate and flexible tongue on the short edges have been introduced where both the long and short edges are locked with a single angling action. A floor panel of this type is presented in WO 2006/043893. It discloses a floor panel with a short edge locking system comprising a locking element cooperating with a locking groove, for horizontal locking, and a flexible bow shaped so called “banana tongue” cooperating with a tongue groove, for locking in a vertical direction. The flexible bow shaped tongue is inserted during production into a displacement groove formed at the edge. The tongue bends horizontally along the edge during connection and makes it possible to install the panels by vertical movement. Long edges are connected with angling and a vertical scissor movement caused by the same angling action connects short edges. Such a locking is generally referred to as “vertical folding”.


Similar floor panels are further described in WO 2007/015669. This document provides a fold down locking system with an improved flexible tongue so called “bristle tongue” comprising a straight outer tongue edge over substantially the whole length of the tongue.


An inner part of the tongue comprises bendable protrusions extending horizontally along the tongue edge.


WO 2013/151493 describes a locking system having a tongue that is formed of the material of panel edge and is inserted into a groove in order to form a fold down locking system. It is not described how the tongue should be formed in order to obtain sufficient flexibility and how it should be and inserted into a groove in a cost efficient way.


The separate flexible tongue is a vital part of the fold down locking system. It would be an advantage if the flexible and separate tongue could be produced and inserted into the edge in a more cost efficient way. It would also be an advantage if the width and thickness of the tongue could be reduced such that a fold down locking system may be formed in very thin floor panels.


SUMMARY OF THE INVENTION AND OBJECTS THEREOF

An objective of embodiments of the present invention is to provide an improved and more cost efficient fold down locking system comprising a flexible tongue for primarily adjacent short edges of thin floor panels.


A first specific objective is to provide a separate flexible tongue that is more compact and cost efficient than known tongues and that is suitable for locking thin panels.


A second specific objective is to provide a locking system with a flexible and bendable tongue that may be formed as a simple, straight and rod shaped component.


A third specific objective is to provide a cost efficient method to form an advanced flexible tongue from a core material of a floor panel and to insert the tongue after forming into a groove of the panel, preferably in the same production line.


The above objects, individually or collectively, of the invention may be achieved by embodiments of the invention.


According to a first aspect of the invention a set of essentially identical floor panels is provided with a mechanical locking system comprising a flexible tongue, which is arranged in a displacement groove at a first edge of a first panel and a tongue groove at a second edge of an adjacent second panel. The flexible tongue is configured to cooperate with the tongue groove for locking of the first and the second edge in a vertical direction. The mechanical locking system further comprises a locking strip at the first or the second edge, provided with a locking element configured to cooperate with a locking groove at the other of the first or second edge for locking in a horizontal direction. The flexible tongue is displaceable in the horizontal direction in the displacement groove. An outer part of the flexible tongue comprises two or more curved edge sections each comprising a sliding surface, which is configured to cooperate with the second edge during locking, and a locking surface that is configured to lock into and/or against the tongue groove. The tongue sections are spaced from each other in a length direction of the flexible tongue that is curved in a locked and in an unlocked position. A first horizontal distance, from an outer upper edge of the first edge to an outer edge of the flexible tongue, and a second horizontal distance, from the outer upper edge of the first edge to an inner edge of the flexible tongue, varies along a length of the flexible tongue. The tongue sections are configured to be pressed inwardly during locking by the second edge such that the curved sections are at least partially straightened and deformed to essentially straight rod shaped sections with a width, which is essentially the same along essentially the entire length of the flexible tongue and to move back towards their initial positions in a final stage of the locking such that the locking surfaces are inserted into the tongue groove.


The curved sections may be straightened and deformed to essentially straight rod shaped sections with a width, which is essentially the same along essentially the entire length of the flexible tongue.


The tongue sections may be configured to spring back towards their initial positions in a final stage of the locking such that the locking surfaces are inserted into the tongue groove.


Here and in the following, the wording “second panel edge” will be used interchangeably with the wording “second edge” or “adjacent edge”, unless stated otherwise.


By “essentially straight” is here meant that the curved section has been at least partly straightened towards a straight section. By way of example, the curved section may be straightened to a completely straight section. A first curved section may be straightened towards a straight section by being straightened to a second curved section, wherein the first and second curved sections have a convex or concave outer edge along the length direction of the first and second curved section. During the straightening, an outer edge point of the convex or concave outer edge of the first curved section moves towards the displacement groove, wherein the outer edge point is a point on the first curved section that is farthest away from the displacement groove. Thereby, the outer edge point of the first curved section moves to an outer edge point of the second curved section that consequently is closer to the displacement groove, wherein the outer edge point now is a point on the second curved section that is farthest away from the displacement groove.


In the final stage of the locking, the tongue sections moves back towards their initial positions. In a first example, the tongue sections partly move back to their initial positions. In a second example, the tongue sections move back completely to their initial positions. In a third example, some tongue sections move back completely to their initial positions and some tongue sections move back partly to their initial positions.


The tongue sections may move back towards their initial positions by springing back.


The sliding surface may have a shape that essentially corresponds to a shape of a portion of a lower wall of the tongue groove. Moreover, the locking surface may have a shape that essentially corresponds to a shape of a portion of an upper wall of the tongue groove.


Preferably, the flexible tongue is freely arranged in the displacement groove. Thereby, no part of the flexible tongue is attached to the panel, e.g., by an adhesive or a friction connection.


Alternatively, however, one or more parts of the flexible tongue may be attached to the panel. For example, a first longitudinal end portion and/or a second longitudinal end portion of the flexible tongue may be attached to the displacement groove. The attachment of the tongue may be provided by means of an adhesive, a clip, or by means of inserting it into a slot provided in the panel, such as in the displacement groove.


The tongue may be attached to the panel by means of a friction connection. The friction connection may be provided at one or more upper and/or lower parts of the tongue along a length direction of the tongue.


In a first example, the curved edge sections are essentially identical. In a second example, the curved edge sections are different.


The flexible tongue may comprise a plastic material. The plastic material may be a thermoplastic material or a thermosetting plastic material. In particular, the plastic material may be a cross-linked thermoplastic, such as cross-linked PE. By “cross-linked thermoplastic” is here meant that at least a portion of the thermoplastic material comprises cross-links.


The sliding surface may be an inclined surface. The sliding surface may be essentially planar. The sliding surface may be directed upwards. According to one embodiment, the sliding surface forms an angle between 0° and 60° with respect to the vertical plane.


The locking surface may be an inclined surface. The locking surface may be essentially planar. The locking surface may be directed downwards. According to one embodiment, the locking surface forms an angle between 0° and 60° with respect to the vertical plane.


The width of the flexible tongue may be essentially the same over 90% of the length of the flexible tongue. By “essentially the same” for a measurement is meant within ±10% of other.


The flexible tongue may comprise tongue sections with cross sections such that the first horizontal distance is essentially the same as the second horizontal distance.


A major part of the flexible tongue may comprise cross sections with a horizontal width and a vertical thickness that are essentially the same. By “major part” is meant at least 50% of a length of the tongue. In examples, the major part may be 70%, 80% or 90% of the length of the tongue. In a specific example, the major part may be an entire length of the tongue.


The vertical thickness of the flexible tongue may be less than about 1.5 mm.


A curved tongue with a simple cross section and a straight rod shaped geometry in the inner position provides several advantages that may be used to design a very compact flexible tongue suitable for locking of thin floor panels. By a thin floor panel is here meant that a thickness of the panel is between 6 and 10 mm. A very thin floor panel has a thickness below 6 mm, for example 3, 4 or 5 mm.


According to a second aspect of the invention a set of essentially identical floor panels is provided with a mechanical locking system comprising a flexible tongue, which is arranged in a displacement groove at a first edge of a first panel, and a tongue groove at a second edge of an adjacent second panel. The flexible tongue is configured to cooperate with the tongue groove for locking of the first and the second edge in a vertical direction. The flexible tongue comprises a sliding surface and a locking surface. The displacement groove comprises a cavity comprising upper, inner and lower cavity walls and a horizontal opening. The second floor panel comprises a protrusion comprising a sliding edge, which is configured to cooperate with the sliding surface during locking and to press and bend a flexible tongue section into the cavity. The flexible tongue section is configured to move back outwardly such that the locking surface is inserted into the tongue groove.


The tongue sections may move back towards their initial positions by springing back.


The inner cavity wall may be a curved surface or a planar surface. The upper, inner and lower cavity walls may start and end in the displacement groove along a length direction thereof. The upper, inner and lower cavity walls may be continuous upper, inner and lower cavity walls, whereby the walls are smooth and connected to the displacement groove by means of a smooth transition, without any disruptions. The continuous walls may be formed by means of a rotating carving or jumping tool.


The flexible tongue may be straight. Thereby, a simple and cost-effective tongue is provided. Alternatively, however, the tongue may be curved.


The cross-section of the tongue may be constant along its length direction.


In a first example, the tongue section moves back partly to an initial shape of the tongue section. In a second example, the tongue section moves back completely to the initial shape of the tongue section.


The locking system may comprise two or more cavities and protrusions.


The mechanical locking system may comprise a locking strip, at the first or the second edge, provided with a locking element configured to cooperate with a locking groove at the other of the first or second edge for locking in a horizontal direction.


According to a third aspect of the invention a set of essentially identical floor panels is provided with a mechanical locking system comprising a flexible tongue, which is arranged in a displacement groove at a first edge of a first panel, and a tongue groove at a second edge of an adjacent second panel. The flexible tongue is configured to cooperate with the tongue groove for locking of the first and the second edge in a vertical direction. An outer part of the flexible tongue comprises a protrusion comprising a sliding surface and a locking surface. The displacement groove comprises a cavity comprising upper, inner and lower cavity walls and a horizontal opening. The second floor panel comprises a sliding edge, which is configured to cooperate with the sliding surface during locking and to press and bend a flexible tongue section into the cavity. The flexible tongue section is configured to move back outwardly such that the locking surface is inserted into the tongue groove.


The upper, inner and lower cavity walls may be continuous upper, inner and lower cavity walls.


The tongue sections may move back towards their initial positions by springing back.


The locking system may comprise two or more cavities and protrusions.


The mechanical locking system may comprise a locking strip at the first or the second edge, provided with a locking element configured to cooperate with a locking groove at the other of the first or second edge for locking in a horizontal direction.


The cavities offer the advantages that the tongue may be formed as a very simple essential straight rod shaped component with a compact geometry suitable for locking of thin floor panels.


According to a fourth aspect of the invention a method for producing a locking system at edges of building panels comprising a core is provided. The method comprises the steps of

    • forming a strip at a lower part of a first edge and a locking element at an outer part of the protruding strip.
    • forming a tongue from the core at an outer part of the first edge;
    • forming an insertion groove at the first edge, wherein said insertion groove is sidewardly open and extends in the horizontal direction;
    • displacing the tongue (10) at least partly into the insertion groove with a vertical and horizontal displacement, and
    • forming a tongue groove and a locking grove at a second adjacent edge.


The tongue is configured to cooperate with the tongue groove for vertical locking and the locking element is configured to cooperate with the locking groove for horizontal locking.


The method may comprise the step of forming the tongue at the outer and lower part of the first edge.


The method may comprise the step of forming the tongue with a lower part and an upper part, wherein the lower and the upper part is vertically and horizontally offset in relation to each other.


The method may comprise the step of displacing the tongue with rotating wheels.


This production method offers the advantages that the tongue may be formed from the core material of the floor panel and no additional separate material is needed to produce a flexible tongue that always will have a suitable length that corresponds to the short edge of a panel.


According to a fifth aspect of the invention a set of essentially identical floor panels is provided with a mechanical locking system comprising a flexible tongue, which is arranged in a displacement groove at a first edge of a first panel and a tongue groove at a second edge of an adjacent second panel. The flexible tongue is configured to cooperate with the tongue groove for locking of the first and the second edge in a vertical direction, wherein the mechanical locking system further comprises a locking strip at the first or the second edge provided with a locking element configured to cooperate with a locking groove at the other of the first or second edge for locking in a horizontal direction. The flexible tongue comprises a lower part and an upper part. The lower and the upper part are vertically and horizontally offset in relation to each other and the lower part comprises a lower protrusion extending vertically downwards.


The lower part may comprise at least two lower protrusions along its length.


The lower part may comprise at least two inner protrusions extending horizontally inwardly and being spaced from each other along the displaceable tongue.


A tongue with offset upper and lower parts offers the advantages that protrusions and cavities may be formed on the tongue in a cost efficient way when the tongue is formed in line from the same core material that is used to form the locking system.


It is emphasized that all embodiments disclosed above may be partly or completely combined with each other.





BRIEF DESCRIPTION OF THE DRAWINGS

The disclosure will in the following be described in connection to exemplary embodiments and in greater detail with reference to the appended exemplary drawings, wherein:



FIGS. 1a-e illustrate a fold down locking systems according to known principles.



FIGS. 2a-f illustrate embodiments of production methods which may be used to form grooves and cavities.



FIGS. 3a-f illustrate bending of a flexible tongue according to an embodiment.



FIGS. 4a-f illustrate forming of a flexible tongue from an extruded tongue blank or a sheet material according to an embodiment of the invention.



FIGS. 5a-f illustrate a locking system comprising cavities and protrusions provided in panels according to an embodiment.



FIGS. 6a-i illustrate displacement and bending of a rod shaped separate tongue according to an embodiment.



FIGS. 7a-b illustrate a method to separate and insert a flexible tongue into a groove according to an embodiment.



FIGS. 8a-c illustrate forming and insertion of a flexible tongue comprising protrusions according to an embodiment.



FIGS. 9a-d illustrate alternative methods to insert and bend a flexible tongue according to various embodiments.



FIGS. 10a-c illustrate forming of a flexible tongue according to an embodiment.



FIGS. 11a-b illustrate forming of a flexible tongue comprising displaced upper and lower parts according to an embodiment.



FIGS. 12a-e illustrate forming of a flexible tongue comprising displaced upper and lower parts according to various embodiments.



FIGS. 13a-h illustrate various embodiments in accordance with one aspect of the invention.



FIGS. 14a-d illustrate a method to reinforce a flexible tongue according to an embodiment.



FIGS. 15a-b illustrate locking systems of furniture components and ceramic tiles according to two embodiments.



FIGS. 16a-c illustrate forming of a curved flexible tongue according to an embodiment.





DESCRIPTION OF EMBODIMENTS OF THE INVENTION


FIGS. 1a-1e show flexible tongues 10 and locking of a first 1 and a second 1′ panel edge with vertical displacement according to known principles. A flexible bristle tongue 10 comprising a tongue body 20 and flexible protrusions 21 at its inner part as shown in FIG. 1b, or at its outer part as shown in FIG. 1c, is displaced inwardly into a displacement groove 11 during locking as shown in FIG. 1a and outwardly during the final stage of the locking such that the outer parts of the flexible tongue 10 are inserted into a tongue groove 9 and the adjacent edges of the first 1 and the second 1′ panel are locked vertically parallel to a vertical plane VP. The panel edges comprise a strip 6 with a locking element 8 in one of the edges that cooperates with a locking groove 14 formed in the adjacent edge and locks the edges in a horizontal direction parallel to the panel surface and perpendicularly to the vertical plane.



FIG. 1b shows a bristle tongue 10 with a tongue body 20 and flexible protrusions 21 at its inner part. FIG. 1c shows a bristle tongue 10 with a tongue body 20 and flexible protrusions 21 at its outer part.


The flexible tongue has a length direction L along the edge, a width W extending horizontally perpendicular to the edge, and a tongue thickness TT in the vertical direction. The tongue thickness TT is generally the same as the groove thickness GT of the displacement groove 11. The maximum width W is larger than the groove depth GD of the displacement groove 11.


The flexible tongue comprises a complex geometry and is therefore formed as an injected molded thermoplastic-based component comprising glass fibres that are used to accomplish high strength combined with flexibility. A bending of the protrusions in the length direction of the tongue is an essential feature of such advanced flexible tongues.



FIGS. 1d and 1e show that the flexible tongue 10 is produced and delivered as a tongue blanks 30 comprising, for example, 8-32 tongues. Plastic material is injected into a tool through injection channels 31, generally from one side only in order to reduce production costs. The channel material is removed after the injection forming and may be re-melted and used again.


Injection molding with thermoplastic material comprising glass fibres is a cost efficient method that provides high quality components with very low production tolerances. However, the production method and the geometry of the flexible tongue has several disadvantages that limits the possibilities to produce cost efficient locking systems comprising a flexible tongues in new type of floor panels and core materials where a fold down installation is desirable.


One disadvantage is that a flexible tongue must have a length L that corresponds to the width of the panel since it is inserted into a groove formed at the short edge.


Plastic material must flow through a tongue body 20 along the length L of the tongue 10 and there must be a space S between the protrusions 21 and the tongue body 20, see FIGS. 1d and 1e. This provides certain cost related limits to the geometry of the tongue. For example, the production time and the tool cost may increase considerably if the width W is lower than 4 mm, the thickness TT is lower than 1.5 mm and the length exceeds about 300 mm.


Another problem is that it is difficult to form a displacement groove with a groove thickness GT that is smaller than about 1.5 mm if the groove depth GD is about 4 mm.


Mechanical locking systems are generally formed with large rotation tools that form grooves and protruding parts parallel to an edge and along the whole edge.



FIGS. 2a-2e show embodiments of production methods that may be used to form locking systems and tongues comprising cavities 22 and protrusions 21 arranged perpendicularly to an edge 1 according to an aspect of the invention.



FIG. 2a is a top view showing a tool comprising rotating saw blades 40 that are displaced against a panel edge 1 and back again. Alternatively, the panel 1 may be displaced against the saw blades 40 and back again. This production method may be used to form cavities 22 or protrusions 21 as shown in FIGS. 2b and 2c, wherein the upper figures illustrate perspective views and the lower figures illustrate top views of the panel edge 1.



FIG. 2d shows a side view of a so-called rotating jumping tool head 41 that may be displaced vertically or horizontally against a moving panel edge 1. Thereby, local cavities 22 may be formed.



FIG. 2e shows a cost efficient method to form cavities 22 with a rotating carving tool 45. The carving tool 45 comprises teeth 46 which are arranged along an outer edge of the carving tool 45. The tool rotation speed is synchronized with the displacement of the panel 1 and each tooth 46 forms one cavity 22 at a predetermined position and with a predetermined horizontal extension along an edge of a panel 1. It is not necessary to displace the tool vertically. A carving tool 45 may have several sets of teeth 46 and each set may be used to form one cavity. The cavities 22 may have different cross sections depending on the geometry of the teeth 46.



FIG. 2f shows a top view of a so-called screw cutter 42. This is an advanced production technology that allows high precision and cost efficient forming of protrusions and cavities perpendicular to an edge that is displaced in a high speed against the screw cutter 42. WO 2010/087752 provides a detailed description of the screw cutter principle.



FIG. 3a shows a flexible tongue 10 according to an embodiment. A width W of the flexible tongue 10 is essentially the same over substantially the whole length L of the flexible tongue 10.



FIGS. 3b and 3c show an enlarged picture of a tongue portion Ts1 shown in FIG. 3a and a cross section A-A of the flexible tongue 10 inserted in a displacement groove 11 provided in the panel edge 1.



FIG. 3b shows the flexible tongue 10 in an unlocked and in a locked position. The unlocked position is illustrated by the upper panel edge 1′ which is indicated by an unbroken line while the locked position is illustrated by the lower panel edge 1′ which is indicated by a broken line. The flexible tongue 10 is inserted in a displacement groove 11 comprising an upper lip 12. A vertical plane VP intersects the upper and outer part of the upper lip 12. The tongue comprises at least two tongue sections Ts1, Ts2, each comprising a sliding surface 15, that during locking cooperates with a sliding edge 17 of the adjacent edge 1′, and a locking surface 16 that locks into the tongue groove 9. According to the present embodiment, the sliding surface 15 is provided in an upper part of the flexible tongue 10. More specifically, the sliding surface 15 is an outer and upper inclined part of the flexible tongue 10. Moreover, according to the present embodiment, the locking surface 16 is provided in a lower part of the flexible tongue 10. More specifically, the locking surface 16 is an outer and lower inclined part of the flexible tongue 10. The sliding surface 15 is arranged above the locking surface 16. The tongue sections Ts1, Ts2 are spaced from each other in the length direction L of the flexible tongue 10. The tongue is curved in a locked and in an unlocked position such that a first horizontal distance D1 from the vertical plane VP and to the outer part of the flexible tongue 10 and a second horizontal distance D2 from the vertical plane VP to an inner part of the flexible tongue 10 varies along the length L of the tongue.


The shape of the flexible tongue 10 may be further defined by a third horizontal distance D3 from the inner part of the tongue to an inner horizontal line connecting the innermost points of the tongue. The inner line is essentially parallel with a length direction of the flexible tongue 10. The inner line is a straight line if each of the tongue sections Ts1, Ts2, . . . have the same shape. In a first example, D1 corresponds to D3 along the entire length direction of the flexible tongue 10, thereby providing a constant width W of the flexible tongue 10. In a second example, D1 differs from D3 at least along a portion of the length direction of the flexible tongue 10, thereby providing a varying width W.


It is clear that the illustrated embodiments of the present application are non-limiting with regard to the number of tongue sections. Indeed, there may be one or more tongue sections Ts1, Ts2, . . . , TsN, where N is an arbitrary integer larger than or equal to one, i.e. N=1, 2, 3, 4, . . . .



FIG. 3c shows the flexible tongue 10 in an inner position during locking. According to the present embodiment, the adjacent edge 1′ is displaced essentially vertically downwards towards the first panel edge 1 during locking, such that the locking groove 14 provided in the adjacent edge 1′ is lowered towards and cooperates with the locking element 8 provided in the first panel edge 1. The flexible tongue 10 is pressed inwardly by the sliding edge 17 of the adjacent panel 1′ and the curved sections Ts1, Ts2 are straightened such that the flexible tongue 10 is formed to an essentially straight rod shaped component with a tongue width W that is essentially the same along the major part of the flexible tongue. In an embodiment, during locking of a tongue section, the distance D3 may change from an unlocked distance to less than 20% of the unlocked distance. It is noted that the sliding surface 15, which protrudes outwardly beyond the vertical plane VP in a locked position as well as in an unlocked position, as illustrated in FIG. 3b, is pressed towards the displacement groove 11 during locking as illustrated in FIG. 3c. Thereby, the sliding surface 15 may be pressed inwardly of the vertical plane VP during locking—partly or entirely.


As shown in FIG. 3b the flexible tongue 10 comprises inner protrusions 21a and outer protrusions 21b arranged along a length direction of the tongue at an inner part and an outer part of the tongue, respectively. In FIG. 3b it may be seen that the tongue section Ts1 comprising an outer protrusion 21b has been straightened to an essentially straight section.



FIG. 3d shows an embodiment according to which the panels comprise short edges 1, 1′ and long edges 4. A scissor movement of the adjacent short edge 1′ caused by the angling of the long edge 4 of the panel will gradually press the tongue sections inwardly along the panel edge and deform the flexible tongue 10 towards an essentially straight component. For example, at least one tongue section of the flexible tongue 10, which has a convex or concave outer edge along the length direction of the tongue section, may become straightened so that an outer edge point of the convex or concave outer edge moves towards the displacement groove 11, wherein the outer edge point is a point on the tongue section farthest away from the displacement groove 11. In FIG. 3b the outer edge point is located in a centre portion of the convex tongue section Ts1 along its length direction where a distance XM to the inner wall of the displacement groove 11 is maximal. It is noted that in a concave tongue section Ts0, as shown in FIG. 3b, the outer edge point may be located in an edge portion of the concave tongue section along its length direction where a distance to the inner wall of the displacement groove 11 is maximal. By way of example, the outer edge point may move towards the displacement groove 11 at least by a distance corresponding to 20-60% of a maximal width of the tongue 10, preferably 40-50%. In particular, the flexible tongue 10 may be straightened to an essentially straight component, for example a straight component along its entire length. Preferably, the outer parts of the flexible tongue 10 and the tongue groove 9 are configured such that an inner part of the edge 1a and a first tongue portion Ts1 is located close to its final locked position, as shown in FIG. 3e, when an outer part of the edge 1b and a second tongue portion Ts2, preferably a tongue portion that is most distant to the first tongue portion Ts1, is located in its inner position as shown in FIG. 3f. The edge sections Ts1, Ts2 will gradually move into the tongue groove 9 during the vertical folding and locking resistance and separation forces, that may press the short edges away from each other due to the bending of the tongue, will be reduced. This facilitates an easy locking.


The flexible tongue 10 may comprise friction connections 23, preferably located at an upper and/or a lower part of tongue. The friction connections 23 may be elongated. The required flexibility is mainly obtained by a curved tongue body 20 of the tongue that during locking bends mainly horizontally and inwardly into the displacement groove 11.


The flexible tongue 10 may comprise tongue portions with cross sections wherein the first horizontal distance D1 is essentially the same as the second horizontal distance D2 such that the tongue width W may be about 2 times the width of the sliding surface 15 that protrudes beyond the vertical plane VP. The flexible tongue 10 may be formed with a very compact cross section such that the tongue width W is essentially the same as the tongue thickness TT.


The described embodiment offers several advantages. The straight inner position makes it possible to form displacement grooves with a very small depth. The simple geometry of the tongue allows a cost efficient production since plastic material may float easily during the injection molding and this makes it possible to decrease the tongue width W and the tongue thickness TT and to increase the tongue length L. It is possible to produce an injection-molded tongue with a thickness TT that is less than 1.5 mm, for example with a thickness of about 1.0-1.5 mm and with a width W of about 1.5-3 mm. It is also possible to produce extremely thin flexible tongues with a tongue thickness TT of 0.5-1.0 mm. Such tongues may be used to lock very thin floor panels, for example LVT or WPC floor panels with a thickness of about 3 mm.


A stiffness of the flexible tongue may be specified by a transverse spring constant. According to a non-limiting example, the transverse spring constant of the flexible tongue is between 5-50 N/mm per 100 mm length of the tongue. According to another non-limiting example, the transverse spring constant is between 15-25 N/mm per 100 mm length of the tongue. The transverse spring constant of the flexible tongue may be tested by standard methods known to a person skilled in the art.



FIG. 4a illustrates a top view and a cross-sectional view of a tongue blank 30 according to an embodiment. FIGS. 4a-4b show that the flexible tongue 10 may be formed from a tongue blank 30 that is an extruded plastic or metal component comprising an identical cross section along the whole length of the tongue blank. In particular, the tongue blank 30 has a constant width along its length direction. A punching wheel 43 may form curved parts of the flexible tongue 10. The curved parts are formed by removing material from the tongue blank 30. According to the present embodiment, material is removed from an inner part and from an outer part of the tongue blank 30 in such a way that a width of the resulting flexible tongue 10 becomes essentially constant along a length direction of the flexible tongue 10. The flexible tongue 10 may have friction connections 23 protruding vertically upward or downward. This is illustrated in the top view of the flexible tongue 10 according to the embodiment in FIG. 4b.


According to an alternative embodiment, material may be removed from an inner part and/or from an outer part of the tongue blank 30 in such a way that the width of the resulting flexible tongue 10 becomes non-constant along the length direction of the flexible tongue 10. Examples of flexible tongues 10 having non-constant widths will be described further below in relation to the embodiments in FIGS. 9b, 9c and 12c.


According to alternative embodiments, the curved parts of the flexible tongue 10 may be formed by other means, such as cutting, carving, punching or milling, or any combination of these means.


The tongue blank 30 and/or the flexible tongue 10 may be formed by means of injection molding, extrusion, 3D printing by forming successive layers, or pultrusion with a reinforcement material.


Generally, the tongue blank 30 and/or the flexible tongue 10 may comprise at least one material chosen from the group consisting of a plastic, such as a thermoplastic or a thermosetting plastic, a WPC, a metal, or a panel material, such as a panel core material or material from at least one layer of a panel. The material may further comprise a reinforcement material. Thereby, the material may become more rigid. For example, the reinforcement material may comprise fibres or resins, such as thermosetting resins.


Alternatively, or additionally, the material may comprise a cross-linked material, such as a plastic with cross-linked polymers.


The thermoplastic may comprise PVC, PE, PP, CPVC, or similar materials. In non-limiting examples the polyethylene may be a low-density PE, a linear low-density PE, a medium-density PE or a high-density PE. In particular, the thermoplastic may be a cross-linked thermoplastic, such as cross-linked polyethylene, also called PEX or XLPE. Moreover, the thermoplastic may be a reinforced thermoplastic. The reinforced thermoplastic may comprise a reinforcement material, such as fibres. The fibres may comprise at least one of glass fibres, carbon fibres, aramid fibres, wood fibres, basalt fibres, non-woven fibres, or textile fibres. Alternatively, the fibres may comprise metal fibres, such as magnetic metal fibres, e.g. iron or a magnetic alloy. Thereby, the fibres may be separated from the plastic more easily during recycling. The fibres may have a specific orientation. For example, the fibres may be oriented along a length direction of the flexible tongue 10. Alternatively, the fibres may be randomly oriented. The fibres may be randomly distributed in the flexible tongue 10. Alternatively, the fibres may be arranged in the form of a mat-shaped layer in the flexible tongue 10, such as a fabric, for example in a centre portion of the flexible tongue 10.


Thus, the flexible tongue 10 preferably comprises a low-creep material that does not creep or deform to any considerable extent over time. Thereby, the locking function does not deteriorate over time, for example after 1 month, 1 year, or 10 years. The reinforced and the cross-linked materials described above may both counteract creeping. FIGS. 4d-4f show that tongues blanks 30 may be formed from a sheet shaped material 50. The sheet shaped material 50, which is illustrated in FIG. 4d in the case of a single-layer sheet, may be a thermoplastic material, preferably comprising mineral or wood fillers. Preferably at least three layers are laminated or fused together. Glass fibres or any other fibres described above may be used to reinforce the sheet shaped material. The sheet shaped material may also comprise thermosetting resins preferably mixed with wood fibres. FIG. 4f shows a sheet shaped material 50 comprising at least three layers. The upper 51a and the lower 51c layers comprise thermoplastic material and the middle layer 51b is a reinforcement layer comprising fibres, for example glass fibres. The middle layer 51b is a mat-shaped layer comprising fibres. It is clear, however, that other materials described above may be used for the layers 51a-c. For example, the upper 51a and the lower 51c layers may comprise a thermosetting plastic and/or the middle layer 51b may comprise randomly distributed fibres. According to the embodiment in FIG. 4e, the flexible tongue 10 comprises at least three layers of materials with different material properties. The layers and reinforcement layers may be joined to each other by means of heating and/or pressing. Hot embossed rollers may be used to form straight 52a or curved 52b sheet grooves in the sheet shaped material 50 that after separation form outer and/or inner parts of a flexible tongue 10. The grooves may also be formed with rotating cutting or carving tools. A punching tool 43, or punching wheel 43, may also be used to form the flexible tongues 10. All these production methods may be combined. Flexible tongues 10 may also be formed with conventional 3D-printing methods. In relation to FIGS. 4d-f, three layers have been chosen for illustrative purposes only and it is clear that any number of layers may be chosen, for example 1, 2, 3, 4, 5, 6 or 7 layers. Additionally, there may be a plurality of reinforcement layers. For example, there may be a centre layer sandwiched between inner surfaces of a first and a second reinforcement layer, and an upper and lower layer arranged on outer surfaces of the first and second reinforcement layer, respectively.



FIG. 5a shows that the flexible tongue 10 may be formed as a straight rod shaped component. FIG. 5b shows that cavities 22a, 22b may be formed at the inner part of the displacement groove 11 of a first panel 1 and that protrusions 21 may be formed in the adjacent second panel 1′. The cavities 22a, 22b and the protrusions 21 are formed along portions of the side edges of the panels 1, 1′ in their length direction. Each cavity comprises a continuous upper 26, inner 27, and lower 28 cavity wall and a horizontal cavity opening 29 towards the vertical plane VP. The cavity walls are preferably continuous along the edge since they are preferably formed with a rotating carving or jumping tool. At least a portion of the inner cavity wall 27 is curved. Each protrusion 21 comprises an upper horizontal wall and an outer wall. According to the present embodiment, the outer wall is inclined. According to an alternative embodiment, however, the outer wall may be vertical and the protrusion may also comprise a lower horizontal wall that is essentially parallel with the upper wall. The cavities 22a, 22b may have the same vertical extension as the displacement groove 11. Alternatively, the cavities 22a, 22b may have a larger vertical extension than the displacement groove 11. This provides a more cost efficient production since larger and more efficient jumping tools or saw blades may be used and production tolerances may be increased without negative effects on the locking function. According to an alternative embodiment, the cavities 22a, 22b may have a smaller vertical extension than the displacement groove 11.



FIG. 5c-5f show that the protrusions 21 and the cavities 22 are located along the panel edges and adjacent to each other such that a protrusion 21 may displace and bend a part of a tongue section Ts1 into the cavity 22. FIG. 5d shows a cross section A-A comprising a cavity 22a that has about the same vertical extension or cavity thickness Ct as the thickness GT of the displacement groove 11. FIG. 5e shows an alternative embodiment of the cross-section A-A wherein a cavity 22b has a smaller cavity thickness than the displacement groove 11 and is offset vertically below the upper or lower parts of the displacement groove. The displaceable tongue 10 may have an outer portion with a larger outer tongue thickness TTa than a tongue thickness TTb of an inner portion. An advantage is that the inner part of the tongue may be displaced into a cavity even if the vertical position of the forming tool is not aligned with the upper part of the displacement groove 11. According to an alternative embodiment, the cavity 22b may have a larger cavity thickness than the displacement groove 11. FIG. 5f shows a cross section B-B where no cavity and protrusion are formed and where essentially no displacement of the flexible tongue 10 in the displacement groove 11 takes place. This part of the edge is used as a support for the inward bending of the tongue section Ts1.



FIGS. 6a-6i show in detail the displacement of a flexible rod shaped tongue 10 according to FIGS. 5a-5f. FIG. 6a shows a top view of a first 1 and a second 1′ edge section at horizontal planes HP 1 and HP 1′ according to FIGS. 6b and 6c. Here, the tongue is essentially straight. FIGS. 6d-f show the flexible tongue 10 in a bended inner position wherein parts of the flexible tongue 10 has been pressed into the cavities 22 by means of the protrusions 21. FIGS. 6g-6i show the flexible tongue 10 in an outer and locked position wherein the tongue groove 9 and the displacement groove 11 are vertically aligned so that the outer parts of the flexible tongue 10 has been inserted into the tongue groove 9. According to the present embodiment, the flexible tongue 10 is essentially straight in the outer and locked position. According to an alternative embodiment (not shown), however, at least a portion of the flexible tongue 10 may be bended in the outer and locked position. For example, the flexible tongue 10 may be bended in sections.



FIGS. 7a and 7b show a method to form a tongue, preferably a flexible tongue 10, from an edge part of a panel 1 and to insert the tongue into a groove, preferably a displacement groove 11, preferably in the same production line that is used to form the locking system. The flexible tongue 10 is in this embodiment formed at an outer part of the strip 6. Pressing wheels 44a, 44b and 44c may be used to separate the tongue 10 from the edge 1 and displace the tongue vertically and horizontally into the groove 11. It is preferred that a part P1 of the tongue is connected to the edge 1 when another part P2 is inserted and fixed into the groove 11. The tongue 10 may also be released from the edge 1 and displaced with the wheels 44a, 44b, preferably at the same speed as the panel edge 1, and inserted into the displacement groove 11 with wheels 44c or some pressing units. Upper and lower support units may be used to align and position the tongue into the groove. The tongue may be used in a locking system as described in FIGS. 5a-5f.


Such production method offers several advantages. Tongue blanks are not needed and the tongue 10 will always have an appropriate length that corresponds to the panel edge. A wide variety of core materials have been introduced on the market, such as HDF, high density water resistant HDF comprising an increased resin content, thermoplastic material mixed with mineral or wood fibre fillers, so called LVT or WPC material, foamed thermoplastic material etc. Any of the above-mentioned materials may be used for forming the flexible tongue 10 according to the embodiment in FIGS. 7a-b. Thermoplastic floor materials are often reinforced with glass fibres in order to decrease thermal shrinking and expansion. Glass fibres 47 may be located in the part of the core 6 where the flexible tongue 10 is formed and may contribute to increase the strength and spring properties of the flexible tongue 10. Such materials have a sufficient flexibility and may provide a strong and flexible tongue body. Engineered wood floorings have generally a separate material such as plywood on the short side and this separate material may also be used to form the flexible tongue. Thermoplastic floor materials are often reinforced with glass fibres in order to decrease thermal shrinking and expansion. Such glass fibre layers are positioned in the middle parts of the core 6. Glass fibres 47 may be positioned in the part of the core 6, preferably the lower part, where the flexible tongue 10 is formed and may contribute to increase the strength and spring properties of the flexible tongue 10.



FIGS. 8a-8c show that rather complex curved tongues 10 may be formed with screw cutters, jumping tool heads or punching wheels and that cavities and protrusions formed in the panel edges are not needed to displace a flexible tongue 10 in a displacement groove 11. FIG. 8a shows a tongue 10 formed and connected to an outer part of a strip 6. FIG. 8b shows the flexible tongue 10 which is released from the strip 6 and FIG. 8c shows the displaceable tongue 10 inserted into a displacement groove 11.


By a curved tongue is meant that at least a section of the tongue is curved. The curved tongue may comprise any number of curved sections, for example, 3, 4, 5, 6, . . . . The curved sections may be directly connected to each other. Optionally, however, straight sections may connect the curved sections.



FIGS. 9a-9d show preferred embodiments of locking systems and the flexible tongues 10. FIG. 9a shows a straight rod shaped flexible tongue 10 comprising locking surfaces 16 and sliding surfaces 15 inserted in a displacement groove 11 of an panel edge 1 comprising cavities 22. FIG. 9a also shows an adjacent edge 1′ comprising protrusions 21. FIG. 9b shows that the protrusions on the adjacent edge 1′ may be replaced by outwardly extending protrusions 21 formed on the outer part of the flexible tongue 10. Such protrusions 21 are easy to form on a flexible tongue 10 produced by extrusions or produced from a sheet shaped material. Only a cost efficient rotating carving tool may be sufficient to form a high quality locking system. According to the embodiment in FIG. 9b, the flexible tongue 10 is insertable into the cavities 22 of the displacement groove 11 with the protrusions 21 facing away from the cavities 22. Thereby, an outer surface of the panel edge 1′, such as the sliding edge 17, may contact the protrusions 21 and displace and bend a part of a tongue section of the flexible tongue 10 inwardly. FIG. 9c shows that the cavities 22 may be replaced with inner protrusions 21a formed on the inner part of the tongue 10. Thereby, the protrusions 21 on the panel edge 1′ may displace and bend a part of a tongue section of the flexible tongue 10 inwardly. The displacement may occur between the inner protrusions 21a where there is a space between the tongue 10 and an inner wall of the displacement groove 11. In this embodiment, the inner wall is a planar surface, but other shapes are equally conceivable. FIG. 9d shows that both cavities and protrusions may be replaced with a curved flexible tongue 10 comprising inner protrusions 21a and outer protrusions 21b at the inner and outer parts of the flexible tongue 10, respectively. Thereby, the outer surface of the panel edge 1′, such as the sliding edge 17, may contact the protrusions 21 and displace and bend a part of a tongue section of the flexible tongue 10 inwardly towards the inner wall of the displacement groove 11. In this embodiment, the inner wall is a planar surface, but other shapes are equally conceivable.


In non-limiting examples, the inner part and/or the outer part of the flexible tongue 10 may be shaped essentially as a part of a sine wave, a part of a saw-tooth wave, have a step-wise constant profile, or have a straight profile.


In all of the embodiments above and in the following, it is clear that each protrusion 21, 21a, 21b may be provided at a lower vertical portion, an upper vertical portion, or a centre portion of the flexible tongue 10.



FIG. 10a shows that a curved tongue as shown in FIGS. 8a-8c may for example be formed with a screw cutter 42 and a jumping tool head 41. FIG. 10b shows that a tongue 10 may be formed at an upper part of the edge with jumping tool heads 41. Such an embodiment will save material. FIG. 10c shows that the tongue 10 may be formed above the outer part of the strip 6 with a screw cutter 42 and a jumping tool 41. Jumping tools 41 may in all embodiments of the invention be replaced with rotating carving tools 45.



FIG. 11a shows a panel 1 comprising a surface layer 2 and a core comprising an upper core layer 5a and a lower core layer 5b. In a non-limiting example, the panel 1 may be an LVT panel. The lower core layer 5b comprises a higher content of thermoplastic material than the upper core layer 5a. A flexible tongue 10 is formed from the lower core layer 5b. This means that the flexible tongue 10 comprises the same material composition as the lower core layer 5b. FIG. 11a also shows a flexible tongue 10 that has been inserted into the displacement groove 11.



FIGS. 11a and 11b shows that a curved flexible tongue 10 may be formed in a cost efficient way with two screw cutters: a first screw cutter 42a and a second screw cutter 42b. The flexible tongue 10 preferably comprises an inner and lower part 10a and an upper and outer part 10b that are displaced vertically and horizontally in relation to each other. The upper part 10b is preferably more distant to the inner part of the displacement groove 11 than the lower part 10a. An outer protrusion 21b is formed at the upper part 10b when a first screw cutter 42a removes material from the tongue and an inner protrusion 21a is formed at the lower part of the tongue 10a when a second screw cutter 42b removes material from the lower part of the tongue 10a. The inner part of the tongue may also be formed as an upper part and the outer part may also be formed as a lower part. Such tongues may for example be used when the tongue is inserted into an edge of the second panel 1′ comprising a locking groove 14.



FIGS. 12a-12c provide a more detailed description of the locking system shown in FIGS. 11a, 11b. FIG. 12a shows an edge section of a panel 1 comprising a part of a locking system formed at one of two adjacent panel edges. A groove 11, a strip 6 with a locking element 8 and a tongue 10 is formed with rotating tools. The tongue is preferably formed at an outer part of the strip 6. The locking system and the tongue 10 comprise an essentially identical and continuous cross section along a length direction of the panel edge 1. The tongue 10 comprises upper 10b and lower parts 10a displaced vertically and horizontally in relation to each other. The upper part 10b comprises a locking surface 16. The lower part 10a comprises lower protrusions 21c extending downwards. FIG. 12b shows that a first screw cutter 42a and a second screw cutter 42b may be used to remove material from the outer and upper parts 10b and inner and lower parts 10a of the tongue 10 such that outer protrusions 21b and inner protrusions 21a are formed. FIG. 12c shows a flexible tongue 10 that is released from the strip 6 such that it may be inserted into the displacement groove 11 during production of the locking system. The flexible tongue is characterized in that the inner protrusions 21a are located vertically below the upper part of the tongue 10.



FIGS. 12d and 12e show that the tongue 10 could be formed with a tongue body 20 that is inclined against a horizontal plane Hp1 in order to facilitate an easy machining in a double-end tenor machine comprising a chain 48 and an upper belt 49. The panel 1 is positioned in the double-end tenor with the surface layer 2 pointing downwards. The horizontal distance D4 from the tongue 10 and to the upper belt 49 may be smaller than a radius R of the jumping tool head 41, the screw cutter tool head 45 or of the screw cutter 42.



FIGS. 13a-13h show different embodiments. FIG. 13a shows a locking system comprising a flexible tongue 10 on the second panel 1′, the fold panel, which comprises a locking groove 14 that cooperates with a locking element 8 formed on a strip 6 of the first panel 1. FIGS. 13b-13d show that the flexible tongue 10 may be formed from a core section of the fold panel 1′, which may be located at the upper, middle or lower part of the core 5. FIG. 13e shows a locking system with a flexible tongue 10 attached to a displacement groove 11 formed at an inner wall of the locking groove 14 on the second fold panel 1′. The tongue 10 may be formed from a core section located at a lower part of the core as shown in FIG. 13f. FIG. 13g shows a locking system comprising a displacement groove 11 formed at an outer part of the strip 6 of the first panel 1. FIG. 13h shows that the tongue 10 may be formed from a core portion located above the strip 6.



FIGS. 14a-14d show that a core material 5 may be locally modified such that it becomes more suitable to form a flexible tongue 10. The method may be used to increase the strength and flexibility of any kind of mechanical locking systems, even such systems that are formed as one-piece locking systems without a separate flexible tongue. FIG. 14a shows that a resin, for example a thermosetting resin 24, such as for example melamine formaldehyde, urea formaldehyde or phenol formaldehyde resin, may be applied in liquid or dry powder form on for example a melamine formaldehyde impregnated balancing paper 3 or directly on a core material 6. FIG. 14b shows that a core material 5, preferably a wood based panel, for example a HDF board or a particle board, may be applied on the impregnated paper 3 with the added resin 24 prior to lamination. FIG. 14c shows a floor board after lamination when the surface layers 2 and the balancing layer 3 have been laminated to the core 6. The resins 24 have penetrated into the core 5 and cured during lamination under heat and pressure. FIG. 14d shows an edge of a first panel 1 comprising a tongue 10 formed in one piece with the core 5. The tongue 10 is more flexible and comprises a higher resin content than other parts of the core 5. The increased resin content provides a material that is very suitable to form a strong flexible tongue 10 that during production may be inserted into a displacement groove 11.



FIG. 15a shows that a flexible tongue 10 and a locking system according to each embodiment of the disclosure may be used to lock furniture components 1, 1′ perpendicularly to each other. Cavities 22 may be formed in an inclined displacement groove 11 and protrusions may be formed below the tongue groove 9. The flexible tongue may be a curved, rod shaped component as described above, and it may also be formed from a core portion of the panel core.



FIG. 15b shows that a flexible tongue 10 and a locking system according to each embodiment of the disclosure may also be used to lock ceramic tiles 1, 1′. The strip 6 and the locking element 8 may be formed as a separate plastic or metal part that is attached to an edge of a first tile 1. Cavities 22 and protrusions 21 may also be formed in ceramic material with diamond tools. All embodiments of the disclosed flexible tongue 10 may be used. A second tile 1′ comprises a tongue groove 9 and a locking groove 14. The flexible tongue 10 is configured to cooperate with the tongue groove 9 as described above for locking of the first and the second edge in a vertical direction. Moreover, the locking element 8 of the separate strip 6 is configured to cooperate with the locking groove 14 for locking in the horizontal direction.


All shown locking systems may be adapted such that they may be locked with vertical displacement and/or angling and/horizontal snapping. They may also be released with upward angling or displacement along the edge. The vertical locking may be combined with a flexible strip 6 and preferably a flexible locking element 8 that is bended during locking. Preferably, the outer part of the strip 6 is bended downwards and the upper part of the locking element 8 is bended or turned horizontally outwardly.


As illustrated schematically in FIGS. 16a-c, the curved flexible tongue 10 may be formed by first providing a tongue blank 30, or an essentially straight tongue, and then bend it into a curved flexible tongue of a desired shape by means of deformation. The tongue blank 30 is made of plastic, preferably a thermoplastic material or a thermosetting, with or without reinforcement, as has been described above. However, other materials are equally conceivable. This method is particularly suitable for producing curved flexible tongues having an essentially constant cross-section along the length direction of the tongue. However, the tongue blank 30 may also have a varying cross-section along the length direction of the tongue. Optionally, the tongue blank 30 may comprise inner and/or outer protrusions along its length direction.


As shown in FIG. 16a, the tongue blank 30 is provided on a roll 32 and is fed into a bending device 34 according to a feeding method known to a person skilled in the art. The tongue blank 30 is then arranged in a bent state as shown in FIG. 16b. According to the present embodiment, the tongue blank 30 is arranged in a sequence or matrix of bending elements 50 so that portions of the tongue blank become bent. In FIG. 16b the bending elements 50 are rods, nails or screws that are fixed to a substrate 52 and the tongue blank 30 is arranged in a zig-zag pattern between the bending elements 50. Alternatively, however, the bending elements 50 may be rollers or cylinders. Optionally, the end points of the tongue blank 30 may be fixed, e.g. to the substrate 52. The final shape of the tongue is determined by the pattern of the bending elements 50. The horizontal and/or vertical distances between the bending elements 50 may be constant or, alternatively, varying.


The tongue blank 30 is then fixed in the bent state for a period of time. Optionally, heat may be provided to the tongue blank 30 in a heating process before and/or during the bent state by a heating device 60. Thereby, the forming of the curved tongue may be speeded up. Optionally, the tongue blank may also undergo a cooling process after the heating process by means of a cooling device 70. The heating and cooling process may be implemented by means of methods well known to a person skilled in the art. After a critical period of time has elapsed, the tongue blank 30 assumes a bent shape and becomes deformed permanently, or semi-permanently, and becomes a curved tongue element. The deformation may occur due to tensile forces, compression forces, shear, bending or torsion. A permanent deformation may be a plastic, irreversible, deformation. By semi-permanently is here meant that the bent shape provided directly after forming is essentially preserved at least during a minimum amount of time, such as 1 month, 1 year or 10 years. The curved tongue element is finally cut by a cutting device 80 into one or more curved flexible tongues 10 having predetermined lengths. A curved flexible tongue 10 resulting from the above process is schematically illustrated in FIG. 16c.


It is emphasized that all embodiments disclosed above may be partly or completely combined with each other. In particular, the various choices of materials and reinforcements of the flexible tongue presented in relation to the embodiment in FIGS. 4a-c may also be used in embodiments of the other flexible tongues in the present application—straight or curved.


EMBODIMENTS

1. A set of essentially identical floor panels provided with a mechanical locking system comprising a flexible tongue, which is arranged in a displacement groove at a first edge of a first panel, and a tongue groove at a second edge of an adjacent second panel, the flexible tongue is configured to cooperate with the tongue groove for locking of the first and the second edge in a vertical direction, wherein the mechanical locking system further comprises a locking strip, at the first or the second edge, provided with a locking element configured to cooperate with a locking groove at the other of the first or second edge for locking in a horizontal direction, characterized in:


that the flexible tongue is displaceable in the horizontal direction in the displacement groove,


that an outer part of the flexible tongue comprises two or more curved edge sections each comprising a sliding surface, which is configured to cooperate with the second edge during locking, and a locking surface that is configured to lock against the tongue groove,


that the tongue sections are spaced from each other in a length direction of the flexible tongue,


that the flexible tongue is curved in a locked and in an unlocked position, wherein a first horizontal distance, from an outer upper edge of the first edge to an outer edge of the flexible tongue, and a second horizontal distance, from the outer upper edge of the first edge to an inner edge of the flexible tongue, varies along a length of the flexible tongue,


that the tongue sections during locking are configured to be pressed inwardly by the second edge such that the curved sections are at least partially straightened and deformed to essentially straight rod shaped sections with a width which is essentially the same along essentially the entire length of the flexible tongue, and


that the tongue sections are configured to move back towards their initial positions in a final stage of the locking such that the locking surfaces are inserted into the tongue groove.


2. The set of floor panels as in embodiment 1, wherein the curved sections are straightened and deformed to essentially straight rod shaped sections with a width which is essentially the same along essentially the entire length of the flexible tongue.


3. The set of floor panels as in embodiment 1, wherein the width of the flexible tongue is essentially the same over 90% of the length of the flexible tongue.


4. The set of floor panels as in embodiment 1, wherein the flexible tongue comprises tongue sections with cross sections such that the first horizontal distance is essentially the same as the second horizontal distance.


5. The set of floor panels as in embodiment 1, wherein a major part of the flexible tongue comprises cross sections with a horizontal width W and a vertical thickness TT that is essentially the same.


6. The set of floor panels as in embodiment 1, wherein the vertical thickness TT of the flexible tongue is less than about 1.5 mm.


7. The set of floor panels as in embodiment 1, wherein the flexible tongue is freely arranged in the displacement groove.


8. A set of essentially identical floor panels provided with a mechanical locking system comprising a flexible tongue, which is arranged in a displacement groove at a first edge of a first panel, and a tongue groove at a second edge of an adjacent second panel, the flexible tongue is configured to cooperate with the tongue groove for locking of the first and the second edge in a vertical direction, characterized in:


that the flexible tongue comprises a sliding surface and a locking surface,


that the displacement groove comprises a cavity comprising upper, inner and lower cavity walls and a horizontal opening,


that the second floor panel comprises a protrusion comprising a sliding edge which is configured to cooperate with the sliding surface during locking and to press and bend a flexible tongue section into the cavity, and


that the flexible tongue section is configured to move back outwardly in a final stage of the locking such that the locking surface is inserted into the tongue groove.


9. The set of floor panels as in embodiment 8, wherein the locking system comprises two or more cavities and protrusions.


10. The set of floor panels as in embodiment 8, wherein the mechanical locking system further comprises a locking strip, at the first or the second edge, provided with a locking element configured to cooperate with a locking groove at the other of the first or second edge for locking in a horizontal direction.


11. A set of essentially identical floor panels provided with a mechanical locking system comprising a flexible tongue, which is arranged in a displacement groove at a first edge of a first panel, and a tongue groove at a second edge of an adjacent second panel, the flexible tongue is configured to cooperate with the tongue groove for locking of the first and the second edge in a vertical direction, characterized in:


that an outer part of the flexible tongue comprises a protrusion comprising a sliding surface and a locking surface,


that the displacement groove comprises a cavity comprising upper, inner and lower cavity walls and a horizontal opening,


that the second floor panel comprises a sliding edge which is configured to cooperate with the sliding surface during locking and to press and bend a flexible tongue section into the cavity, and


that the flexible tongue section is configured to move back outwardly such that the locking surface is inserted into the tongue groove.


12. The set of floor panels as in embodiment 11, wherein the locking system comprises two or more cavities and protrusions.


13. The set of floor panels as in embodiment 11, wherein the mechanical locking system further comprises a locking strip, at the first or the second edge, provided with a locking element configured to cooperate with a locking groove at the other of the first or second edge for locking in a horizontal direction.


14. A method for producing a locking system at edges of building panels comprising a core, wherein the method comprises:

    • forming a strip at a lower part of a first edge and a locking element at an outer part of the strip,
    • forming a tongue from the core at an outer part of the first edge,
    • forming an insertion groove at the first edge, wherein said insertion groove is sidewardly open and extends in the horizontal direction,
    • displacing the tongue at least partly into the insertion groove with a vertical and horizontal displacement, and
    • forming a tongue groove and a locking groove at a second adjacent edge, wherein the tongue is configured to cooperate with the tongue groove for vertical locking and the locking element is configured to cooperate with the locking groove for horizontal locking.


      15. The method as in embodiment 14, wherein the method comprises the step of forming the tongue at the outer and lower part of the first edge.


      16. The method as in embodiment 14, wherein the method comprises the step of forming the tongue with a lower part and an upper part, wherein the lower and the upper part is vertically and horizontally offset in relation to each other.


      17. The method as in embodiment 14, wherein the method comprises the step of displacing the tongue with rotating wheels.


      18. A set of essentially identical floor panels provided with a mechanical locking system comprising a flexible tongue, which is arranged in a displacement groove at a first edge of a first panel, and a tongue groove at a second edge of an adjacent second panel, the flexible tongue is configured to cooperate with the tongue groove for locking of the first and the second edge in a vertical direction, wherein the mechanical locking system further comprises a locking strip, at the first or the second edge, provided with a locking element configured to cooperate with a locking groove at the other of the first or second edge for locking in a horizontal direction, characterized in


that the flexible tongue comprises a lower part and an upper part,


that the lower and the upper part are vertically and horizontally offset in relation to each other, and


that the lower part comprises a lower protrusion extending vertically downwards.


19. The set of floor panels as in embodiment 18, wherein the lower part comprises at least two lower protrusions along its length.


20. The set of floor panels as in embodiment 18, wherein the lower part comprises at least two inner protrusions extending horizontally inwardly and being spaced from each other along the displaceable tongue.

Claims
  • 1. A set of essentially identical floor panels provided with a mechanical locking system comprising a flexible tongue, which is arranged in a displacement groove at a first edge of a first panel, and a tongue groove at a second edge of an adjacent second panel, the flexible tongue is configured to cooperate with the tongue groove for locking of the first and the second edge in a vertical direction, wherein the mechanical locking system further comprises a locking strip, at the first or the second edge, provided with a locking element configured to cooperate with a locking groove at the other of the first or second edge for locking in a horizontal direction, wherein:the flexible tongue is displaceable in the horizontal direction in the displacement groove,an outer part of the flexible tongue comprises two or more curved edge sections each comprising a sliding surface, which is configured to cooperate with the second edge during locking, and each curved edge section comprising a locking surface that is configured to lock against the tongue groove,the curved edge sections are spaced from each other in a length direction of the flexible tongue,the flexible tongue is curved in a locked and in an unlocked position, wherein a first horizontal distance, from an outer upper edge of the first edge to an outer edge of the flexible tongue, and a second horizontal distance, from the outer upper edge of the first edge to an inner edge of the flexible tongue, varies along a length of the flexible tongue,the curved edge sections during locking are configured to be pressed inwardly by the second edge such that the curved edge sections are at least partially straightened and deformed to essentially straight rod shaped sections with a width which is essentially the same along essentially the entire length of the flexible tongue, andthe curved edge sections are configured to move back towards their initial positions in a final stage of the locking such that the locking surfaces are inserted into the tongue groove.
  • 2. The set of floor panels as in claim 1, wherein the curved edge sections are straightened and deformed to essentially straight rod shaped sections with a width which is essentially the same along essentially the entire length of the flexible tongue.
  • 3. The set of floor panels as in claim 1, wherein the width of the flexible tongue is essentially the same over 90% of the length of the flexible tongue.
  • 4. The set of floor panels as in claim 1, wherein the flexible tongue comprises tongue sections with cross sections such that the first horizontal distance is essentially the same as the second horizontal distance.
  • 5. The set of floor panels as in claim 1, wherein a major part of the flexible tongue comprises cross sections with a horizontal width W and a vertical thickness that is essentially the same.
  • 6. The set of floor panels as in claim 1, wherein the vertical thickness of the flexible tongue is less than about 1.5 mm.
  • 7. The set of floor panels as in claim 1, wherein the flexible tongue is freely arranged in the displacement groove.
  • 8. The set of floor panels as in claim 1, wherein one or more parts of the flexible tongue are attached to the panel.
  • 9. The set of floor panels as in claim 8, wherein a first longitudinal end portion of the flexible tongue is attached to the displacement groove.
  • 10. The set of floor panels as in claim 1, wherein the curved edge sections each comprise a convex portion between two concave portions as viewed in the vertical direction from above the flexible tongue.
  • 11. The set of floor panels as in claim 1, wherein the flexible tongue has a width less than 4 mm so that the curved edge sections during locking are configured to be pressed inwardly by the second edge such that the curved edge sections are at least partially straightened and deformed to essentially straight rod shaped sections with a width which is essentially the same along essentially the entire length of the flexible tongue, the width of the essentially straight rod shaped sections being less than 4 mm.
  • 12. The set of floor panels as in claim 1, wherein the flexible tongue has a width between about 1.5 mm and 3 mm so that the curved edge sections during locking are configured to be pressed inwardly by the second edge such that the curved edge sections are at least partially straightened and deformed to essentially straight rod shaped sections with a width which is essentially the same along essentially the entire length of the flexible tongue, the width of the essentially straight rod shaped sections being between about 1.5 mm and 3 mm.
  • 13. The set of floor panels as in claim 1, wherein curved edge sections are configured to spring back towards their initial positions in a final stage of the locking such that the locking surfaces are inserted into the tongue groove.
  • 14. The set of floor panels as in claim 1, wherein curved edge sections partly move back to their initial positions.
  • 15. The set of floor panels as in claim 1, wherein curved edge sections completely move back to their initial positions.
  • 16. The set of floor panels as in claim 1, wherein the curved edge sections are different.
  • 17. The set of floor panels as in claim 1, wherein the sliding surface is an inclined surface, forming an angle between 0° and 60° with respect to the vertical plane.
  • 18. The set of floor panels as in claim 1, wherein the locking surface is an inclined surface, forming an angle between 0° and 60° with respect to the vertical plane.
  • 19. The set of floor panels as in claim 1, wherein a thickness of the panel is between 6 and 10 mm.
  • 20. The set of floor panels as in claim 1, wherein a thickness of the panel is below 6 mm.
  • 21. A method for producing a locking system at edges of building panels comprising a core, wherein the method comprises: forming a strip at a lower part of a first edge and a locking element at an outer part of the strip,forming a tongue from the core at an outer part of the first edge,forming an insertion groove at the first edge, wherein said insertion groove is sidewardly open and extends in the horizontal direction,displacing the tongue at least partly into the insertion groove with a vertical and horizontal displacement, andforming a tongue groove and a locking groove at a second adjacent edge, wherein the tongue is configured to cooperate with the tongue groove for vertical locking and the locking element is configured to cooperate with the locking groove for horizontal locking.
  • 22. A set of essentially identical floor panels provided with a mechanical locking system comprising a flexible tongue, which is arranged in a displacement groove at a first edge of a first panel, and a tongue groove at a second edge of an adjacent second panel, the flexible tongue is configured to cooperate with the tongue groove for locking of the first and the second edge in a vertical direction, wherein the mechanical locking system further comprises a locking strip, at the first or the second edge, provided with a locking element configured to cooperate with a locking groove at the other of the first or second edge for locking in a horizontal direction, wherein the flexible tongue comprises a lower part and an upper part,the lower and the upper part are vertically and horizontally offset in relation to each other, andthe lower part comprises a lower protrusion extending vertically downwards.
Priority Claims (1)
Number Date Country Kind
1451438-4 Nov 2014 SE national
CROSS REFERENCE TO RELATED APPLICATIONS

The present application is a continuation of U.S. application Ser. No. 16/163,088, filed on 17 Oct. 2018, which is a continuation of U.S. application Ser. No. 14/951,976, filed on Nov. 25, 2015, now U.S. Pat. No. 10,138,636, which claims the benefit of Swedish Application No. 14514384, filed on Nov. 27, 2014. The entire contents of U.S. application Ser. No. 16/163,088, U.S. application Ser. No. 14/951,976 and Swedish Application No. 14514384 are hereby incorporated herein by reference in their entirety.

US Referenced Citations (742)
Number Name Date Kind
87853 Kappes Mar 1869 A
108068 Utley Oct 1870 A
124228 Stuart Mar 1872 A
213740 Conner Apr 1879 A
274354 McCarthy et al. Mar 1883 A
316176 Ransom Apr 1885 A
634581 Miller Oct 1899 A
861911 Stewart Jul 1907 A
1194636 Joy Aug 1916 A
1723306 Sipe Aug 1929 A
1743492 Sipe Jan 1930 A
1809393 Rockwell Jun 1931 A
1902716 Newton Mar 1933 A
2026511 Storm Dec 1935 A
2027292 Rockwell Jan 1936 A
2110728 Hoggatt Mar 1938 A
2142305 Davis Jan 1939 A
2204675 Grunert Jun 1940 A
2266464 Kraft Dec 1941 A
2277758 Hawkins Mar 1942 A
2430200 Wilson Nov 1947 A
2596280 Nystrom May 1952 A
2732706 Friedman Jan 1956 A
2740167 Rowley Apr 1956 A
2858584 Gaines Nov 1958 A
2863185 Riedi Dec 1958 A
2865058 Andersson Dec 1958 A
2889016 Warren Jun 1959 A
3023681 Worson Mar 1962 A
3077703 Bergstrom Feb 1963 A
3099110 Spaight Jul 1963 A
3147522 Schumm Sep 1964 A
3172237 Bradley Mar 1965 A
3187612 Hervey Jun 1965 A
3271787 Clary Sep 1966 A
3276797 Humes, Jr. Oct 1966 A
3308588 Von Wedel Mar 1967 A
3325585 Brenneman Jun 1967 A
3331180 Vissing et al. Jul 1967 A
3378958 Parks et al. Apr 1968 A
3396640 Fujihara Aug 1968 A
3512324 Reed May 1970 A
3517927 Kennel Jun 1970 A
3526071 Watanabe Sep 1970 A
3535844 Glaros Oct 1970 A
3572224 Perry Mar 1971 A
3579941 Tibbals May 1971 A
3626822 Koster Dec 1971 A
3640191 Hendrich Feb 1972 A
3694983 Couquet Oct 1972 A
3720027 Christensen Mar 1973 A
3722379 Koester Mar 1973 A
3731445 Hoffmann et al. May 1973 A
3742669 Mansfeld Jul 1973 A
3760547 Brenneman Sep 1973 A
3760548 Sauer et al. Sep 1973 A
3764767 Randolph Oct 1973 A
3778954 Meserole Dec 1973 A
3849235 Gwynne Nov 1974 A
3919820 Green Nov 1975 A
3950915 Cole Apr 1976 A
3994609 Puccio Nov 1976 A
4007767 Colledge Feb 1977 A
4007994 Brown Feb 1977 A
4030852 Hein Jun 1977 A
4037377 Howell et al. Jul 1977 A
4041665 de Munck Aug 1977 A
4064571 Phipps Dec 1977 A
4080086 Watson Mar 1978 A
4082129 Morelock Apr 1978 A
4100710 Kowallik Jul 1978 A
4104840 Heintz et al. Aug 1978 A
4107892 Bellem Aug 1978 A
4113399 Hansen, Sr. et al. Sep 1978 A
4154041 Namy May 1979 A
4169688 Toshio Oct 1979 A
RE30154 Jarvis Nov 1979 E
4196554 Anderson Apr 1980 A
4227430 Janssen et al. Oct 1980 A
4299070 Oltmanns Nov 1981 A
4304083 Anderson Dec 1981 A
4426820 Terbrack Jan 1984 A
4447172 Galbreath May 1984 A
4512131 Laramore Apr 1985 A
4599841 Haid Jul 1986 A
4622784 Black Nov 1986 A
4648165 Whitehorne Mar 1987 A
4819932 Trotter, Jr. Apr 1989 A
4948716 Mihayashi et al. Aug 1990 A
4998395 Bezner Mar 1991 A
5007222 Raymond Apr 1991 A
5026112 Rice Jun 1991 A
5071282 Brown Dec 1991 A
5135597 Barker Aug 1992 A
5148850 Urbanick Sep 1992 A
5173012 Ortwein et al. Dec 1992 A
5182892 Chase Feb 1993 A
5247773 Weir Sep 1993 A
5272850 Mysliwiec et al. Dec 1993 A
5274979 Tsai Jan 1994 A
5281055 Neitzke et al. Jan 1994 A
5293728 Christopher et al. Mar 1994 A
5295341 Kajiwara Mar 1994 A
5344700 McGath et al. Sep 1994 A
5348778 Knipp et al. Sep 1994 A
5373674 Winter, IV Dec 1994 A
5465546 Buse Nov 1995 A
5485702 Sholton Jan 1996 A
5502939 Zadok et al. Apr 1996 A
5548937 Shimonohara Aug 1996 A
5577357 Civelli Nov 1996 A
5587218 Betz Dec 1996 A
5598682 Haughian Feb 1997 A
5616389 Blatz Apr 1997 A
5618602 Nelson Apr 1997 A
5634309 Polen Jun 1997 A
5658086 Brokaw et al. Aug 1997 A
5694730 Del Rincon et al. Dec 1997 A
5755068 Ormiston May 1998 A
5860267 Pervan Jan 1999 A
5899038 Stroppiana May 1999 A
5910084 Koike Jun 1999 A
5950389 Porter Sep 1999 A
5970675 Schray Oct 1999 A
6006486 Moriau Dec 1999 A
6029416 Andersson Feb 2000 A
6052960 Yonemura Apr 2000 A
6065262 Motta May 2000 A
6098354 Skandis Aug 2000 A
6122879 Montes Sep 2000 A
6134854 Stanchfield Oct 2000 A
6145261 Godfrey et al. Nov 2000 A
6164618 Yonemura Dec 2000 A
6173548 Hamar et al. Jan 2001 B1
6182410 Pervan Feb 2001 B1
6203653 Seidner Mar 2001 B1
6210512 Jones Apr 2001 B1
6254301 Hatch Jul 2001 B1
6295779 Canfield Oct 2001 B1
6314701 Meyerson Nov 2001 B1
6324796 Heath Dec 2001 B1
6324809 Nelson Dec 2001 B1
6332733 Hamberger Dec 2001 B1
6339908 Chuang Jan 2002 B1
6345481 Nelson Feb 2002 B1
6358352 Schmidt Mar 2002 B1
6363677 Chen et al. Apr 2002 B1
6385936 Schneider May 2002 B1
6418683 Martensson et al. Jul 2002 B1
6446413 Gruber Sep 2002 B1
6449918 Nelson Sep 2002 B1
6450235 Lee Sep 2002 B1
6490836 Moriau et al. Dec 2002 B1
6505452 Hannig Jan 2003 B1
6546691 Leopolder Apr 2003 B2
6553724 Bigler Apr 2003 B1
6576079 Kai Jun 2003 B1
6584747 Kettler et al. Jul 2003 B2
6588166 Martensson Jul 2003 B2
6591568 Pålsson Jul 2003 B1
6601359 Olofsson Aug 2003 B2
6617009 Chen et al. Sep 2003 B1
6647689 Pletzer et al. Nov 2003 B2
6647690 Martensson Nov 2003 B1
6651400 Murphy Nov 2003 B1
6670019 Andersson Dec 2003 B2
6672030 Schulte Jan 2004 B2
6681820 Olofsson Jan 2004 B2
6682254 Olofsson et al. Jan 2004 B1
6684592 Martin Feb 2004 B2
6685391 Gideon Feb 2004 B1
6729091 Martensson May 2004 B1
6763643 Martensson Jul 2004 B1
6766622 Thiers Jul 2004 B1
6769219 Schwitte et al. Aug 2004 B2
6769835 Stridsman Aug 2004 B2
6802166 Gerhard Oct 2004 B1
6804926 Eisermann Oct 2004 B1
6808777 Andersson et al. Oct 2004 B2
6854235 Martensson Feb 2005 B2
6862857 Tychsen Mar 2005 B2
6865855 Knauseder Mar 2005 B2
6874291 Weber Apr 2005 B1
6880307 Schwitte et al. Apr 2005 B2
6948716 Drouin Sep 2005 B2
7021019 Knauseder Apr 2006 B2
7040068 Moriau et al. May 2006 B2
7051486 Pervan May 2006 B2
7108031 Secrest Sep 2006 B1
7121058 Pålsson Oct 2006 B2
7152383 Wilkinson, Jr. et al. Dec 2006 B1
7156383 Jacobs Jan 2007 B1
7188456 Knauseder Mar 2007 B2
7219392 Mullet et al. May 2007 B2
7251916 Konzelmann et al. Aug 2007 B2
7257926 Kirby Aug 2007 B1
7337588 Moebus Mar 2008 B1
7377081 Ruhdorfer May 2008 B2
7380383 Olofsson et al. Jun 2008 B2
7441384 Miller et al. Oct 2008 B2
7451578 Hannig Nov 2008 B2
7454875 Pervan et al. Nov 2008 B2
7516588 Pervan Apr 2009 B2
7517427 Sjoberg et al. Apr 2009 B2
7520092 Showers et al. Apr 2009 B2
7533500 Morton et al. May 2009 B2
7556849 Thompson et al. Jul 2009 B2
7568322 Pervan Aug 2009 B2
7584583 Bergelin et al. Sep 2009 B2
7591116 Thiers et al. Sep 2009 B2
7614197 Nelson Nov 2009 B2
7617651 Grafenauer Nov 2009 B2
7621092 Groeke et al. Nov 2009 B2
7621094 Moriau et al. Nov 2009 B2
7634884 Pervan Dec 2009 B2
7637068 Pervan Dec 2009 B2
7644553 Knauseder Jan 2010 B2
7654055 Ricker Feb 2010 B2
7677005 Pervan Mar 2010 B2
7716889 Pervan May 2010 B2
7721503 Pervan et al. May 2010 B2
7726088 Muehlebach Jun 2010 B2
7748176 Harding et al. Jul 2010 B2
7757452 Pervan Jul 2010 B2
7802411 Pervan Sep 2010 B2
7806624 McLean et al. Oct 2010 B2
7827749 Groeke et al. Nov 2010 B2
7841144 Pervan et al. Nov 2010 B2
7841145 Pervan et al. Nov 2010 B2
7841150 Pervan Nov 2010 B2
7849642 Forster et al. Dec 2010 B2
7856789 Eisermann Dec 2010 B2
7861482 Pervan et al. Jan 2011 B2
7866110 Pervan Jan 2011 B2
7896571 Hannig et al. Mar 2011 B1
7900416 Yokubison et al. Mar 2011 B1
7908815 Pervan et al. Mar 2011 B2
7908816 Grafenauer Mar 2011 B2
7913471 Pervan Mar 2011 B2
7930862 Bergelin et al. Apr 2011 B2
7954295 Pervan Jun 2011 B2
7964133 Cappelle Jun 2011 B2
7980039 Groeke Jul 2011 B2
7980041 Pervan Jul 2011 B2
8001741 Duernberger Aug 2011 B2
8006458 Olofsson et al. Aug 2011 B1
8033074 Pervan Oct 2011 B2
8042311 Pervan Oct 2011 B2
8061104 Pervan Nov 2011 B2
8079196 Pervan Dec 2011 B2
8112967 Pervan et al. Feb 2012 B2
8171692 Pervan May 2012 B2
8181416 Pervan et al. May 2012 B2
8191334 Braun Jun 2012 B2
8220217 Muehlebach Jul 2012 B2
8234830 Pervan et al. Aug 2012 B2
8245478 Bergelin Aug 2012 B2
8281549 Du Oct 2012 B2
8302367 Schulte Nov 2012 B2
8336272 Prager et al. Dec 2012 B2
8341914 Pervan et al. Jan 2013 B2
8341915 Pervan et al. Jan 2013 B2
8353140 Pervan et al. Jan 2013 B2
8359794 Biro et al. Jan 2013 B2
8359805 Pervan et al. Jan 2013 B2
8365499 Nilsson et al. Feb 2013 B2
8375673 Evjen Feb 2013 B2
8381476 Hannig Feb 2013 B2
8381477 Pervan et al. Feb 2013 B2
8387327 Pervan Mar 2013 B2
8448402 Pervan et al. May 2013 B2
8499521 Pervan et al. Aug 2013 B2
8505257 Boo et al. Aug 2013 B2
8511031 Bergelin et al. Aug 2013 B2
8522505 Beach Sep 2013 B2
8528289 Pervan et al. Sep 2013 B2
8544230 Pervan Oct 2013 B2
8544232 Wybo Oct 2013 B2
8544233 Pålsson Oct 2013 B2
8544234 Pervan et al. Oct 2013 B2
8572922 Pervan Nov 2013 B2
8578675 Palsson et al. Nov 2013 B2
8590250 Oh Nov 2013 B2
8596013 Boo Dec 2013 B2
8615952 Engström Dec 2013 B2
8621814 Cappelle Jan 2014 B2
8627862 Pervan et al. Jan 2014 B2
8631623 Engström Jan 2014 B2
8635829 Schulte Jan 2014 B2
8640418 Paetrow et al. Feb 2014 B2
8640424 Pervan et al. Feb 2014 B2
8650826 Pervan et al. Feb 2014 B2
8677714 Pervan Mar 2014 B2
8689512 Pervan Apr 2014 B2
8701368 Vermeulen Apr 2014 B2
8707650 Pervan Apr 2014 B2
8713886 Boo et al. May 2014 B2
8733065 Pervan May 2014 B2
8733410 Pervan May 2014 B2
8763341 Pervan Jul 2014 B2
8769905 Pervan Jul 2014 B2
8776473 Pervan et al. Jul 2014 B2
8806832 Kell Aug 2014 B2
8833026 Devos et al. Sep 2014 B2
8844236 Pervan et al. Sep 2014 B2
8857126 Pervan et al. Oct 2014 B2
8869485 Pervan Oct 2014 B2
8887468 Hakansson et al. Nov 2014 B2
8898988 Pervan Dec 2014 B2
8925274 Pervan et al. Jan 2015 B2
8938929 Engström Jan 2015 B2
8959866 Pervan Feb 2015 B2
8973331 Boo Mar 2015 B2
8991055 Cappelle Mar 2015 B2
8997423 Mann Apr 2015 B2
8997430 Vermeulen et al. Apr 2015 B1
9027306 Pervan May 2015 B2
9051738 Pervan et al. Jun 2015 B2
9068360 Pervan Jun 2015 B2
9080329 Döhring Jul 2015 B2
9091077 Boo Jul 2015 B2
9103126 Kell Aug 2015 B2
9103128 Pomberger Aug 2015 B2
9151062 Cappelle et al. Oct 2015 B2
9181697 Masanek, Jr. et al. Nov 2015 B2
9194134 Nygren et al. Nov 2015 B2
9206611 Vermeulen et al. Dec 2015 B2
9212492 Pervan et al. Dec 2015 B2
9216541 Boo et al. Dec 2015 B2
9238917 Pervan et al. Jan 2016 B2
9284737 Pervan et al. Mar 2016 B2
9290948 Capelle Mar 2016 B2
9309679 Pervan et al. Apr 2016 B2
9316002 Boo Apr 2016 B2
9340974 Pervan et al. May 2016 B2
9347227 Ramachandra et al. May 2016 B2
9347469 Pervan May 2016 B2
9359774 Pervan Jun 2016 B2
9366034 Meirlaen et al. Jun 2016 B2
9366036 Pervan Jun 2016 B2
9371654 Capelle Jun 2016 B2
9376821 Pervan et al. Jun 2016 B2
9382716 Pervan et al. Jul 2016 B2
9388584 Pervan et al. Jul 2016 B2
9428919 Pervan et al. Aug 2016 B2
9453347 Pervan et al. Sep 2016 B2
9458634 Derelov Oct 2016 B2
9476202 Clancy et al. Oct 2016 B2
9482012 Nygren et al. Nov 2016 B2
9540825 Ramachandra Jan 2017 B2
9540826 Pervan et al. Jan 2017 B2
9663940 Boo May 2017 B2
9725912 Pervan Aug 2017 B2
9771723 Pervan Sep 2017 B2
9777487 Pervan et al. Oct 2017 B2
9803374 Pervan Oct 2017 B2
9803375 Pervan Oct 2017 B2
9822533 Huang Nov 2017 B2
9856656 Pervan Jan 2018 B2
9874027 Pervan Jan 2018 B2
9945130 Nygren et al. Apr 2018 B2
9951526 Boo et al. Apr 2018 B2
10000935 Kell Jun 2018 B2
10006210 Pervan et al. Jun 2018 B2
10017948 Boo Jul 2018 B2
10113319 Pervan Oct 2018 B2
10125488 Boo Nov 2018 B2
10138636 Pervan Nov 2018 B2
10161139 Pervan Dec 2018 B2
10180005 Pervan et al. Jan 2019 B2
10214915 Pervan et al. Feb 2019 B2
10214917 Pervan et al. Feb 2019 B2
10240348 Pervan et al. Mar 2019 B2
10240349 Pervan et al. Mar 2019 B2
10246883 Derelöv Apr 2019 B2
10352049 Boo Jul 2019 B2
10358830 Pervan Jul 2019 B2
10378217 Pervan Aug 2019 B2
10458125 Pervan Oct 2019 B2
10480196 Boo Nov 2019 B2
10519676 Pervan Dec 2019 B2
10526792 Pervan et al. Jan 2020 B2
10538922 Pervan Jan 2020 B2
10570625 Pervan Feb 2020 B2
10640989 Pervan May 2020 B2
10655339 Pervan May 2020 B2
10669723 Pervan et al. Jun 2020 B2
10724251 Kell Jul 2020 B2
10731358 Pervan Aug 2020 B2
10794065 Boo et al. Oct 2020 B2
10828798 Fransson Nov 2020 B2
10933592 Blomgren et al. Mar 2021 B2
10934721 Pervan et al. Mar 2021 B2
10953566 Fransson et al. Mar 2021 B2
10968639 Pervan et al. Apr 2021 B2
10975577 Pervan et al. Apr 2021 B2
10995501 Pervan May 2021 B2
11045933 Fransson et al. Jun 2021 B2
11053691 Pervan Jul 2021 B2
11053692 Pervan Jul 2021 B2
11060302 Ylikangas et al. Jul 2021 B2
11066835 Boo Jul 2021 B2
11078673 Pervan et al. Aug 2021 B2
11091920 Kell Aug 2021 B2
11131099 Pervan Sep 2021 B2
20010024707 Andersson et al. Sep 2001 A1
20010034991 Martensson Nov 2001 A1
20010045150 Owens Nov 2001 A1
20020014047 Thiers Feb 2002 A1
20020031646 Chen et al. Mar 2002 A1
20020069611 Leopolder Jun 2002 A1
20020092263 Schulte Jul 2002 A1
20020095894 Pervan Jul 2002 A1
20020108343 Knauseder Aug 2002 A1
20020170258 Schwitte et al. Nov 2002 A1
20020170259 Ferris Nov 2002 A1
20020178674 Pervan Dec 2002 A1
20020178680 Martensson Dec 2002 A1
20020189190 Charmat et al. Dec 2002 A1
20020189747 Steinwender Dec 2002 A1
20020194807 Nelson et al. Dec 2002 A1
20030009971 Palmberg Jan 2003 A1
20030024199 Pervan et al. Feb 2003 A1
20030037504 Schwitte et al. Feb 2003 A1
20030066588 Pålsson Apr 2003 A1
20030084636 Pervan May 2003 A1
20030094230 Sjoberg May 2003 A1
20030101674 Pervan Jun 2003 A1
20030101681 Tychsen Jun 2003 A1
20030145549 Palsson et al. Aug 2003 A1
20030180091 Stridsman Sep 2003 A1
20030188504 Eisermann Ralf Oct 2003 A1
20030196405 Pervan Oct 2003 A1
20040016196 Pervan Jan 2004 A1
20040031225 Fowler Feb 2004 A1
20040031227 Knauseder Feb 2004 A1
20040049999 Krieger Mar 2004 A1
20040060255 Knauseder Apr 2004 A1
20040068954 Martensson Apr 2004 A1
20040123548 Gimpel et al. Jul 2004 A1
20040128934 Hecht Jul 2004 A1
20040137180 Sjoberg et al. Jul 2004 A1
20040139676 Knauseder Jul 2004 A1
20040139678 Pervan Jul 2004 A1
20040159066 Thiers et al. Aug 2004 A1
20040168392 Konzelmann et al. Sep 2004 A1
20040177584 Pervan Sep 2004 A1
20040182033 Wernersson Sep 2004 A1
20040182036 Sjoberg et al. Sep 2004 A1
20040200175 Weber Oct 2004 A1
20040211143 Hannig Oct 2004 A1
20040238001 Risden Dec 2004 A1
20040244325 Nelson Dec 2004 A1
20040250492 Becker Dec 2004 A1
20040261348 Vulin Dec 2004 A1
20050003132 Blix et al. Jan 2005 A1
20050028474 Kim Feb 2005 A1
20050050827 Schitter Mar 2005 A1
20050160694 Pervan Jul 2005 A1
20050166514 Pervan Aug 2005 A1
20050183370 Cripps Aug 2005 A1
20050205161 Lewark Sep 2005 A1
20050210810 Pervan Sep 2005 A1
20050235593 Hecht Oct 2005 A1
20050252130 Martensson Nov 2005 A1
20050252167 Van Horne, Jr. Nov 2005 A1
20050268570 Pervan Dec 2005 A2
20060053724 Braun et al. Mar 2006 A1
20060070333 Pervan Apr 2006 A1
20060101769 Pervan May 2006 A1
20060156670 Knauseder Jul 2006 A1
20060174577 O'Neil Aug 2006 A1
20060179754 Yang Aug 2006 A1
20060185287 Glazer et al. Aug 2006 A1
20060236642 Pervan Oct 2006 A1
20060260254 Pervan et al. Nov 2006 A1
20060272262 Pomberger Dec 2006 A1
20070003366 Wedberg Jan 2007 A1
20070006543 Engström Jan 2007 A1
20070011981 Eiserman Jan 2007 A1
20070022689 Thrush et al. Feb 2007 A1
20070028547 Grafenauer Feb 2007 A1
20070065293 Hannig Mar 2007 A1
20070094969 McIntosh et al. May 2007 A1
20070094985 Grafenauer May 2007 A1
20070108679 Grothaus May 2007 A1
20070113509 Zhang May 2007 A1
20070151189 Yang et al. Jul 2007 A1
20070175156 Pervan et al. Aug 2007 A1
20070193178 Groeke et al. Aug 2007 A1
20070209736 Deringor et al. Sep 2007 A1
20070214741 Llorens Miravet Sep 2007 A1
20080000182 Pervan Jan 2008 A1
20080000185 Duernberger Jan 2008 A1
20080000186 Pervan et al. Jan 2008 A1
20080000187 Pervan et al. Jan 2008 A1
20080005998 Pervan Jan 2008 A1
20080010931 Pervan et al. Jan 2008 A1
20080010937 Pervan et al. Jan 2008 A1
20080028707 Pervan Feb 2008 A1
20080034708 Pervan Feb 2008 A1
20080041008 Pervan Feb 2008 A1
20080053029 Ricker Mar 2008 A1
20080066415 Pervan Mar 2008 A1
20080104921 Pervan et al. May 2008 A1
20080110125 Pervan May 2008 A1
20080134607 Pervan Jun 2008 A1
20080134613 Pervan Jun 2008 A1
20080134614 Pervan Jun 2008 A1
20080155930 Pervan et al. Jul 2008 A1
20080184646 Alford Aug 2008 A1
20080199676 Bathelier et al. Aug 2008 A1
20080216434 Pervan Sep 2008 A1
20080216920 Pervan Sep 2008 A1
20080236088 Hannig et al. Oct 2008 A1
20080295432 Pervan et al. Dec 2008 A1
20080295438 Knauseder Dec 2008 A1
20080302044 Johansson Dec 2008 A1
20090019806 Muehlebach Jan 2009 A1
20090049787 Hannig Feb 2009 A1
20090064624 Sokol Mar 2009 A1
20090100782 Groeke et al. Apr 2009 A1
20090126308 Hannig et al. May 2009 A1
20090133353 Pervan et al. May 2009 A1
20090151290 Liu Jun 2009 A1
20090173032 Prager et al. Jul 2009 A1
20090193741 Capelle Aug 2009 A1
20090193748 Boo et al. Aug 2009 A1
20090193753 Schitter Aug 2009 A1
20090217615 Engstrom Sep 2009 A1
20090241460 Beaulieu Oct 2009 A1
20090249733 Moebus Oct 2009 A1
20090308014 Muehlebach Dec 2009 A1
20100018149 Thiers Jan 2010 A1
20100043333 Hannig et al. Feb 2010 A1
20100083603 Goodwin Apr 2010 A1
20100170189 Schulte Jul 2010 A1
20100173122 Susnjara Jul 2010 A1
20100218450 Braun Sep 2010 A1
20100275541 Prinz Nov 2010 A1
20100281803 Cappelle Nov 2010 A1
20100293879 Pervan et al. Nov 2010 A1
20100300029 Braun et al. Dec 2010 A1
20100300031 Pervan et al. Dec 2010 A1
20100313510 Tang Dec 2010 A1
20100319290 Pervan Dec 2010 A1
20100319291 Pervan et al. Dec 2010 A1
20110016815 Yang Jan 2011 A1
20110030303 Pervan et al. Feb 2011 A1
20110041996 Pervan Feb 2011 A1
20110047922 Fleming, III Mar 2011 A1
20110088344 Pervan et al. Apr 2011 A1
20110088345 Pervan Apr 2011 A1
20110088346 Hannig Apr 2011 A1
20110094178 Braun Apr 2011 A1
20110131916 Chen Jun 2011 A1
20110138722 Hannig Jun 2011 A1
20110154763 Bergelin et al. Jun 2011 A1
20110162312 Schulte Jul 2011 A1
20110167744 Whispell Jul 2011 A1
20110167750 Pervan Jul 2011 A1
20110167751 Engström Jul 2011 A1
20110173914 Engström Jul 2011 A1
20110197535 Baker et al. Aug 2011 A1
20110225921 Schulte Sep 2011 A1
20110225922 Pervan et al. Sep 2011 A1
20110247285 Wybo et al. Oct 2011 A1
20110252733 Pervan Oct 2011 A1
20110271631 Engstrom Nov 2011 A1
20110271632 Cappelle et al. Nov 2011 A1
20110283650 Pervan et al. Nov 2011 A1
20120017533 Pervan et al. Jan 2012 A1
20120031029 Pervan et al. Feb 2012 A1
20120036804 Pervan Feb 2012 A1
20120042598 Vermeulen et al. Feb 2012 A1
20120055112 Engström Mar 2012 A1
20120124932 Schulte et al. May 2012 A1
20120151865 Pervan et al. Jun 2012 A1
20120174515 Pervan Jul 2012 A1
20120174519 Schulte Jul 2012 A1
20120174520 Pervan Jul 2012 A1
20120174521 Schulte et al. Jul 2012 A1
20120192521 Schulte Aug 2012 A1
20120222378 Cappelle et al. Sep 2012 A1
20120240502 Wilson et al. Sep 2012 A1
20120279161 Håkansson et al. Nov 2012 A1
20120304590 Engström Dec 2012 A1
20120324816 Huang Dec 2012 A1
20130008117 Pervan Jan 2013 A1
20130008118 Baert et al. Jan 2013 A1
20130014463 Pervan Jan 2013 A1
20130019555 Pervan Jan 2013 A1
20130025231 Vermeulen Jan 2013 A1
20130025964 Ramachandra et al. Jan 2013 A1
20130042562 Pervan Feb 2013 A1
20130042563 Pervan Feb 2013 A1
20130042564 Pervan et al. Feb 2013 A1
20130042565 Pervan Feb 2013 A1
20130047536 Pervan Feb 2013 A1
20130081349 Pervan et al. Apr 2013 A1
20130111837 Devos et al. May 2013 A1
20130111845 Pervan May 2013 A1
20130145708 Pervan Jun 2013 A1
20130152500 Engström Jun 2013 A1
20130160391 Pervan et al. Jun 2013 A1
20130167467 Vermeulen et al. Jul 2013 A1
20130219806 Carrubba Aug 2013 A1
20130232905 Pervan Sep 2013 A2
20130239508 Pervan et al. Sep 2013 A1
20130263454 Boo et al. Oct 2013 A1
20130263547 Boo Oct 2013 A1
20130283719 Döhring et al. Oct 2013 A1
20130305650 Liu Nov 2013 A1
20130309441 Hannig Nov 2013 A1
20130318906 Pervan et al. Dec 2013 A1
20140007539 Pervan et al. Jan 2014 A1
20140020324 Pervan Jan 2014 A1
20140026513 Bishop Jan 2014 A1
20140033633 Kell Feb 2014 A1
20140033634 Pervan Feb 2014 A1
20140053497 Pervan et al. Feb 2014 A1
20140059966 Boo Mar 2014 A1
20140069043 Pervan Mar 2014 A1
20140090335 Pervan et al. Apr 2014 A1
20140109501 Pervan Apr 2014 A1
20140109506 Pervan et al. Apr 2014 A1
20140123586 Pervan et al. May 2014 A1
20140130437 Cappelle May 2014 A1
20140140766 Riccobene et al. May 2014 A1
20140144096 Vermeulen et al. May 2014 A1
20140150369 Hannig Jun 2014 A1
20140186104 Hamberger Jul 2014 A1
20140190112 Pervan Jul 2014 A1
20140208677 Pervan et al. Jul 2014 A1
20140223852 Pervan Aug 2014 A1
20140237931 Pervan Aug 2014 A1
20140250813 Nygren et al. Sep 2014 A1
20140260060 Pervan et al. Sep 2014 A1
20140283466 Boo Sep 2014 A1
20140290173 Hamberger Oct 2014 A1
20140305065 Pervan Oct 2014 A1
20140338177 Vermeulen et al. Nov 2014 A1
20140366476 Pervan Dec 2014 A1
20140366477 Kell Dec 2014 A1
20140373478 Pervan et al. Dec 2014 A2
20140373480 Pervan et al. Dec 2014 A1
20150000221 Boo Jan 2015 A1
20150013260 Pervan Jan 2015 A1
20150047278 Blount Feb 2015 A1
20150047284 Cappelle Feb 2015 A1
20150059281 Pervan Mar 2015 A1
20150089896 Pervan et al. Apr 2015 A2
20150113908 Ramachandra et al. Apr 2015 A1
20150121796 Pervan May 2015 A1
20150152644 Boo Jun 2015 A1
20150167318 Pervan Jun 2015 A1
20150176289 Hannig Jun 2015 A1
20150176619 Baker Jun 2015 A1
20150211239 Pervan Jul 2015 A1
20150233125 Pervan et al. Aug 2015 A1
20150267419 Pervan Sep 2015 A1
20150300029 Pervan Oct 2015 A1
20150330088 Derelov Nov 2015 A1
20150337537 Boo Nov 2015 A1
20150337542 Cappelle et al. Nov 2015 A1
20150368910 Kell Dec 2015 A1
20160032596 Nygren et al. Feb 2016 A1
20160060879 Pervan Mar 2016 A1
20160069086 Hüllenkremer Mar 2016 A1
20160069088 Boo et al. Mar 2016 A1
20160076260 Pervan et al. Mar 2016 A1
20160090744 Pervan et al. Mar 2016 A1
20160153200 Pervan Jun 2016 A1
20160160502 Brousseau Jun 2016 A1
20160168866 Pervan et al. Jun 2016 A1
20160186426 Boo Jun 2016 A1
20160194884 Pervan et al. Jul 2016 A1
20160201336 Pervan Jul 2016 A1
20160237695 Pervan Aug 2016 A1
20160251859 Pervan et al. Sep 2016 A1
20160251860 Pervan Sep 2016 A1
20160281368 Pervan et al. Sep 2016 A1
20160281370 Pervan et al. Sep 2016 A1
20160289984 Wagner Oct 2016 A1
20160326751 Pervan Nov 2016 A1
20160340913 Derelöv Nov 2016 A1
20170030088 Simoens Feb 2017 A1
20170037641 Nygren et al. Feb 2017 A1
20170067261 Hannig et al. Mar 2017 A1
20170079433 Derelöv et al. Mar 2017 A1
20170081860 Boo Mar 2017 A1
20170089379 Pervan Mar 2017 A1
20170254096 Pervan Sep 2017 A1
20170321433 Pervan et al. Nov 2017 A1
20170328072 Hannig Nov 2017 A1
20170362834 Pervan et al. Dec 2017 A1
20180001509 Myllykangas et al. Jan 2018 A1
20180001510 Fransson Jan 2018 A1
20180001573 Blomgren et al. Jan 2018 A1
20180002933 Pervan Jan 2018 A1
20180016783 Boo Jan 2018 A1
20180030737 Pervan Feb 2018 A1
20180030738 Pervan Feb 2018 A1
20180119431 Pervan et al. May 2018 A1
20180155934 D'Hondt et al. Jun 2018 A1
20180178406 Fransson et al. Jun 2018 A1
20180313094 Pervan Nov 2018 A1
20190024387 Pervan et al. Jan 2019 A1
20190048592 Boo Feb 2019 A1
20190048596 Pervan Feb 2019 A1
20190063076 Boo et al. Feb 2019 A1
20190071879 Thiers Mar 2019 A1
20190093370 Pervan et al. Mar 2019 A1
20190093371 Pervan Mar 2019 A1
20190119928 Pervan et al. Apr 2019 A1
20190127989 Kell May 2019 A1
20190127990 Pervan et al. May 2019 A1
20190169859 Pervan et al. Jun 2019 A1
20190232473 Fransson et al. Aug 2019 A1
20190271165 Boo Sep 2019 A1
20190376298 Pervan et al. Dec 2019 A1
20190394314 Pervan et al. Dec 2019 A1
20200087927 Pervan Mar 2020 A1
20200102756 Pervan Apr 2020 A1
20200109569 Pervan Apr 2020 A1
20200149289 Pervan May 2020 A1
20200173175 Pervan Jun 2020 A1
20200224430 Ylikangas et al. Jul 2020 A1
20200263437 Pervan Aug 2020 A1
20200284045 Kell Sep 2020 A1
20200318667 Derelöv Oct 2020 A1
20200354969 Pervan et al. Nov 2020 A1
20200412852 Pervan et al. Dec 2020 A9
20210016465 Fransson Jan 2021 A1
20210047840 Pervan Feb 2021 A1
20210047841 Pervan et al. Feb 2021 A1
20210087831 Nilsson et al. Mar 2021 A1
20210087832 Boo Mar 2021 A1
20210087833 Ylikangas et al. Mar 2021 A1
20210087834 Ylikangas et al. Mar 2021 A1
20210310257 Boo Oct 2021 A1
20210348396 Pervan et al. Nov 2021 A1
Foreign Referenced Citations (143)
Number Date Country
201588375 Sep 2010 CN
201110035241.6 Jan 2011 CN
138 992 Jul 1901 DE
142 293 Jul 1902 DE
2 159 042 Jun 1973 DE
25 05 489 Aug 1976 DE
33 43 601 Jun 1985 DE
33 43 601 Jun 1985 DE
39 32 980 Nov 1991 DE
42 15 273 Nov 1993 DE
42 42 530 Jun 1994 DE
196 01 322 May 1997 DE
299 22 649 Mar 2000 DE
200 02 744 Aug 2000 DE
199 40 837 Nov 2000 DE
199 58 225 Jun 2001 DE
202 05 774 Aug 2002 DE
10 2004 001 363 Aug 2005 DE
10 2005 002 297 Aug 2005 DE
10 2006 024 184 Nov 2007 DE
10 2007 018 309 Aug 2008 DE
10 2007 016 533 Oct 2008 DE
10 2007 032 885 Jan 2009 DE
10 2007 035 648 Jan 2009 DE
10 2007 049 792 Feb 2009 DE
10 2009 041 297 Mar 2011 DE
0 013 852 Aug 1980 EP
0 871 156 Oct 1998 EP
1 120 515 Aug 2001 EP
1 146 182 Oct 2001 EP
1 251 219 Oct 2002 EP
1 279 778 Jan 2003 EP
1 350 904 Oct 2003 EP
1 350 904 Oct 2003 EP
1 396 593 Mar 2004 EP
1 420 125 May 2004 EP
1 437 457 Jul 2004 EP
1 437 457 Jul 2004 EP
1 640 530 Mar 2006 EP
1 650 375 Apr 2006 EP
1 650 375 Sep 2006 EP
1 980 683 Oct 2008 EP
2 000 610 Dec 2008 EP
2 236 694 Oct 2010 EP
2 270 291 Jan 2011 EP
2 278 091 Jan 2011 EP
2 270 291 May 2011 EP
2 333 195 Jun 2011 EP
2 388 394 Nov 2011 EP
2 333 195 Jul 2014 EP
2 734 684 Aug 2016 EP
1.138.595 Jun 1957 FR
2 256 807 Aug 1975 FR
2 810 060 Dec 2001 FR
240629 Oct 1925 GB
376352 Jul 1932 GB
1171337 Nov 1969 GB
2 051 916 Jan 1981 GB
H03-110258 May 1991 JP
H05-018028 Jan 1993 JP
H06-146553 May 1994 JP
H06-288017 Oct 1994 JP
H06-306961 Nov 1994 JP
H06-322848 Nov 1994 JP
H07-300979 Nov 1995 JP
2900115 Jun 1999 JP
2002-047782 Feb 2002 JP
526 688 May 2005 SE
WO 9426999 Nov 1994 WO
WO 9627721 Sep 1996 WO
WO 9747834 Dec 1997 WO
WO 9822677 May 1998 WO
WO 9966151 Dec 1999 WO
WO 9966152 Dec 1999 WO
WO 0043281 Jul 2000 WO
WO 0047841 Aug 2000 WO
WO 0055067 Sep 2000 WO
WO 0102670 Jan 2001 WO
WO 0102672 Jan 2001 WO
WO 0107729 Feb 2001 WO
WO 0138657 May 2001 WO
WO 0144669 Jun 2001 WO
WO 0144669 Jun 2001 WO
WO 0148332 Jul 2001 WO
WO 0151732 Jul 2001 WO
WO 0151733 Jul 2001 WO
WO 0166877 Sep 2001 WO
WO 0175247 Oct 2001 WO
WO 0177461 Oct 2001 WO
WO 02055809 Jul 2002 WO
WO 02055810 Jul 2002 WO
WO 02081843 Oct 2002 WO
WO 02103135 Dec 2002 WO
WO 03012224 Feb 2003 WO
WO 03016654 Feb 2003 WO
WO 03025307 Mar 2003 WO
WO 03038210 May 2003 WO
WO 03044303 May 2003 WO
WO 03074814 Sep 2003 WO
WO 03083234 Oct 2003 WO
WO 03087497 Oct 2003 WO
WO 03089736 Oct 2003 WO
WO 2004003314 Jan 2004 WO
WO 2004020764 Mar 2004 WO
WO 2004048716 Jun 2004 WO
WO 2004050780 Jun 2004 WO
WO 2004079128 Sep 2004 WO
WO 2004079130 Sep 2004 WO
WO 2004085765 Oct 2004 WO
WO 2005003488 Jan 2005 WO
WO 2005003489 Jan 2005 WO
WO 2005054599 Jun 2005 WO
WO 2006050928 May 2006 WO
WO 2006104436 Oct 2006 WO
WO 2006123988 Nov 2006 WO
WO 2006125646 Nov 2006 WO
WO 2007015669 Feb 2007 WO
WO 2007015669 Feb 2007 WO
WO 2007142589 Dec 2007 WO
WO 2008004960 Jan 2008 WO
WO 2008004960 Jan 2008 WO
WO 2008004960 Jan 2008 WO
WO 2008017281 Feb 2008 WO
WO 2008060232 May 2008 WO
WO 2009066153 May 2009 WO
WO 2009116926 Sep 2009 WO
WO 2010070472 Jun 2010 WO
WO 2010070472 Jun 2010 WO
WO 2010070605 Jun 2010 WO
WO 2010087752 Aug 2010 WO
WO 2011001326 Jan 2011 WO
WO 2011012104 Feb 2011 WO
WO 2011012104 Feb 2011 WO
WO 2011012105 Feb 2011 WO
WO 2011032540 Mar 2011 WO
WO 2011038709 Apr 2011 WO
WO 2011108812 Sep 2011 WO
WO 2011151758 Dec 2011 WO
WO 2011151758 Dec 2011 WO
WO 2012059093 May 2012 WO
WO 2013012386 Jan 2013 WO
WO 2014209213 Dec 2014 WO
WO 2015105449 Jul 2015 WO
Non-Patent Literature Citations (41)
Entry
U.S. Appl. No. 16/269,806, Darko Pervan and Tony Pervan, filed Feb. 7, 2019, (Cited herein as US Patent Application Publication No. 2019/0169859 A1 of Jun. 6, 2019.
U.S. Appl. No. 16/419,660, Christian Boo, filed May 22, 2019, (Cited herein as US Patent Application Publication No. 2019/0271165 A1 of Sep. 5, 2019.
U.S. Appl. No. 16/439,827, Darko Pervan, filed Jun. 13, 2019, (Cited herein as US Patent Application Publication No. 2020/0102756 A1 of Apr. 2, 2020).
U.S. Appl. No. 16/692,104, Darko Pervan, filed Nov. 22, 2019, (Cited herein as US Patent Application Publication No. 2020/0087927 A1 of Mar. 19, 2020).
U.S. Appl. No. 16/581,990, Darko Pervan, filed Sep. 25, 2019, (Cited herein as US Patent Application Publication No. 2020/0263437 A1 of Aug. 20, 2020).
U.S. Appl. No. 16/713,373, Roger Ylikangas, Karl Quist, Anders Nilsson and Caroline Landgård, filed Dec. 13, 2019, (Cited herein as US Patent Application Publication No. 2020/0224430 A1 of Jul. 16, 2020).
U.S. Appl. No. 16/781,301, Darko Pervan, filed Feb. 4, 2020, (Cited herein as US Patent Application Publication No. 2020/0173175 A1 of Jun. 4, 2020).
U.S. Appl. No. 16/861,666, Darko Pervan, filed Apr. 29, 2020, , (Cited herein as US Patent Application Publication No. 2021/0047840 A1 of Feb. 18, 2021.
U.S. Appl. No. 16/861,686, Darko Pervan and Agne Pålsson, filed Apr. 29, 2020, (Cited herein as US Patent Application Publication No. 2021/0047841 A1 of Feb. 18, 2021).
U.S. Appl. No. 17/206,702, Darko Pervan, Niclas Håkansson and Per Nygren, filed Mar. 19, 2021.
U.S. Appl. No. 17/224,290, Darko Pervan, filed Apr. 7, 2021.
U.S. Appl. No. 17/206,702, Pervan et al.
U.S. Appl. No. 17/224,290, Pervan.
Pervan, Darko, et al., U.S. Appl. No. 17/206,702 entitled “Mechanical Locking of Floor Panels with a Flexible Tongue,” filed in the U.S. Patent and Trademark Office Mar. 19, 2021.
Pervan, Darko, U.S. Appl. No. 17/224,290 entitled “Mechanical Locking System for Floor Panels,” filed in the U.S. Patent and Trademark Office Apr. 7, 2021.
International Search Report dated Mar. 24, 2016 in PCT/SE2015/051270, 7 pages ISA/SE, Patent-och registreringsverket, Stockholm, SE.
Extended European Search Report mailed in EP 15862298.5, dated Jun. 6, 2018, European Patent Office, Munich, DE, 11 pages.
Extended European Search Report mailed in EP 19195822.2, dated Oct. 9, 2019, European Patent Office, Munich, DE, 11 pages.
Välinge Innovation AB, Technical Disclosure entitled “Mechanical locking for floor panels with a flexible bristle tongue,” IP.com No. IPCOM000145262D, Jan. 12, 2007, IP.com PriorArtDatabase, 57 pages (VA033).
Engstrand, Ola (Contact)/Välinge Innovation AB, Technical Disclosure entitled “VA-038 Mechanical Locking of Floor Panels With Vertical Folding,” IP com No. IPCOM000179246D, Feb. 10, 2009, IP.com Prior Art Database, 59 pages.
Engstrand, Ola (Contact)/Välinge Innovation AB, Technical Disclosure entitled “VA043 5G Linear Slide Tongue,” IP com No. IPCOM000179015D, Feb. 4, 2009, IP.com Prior Art Database, 126 pages.
Engstrand, Ola (Owner)/Välinge Innovation AB, Technical Disclosure entitled “VA043b PCT Mechanical Locking of Floor Panels,” IP com No. IPCOM000189420D, Nov. 9, 2009, IP.com Prior Art Database, 62 pages.
Engstrand, Ola (Contact)/Välinge Innovation AB, Technical Disclosure entitled “VA055 Mechanical locking system for floor panels,” IP com No. IPCOM000206454D, Apr. 27, 2011, IP.com Prior Art Database, 25 pages.
Engstrand, Ola (Contact)/Välinge Innovation AB, Technical Disclosure entitled “VA058 Rocker Tongue,” IP com No. IPCOM000203832D, Feb. 4, 2011, IP.com Prior Art Database, 22 pages.
Pervan, Darko (Author)/Välinge Flooring Technology, Technical Disclosure entitled “VA066b Glued Tongue,” IP com No. IPCOM000210865D, Sep. 13, 2011, IP.com Prior Art Database, 19 pages.
Pervan, Darko (lnventor)/Välinge Flooring Technology AB, Technical Disclosure entitled “VA067 Fold Slide Loc,” IP com No. IPCOM000208542D, Jul. 12, 2011, IP.com Prior Art Database, 37 pages.
Pervan, Darko (Author)/Välinge Flooring Technology, Technical Disclosure entitled “VA068 Press Lock VFT,” IP com No. IPCOM000208854D, Jul. 20, 2011, IP.com Prior Art Database, 25 pages.
Pervan, Darko (Author), Technical Disclosure entitled “VA069 Combi Tongue,” IP com No. IPCOM000210866D, Sep. 13, 2011, IP.com Prior Art Database, 41 pages.
Pervan, Darko (Author), Technical Disclosure entitled “VA070 Strip Part,” IP com No. IPCOM000210867D, Sep. 13, 2011, IP.com Prior Art Database, 43 pages.
Pervan, Darko (Author), Technical Disclosure entitled “VA071 Pull Lock,” IP com No. IPCOM000210868D, Sep. 13, 2011, IP.com Prior Art Database, 22 pages.
Pervan, Darko (Author), Technical Disclosure entitled “VA073a Zip Loc,” IP com No. IPCOM000210869D, Sep. 13, 2011, IP.com Prior Art Database, 36 pages.
LifeTips, “Laminate Flooring Tips,” available at (http://flooring.lifetips.com/cat/61734/laminate-flooring-tips/index.html), 2000, 12 pages.
U.S. Appl. No. 17/314,431, Darko Pervan, filed May 7, 2021.
U.S. Appl. No. 17/342,624, Roger Ylikangas, Karl Quist, Anders Nilsson and Caroline Landgård, filed Jun. 9, 2021.
U.S. Appl. No. 17/349,345, Christian Boo, filed Jun. 16, 2021.
Pervan, Darko, U.S. Appl. No. 17/314,431 entitled “Mechanical Locking of Floor Panels with Vertical Folding,” filed in the U.S. Patent and Trademark Office May 7, 2021.
Ylikangas, Roger, et al., U.S. Appl. No. 17/342,624 entitled “Unlocking System for Panels,” filed in the U.S. Patent and Trademark Office Jun. 9, 2021.
Boo, Christian, U.S. Appl. No. 17/349,345 entitled “Building Panel with a Mechanical Locking System,” filed in the U.S. Patent and Trademark Office Jun. 16, 2021.
Extended European Search Report mailed in EP 21168281.0, dated Jul. 12, 2021, European Patent Office, Munich, DE, 12 pages.
U.S. Appl. No. 17/518,836, Darko Pervan and Agne Pålsson, filed Nov. 4, 2021.
**Pervan, Darko, et al., U.S. Appl. No. 17/518,836 entitled “Mechanical Locking of Floor Panels with a Flexible Bristle Tongue,” filed in the U.S. Patent and Trademark Office on Nov. 4, 2021.
Related Publications (1)
Number Date Country
20210071428 A1 Mar 2021 US
Continuations (2)
Number Date Country
Parent 16163088 Oct 2018 US
Child 16908902 US
Parent 14951976 Nov 2015 US
Child 16163088 US