System for joining building panels

Information

  • Patent Grant
  • 7086205
  • Patent Number
    7,086,205
  • Date Filed
    Thursday, July 25, 2002
    22 years ago
  • Date Issued
    Tuesday, August 8, 2006
    18 years ago
Abstract
The invention relates to a system for laying and mechanically joining building panels, especially thin, hard, floating floors. Adjacent joint edges (3, 4) of two panels (1, 2) engage each other to provide a first mechanical connection locking the joint edges (3, 4) in a first direction (D1) perpendicular to the principal plane of the panels. In each joint, there is further provided a strip (6) which is integrated with one joint edge (3) and which projects behind the other joint edge (4). The strip (6) has an upwardly protruding locking element (8) engaging in a locking groove (14) in the rear side (16) of the other joint edge (4) to form a second mechanical connection locking the panels (1, 2) in a second direction (D2) parallel to the principal plane of the panels and at right angles to the joint. Both the first and the second mechanical connection allow mutual displacement of joined panels (1, 2) in the direction of the joint.
Description
TECHNICAL FIELD

The invention generally relates to a system for providing a joint along adjacent joint edges of two building panels, especially floor panels.


More specifically, the joint is of the type where the adjacent joint edges together form a first mechanical connection 17 locking the joint edges to each other in a first direction at right angles to the principal plane of the panels, and where a locking device forms a second mechanical connection 19 locking the panels to each other in a second direction parallel to the principal plane and at right angles to the joint edges, the locking device comprising a locking groove which extends parallel to and spaced from the joint edge of one of the panels, and said locking groove being open at the rear side of this one panel.


The invention is especially well suited for use in joining floor panels, especially thin laminated floors. Thus, the following description of the prior art and of the objects and features of the invention will be focused on this field of use. It should however be emphasised that the invention is useful also for joining ordinary wooden floors as well as other types of building panels, such as wall panels and roof slabs.


BACKGROUND OF THE INVENTION

A joint of the aforementioned type is known e.g. from SE 450,141. The first mechanical connection is achieved by means of joint edges having tongues and grooves. The locking device for the second mechanical connection comprises two oblique locking grooves, one in the rear side of each panel, and a plurality of spaced-apart spring clips which are distributed along the joint and the legs of which are pressed into the grooves, and which are biased so as to tightly clamp the floor panels together. Such a joining technique is especially useful for joining thick floor panels to form surfaces of a considerable expanse.


Thin floor panels of a thickness of about 7–10 mm, especially laminated floors, have in a short time taken a substantial share of the market. All thin floor panels employed are laid as “floating floors” without being attached to the supporting structure. As a rule, the dimension of the floor panels is 200.times.1200 mm, and their long and short sides are formed with tongues and grooves. Traditionally, the floor is assembled by applying glue in the groove and forcing the floor panels together. The tongue is then glued in the groove of the other panel. As a rule, a laminated floor consists of an upper decorative wear layer 80 of laminate having a thickness of about 1 mm, an intermediate core 81 of particle board or other board, and a base layer 82 to balance the construction. The core has essentially poorer properties than the laminate, e.g. in respect of hardness and water resistance, but it is nonetheless needed primarily for providing a groove and tongue for assemblage. This means that the overall thickness must be at least about 7 mm. These known laminated floors using glued tongue-and-groove joints however suffer from several inconveniences.


First, the requirement of an overall thickness of at least about 7 mm entails an undesirable restraint in connection with the laying of the floor, since it is easier to cope with low thresholds when using thin floor panels, and doors must often be adjusted in height to come clear of the floor laid. Moreover, manufacturing costs are directly linked with the consumption of material.


Second, the core must be made of moisture-absorbent material to permit using water-based glues when laying the floor. Therefore, it is not possible to make the floors thinner using so-called compact laminate, because of the absence of suitable gluing methods for such non-moisture-absorbent core materials.


Third, since the laminate layer of the laminated floors is highly wear-resistant, tool wear is a major problem when working the surface in connection with the formation of the tongue.


Fourth, the strength of the joint, based on a glued tongue-and-groove connection, is restricted by the properties of the core and of the glue as well as by the depth and height of the groove. The laying quality is entirely dependent on the gluing. In the event of poor gluing, the joint will open as a result of the tensile stresses which occur e.g. in connection with a change in air humidity.


Fifth, laying a floor with glued tongue-and-groove joints is time-consuming, in that glue must be applied to every panel on both the long and short sides thereof.


Sixth, it is not possible to disassemble a glued floor once laid, without having to break up the joints. Floor panels that have been taken up cannot therefore be used again. This is a drawback particularly in rental houses where the flat concerned must be put back into the initial state of occupancy. Nor can damaged or worn-out panels be replaced without extensive efforts, which would be particularly desirable on public premises and other areas where parts of the floor are subjected to great wear.


Seventh, known laminated floors are not suited for such use as involves a considerable risk of moisture penetrating down into the moisture-sensitive core.


Eighth, present-day hard, floating floors require, prior to laying the floor panels on hard subfloors, the laying of a separate underlay of floor board, felt, foam or the like, which is to damp impact sounds and to make the floor more pleasant to walk on. The placement of the underlay is a complicated operation, since the underlay must be placed in edge-to-edge fashion. Different underlays affect the properties of the floor.


There is thus a strongly-felt need to overcome the above-mentioned drawbacks of the prior art. It is however not possible simply to use the known joining technique with glued tongues and grooves for very thin floors, e.g. with floor thicknesses of about 3 mm, since a joint based on a tongue-and-groove connection would not be sufficiently strong and practically impossible to produce for such thin floors. Nor are any other known joining techniques usable for such thin floors. Another reason why the making of thin floors from e.g. compact laminate involves problems is the thickness tolerances of the panels, being about 0.2–0.3 mm for a panel thickness of about 3 mm. A 3-mm compact laminate panel having such a thickness tolerance would have, if ground to uniform thickness on its rear side, an unsymmetrical design, entailing the risk of bulging. Moreover, if the panels have different thicknesses, this also means that the joint will be subjected to excessive load.


Nor is it possible to overcome the above-mentioned problems by using double-adhesive tape or the like on the undersides of the panels, since such a connection catches directly and does not allow for subsequent adjustment of the panels as is the case with ordinary gluing.


Using U-shaped clips of the type disclosed in the above-mentioned SE 450,141, or similar techniques, to overcome the drawbacks discussed above is no viable alternative either. Especially, biased clips of this type cannot be used for joining panels of such a small thickness as 3 mm. Normally, it is not possible to disassemble the floor panels without having access to their undersides. This known technology relying on clips suffers from the additional drawbacks:

    • Subsequent adjustment of the panels in their longitudinal direction is a complicated operation in connection with laying, since the clips urge the panels tightly against each other.
    • Floor laying using clips is time-consuming.
    • This technique is usable only in those cases where the floor panels are resting on underlying joists with the clips placed therebetween. For thin floors to be laid on a continuous, flat supporting structure, such clips cannot be used.
    • The floor panels can be joined together only at their long sides. No clip connection is provided on the short sides.


TECHNICAL PROBLEMS AND OBJECTS OF THE INVENTION

A main object of the invention therefore is to provide a system for joining together building panels, especially floor panels for hard, floating floors, which allows using floor panels of a smaller overall thickness than present-day floor panels.


A particular object of the invention is to provide a panel-joining system which

    • makes it possible in a simple, cheap and rational way to provide a joint between floor panels without requiring the use of glue, especially a joint based primarily only on mechanical connections between the panels;
    • can be used for joining floor panels which have a smaller thickness than present-day laminated floors and which have, because of the use of a different core material, superior properties than present-day floors even at a thickness of 3 mm;
    • makes it possible between thin floor panels to provide a joint that eliminates any unevennesses in the joint because of thickness tolerances of the panels;
    • allows joining all the edges of the panels;
    • reduces tool wear when manufacturing floor panels with hard surface layers;
    • allows repeated disassembly and reassembly of a floor previously laid, without causing damage to the panels, while ensuring high laying quality;
    • makes it possible to provide moisture-proof floors;
    • makes it possible to obviate the need of accurate, separate placement of an underlay before laying the floor panels; and
    • considerably cuts the time for joining the panels.


These and other objects of the invention are achieved by means of a panel-joining system having the features recited in the appended claims.


Thus, the invention provides a system for making a joint along and adjacent joint edges of two building panels, especially floor panels, in which joint:


the adjacent joint edges together form a first mechanical connection locking the joint edges to each other in a first direction at right angles to the principal plane of the panels, and


a locking device arranged on the rear side of the panels forms a second mechanical connection 19 locking the panels to each other in a second direction parallel to the principal plane and at right angles to the joint edges, said locking device comprising a locking groove which extends parallel to and spaced from the joint edge of one of said panels, termed groove panel, and which is open at the rear side of the groove panel, said system being characterized in


that the locking device further comprises a strip integrated with the other of said panels, termed strip panel, said strip extending throughout substantially the entire length of the joint edge of the strip panel and being provided with a locking element projecting from the strip, such that when the panels are joined together, the strip projects on the rear side of the groove panel with its locking element received in the locking groove of the groove panel,


that the panels, when joined together, can occupy a relative position in said second direction where a play exists between the locking groove and a locking surface on the locking element that is facing the joint edges and is operative in said second mechanical connection 19,


that the first and the second mechanical connection 17, 19 both allow mutual displacement of the panels in the direction of the joint edges, and


that the second mechanical connection 19 is so conceivable as to allow the locking element to leave the locking groove if the groove panel is turned about its joint edge angularly away from the strip.


The term “rear side” as used above should be considered to comprise any side of the panel located behind/underneath366 the front side of the panel. The opening plane of the locking groove of the groove panel can thus be located at a distance from the rear surface of the panel resting on the supporting structure. Moreover, the strip, which in the invention extends throughout substantially the entire length of the joint edge of the strip panel, should be considered to encompass both the case where the strip is a continuous, uninterrupted element, and the case where the “strip” consists in its longitudinal direction of several parts, together covering the main portion of the joint edge.


It should also be noted (i) that it is the first and the second mechanical connection as such that permit mutual displacement of the panels in the direction of the joint edges, and that (ii) it is the second mechanical connection as such that permits the locking element to leave the locking groove if the groove panel is turned about its joint edge angularly away from the strip. Within the scope of the invention, there may thus exist means, such as glue and mechanical devices, that can counteract or prevent such displacement and/or upward angling.


The system according to the invention makes it possible to provide concealed, precise locking of both the short and long sides of the panels in hard, thin floors. The floor panels can be quickly and conveniently disassembled in the reverse order of laying without any risk of damage to the panels, ensuring at the same time a high laying quality. The panels can be assembled and disassembled much faster than in present-day systems, and any damaged or worn-out panels can be replaced by taking up and re-laying parts of the floor.


According to an especially preferred embodiment of the invention, a system is provided which permits precise joining of thin floor panels having, for example, a thickness of the order of 3 mm and which at the same time provides a tolerance-independent smooth top face at the joint. To this end, the strip is mounted in an equalizing groove which is countersunk in the rear side of the strip panel and which exhibits an exact, predetermined distance from its bottom to the front side of the strip panel. The part of the strip projecting behind the groove panel engages a corresponding equalizing groove, which is countersunk in the rear side of the groove panel and which exhibits the same exact, predetermined distance from its bottom to the front side of the groove panel. The thickness of the strip then is at least so great that the rear side of the strip is flush with, and preferably projects slightly below the rear side of the panels. In this embodiment, the panels sill always rest, in the joint, with their equalizing grooves on a strip. This levels out the tolerance and imparts the necessary strength to the joint. The strip transmits horizontal and upwardly-directed forces to the panels and downwardly-directed forces to the existing subfloor.


Preferably, the strip may consist of a material which is flexible, resilient and strong, and can be sawn. A preferred strip material is sheet aluminum. In an aluminum strip, sufficient strength can be achieved with a strip thickness of the order of 0.5 mm.


In order to permit taking up previously laid, joined floor panels in a simple way, a preferred embodiment of the invention is characterized in that when the groove panel is pressed against the strip panel in the second direction and is turned angularly away from the strip, the maximum distance between the axis of rotation of the groove panel and the locking surface of the locking groove closest to the joint edges is such that the locking element can leave the locking groove without contacting the locking surface of the locking groove. Such a disassembly can be achieved even if the aforementioned play between the locking groove and the locking surface is not greater than 0.2 mm.


According to the invention, the locking surface of the locking element is able to provide a sufficient locking function even with very small heights of the locking surface. Efficient locking of 3-mm floor panels can be achieved with a locking surface that is as low as 2 mm. Even a 0.5-mm-high locking surface may provide sufficient locking. The term “locking surface” as used herein relates to the part of the locking element engaging the locking groove to form the second mechanical connection 19.


For optimal function of the invention, the strip and the locking element should be formed on the strip panel with high precision. Especially, the locking surface of the locking element should be located at an exact distance from the joint edge of the strip panel.


Furthermore, the extent of the engagement in the floor panels should be minimised, since it reduces the floor strength.


By known manufacturing methods, it is possible to produce a strip with a locking pin, for example by extruding aluminum or plastics into a suitable section, which is thereafter glued to the floor panel or is inserted in special grooves. These and all other traditional methods do however not ensure optimum function and an optimum level of economy. To produce the joint system according to the invention, the strip is suitably formed from sheet aluminum, and is mechanically fixed to the strip panel.


The laying of the panels can be performed by first placing the strip panel on the subfloor and then moving the groove panel with its long side up to the long side of the strip panel, at an angle between the principal plane of the groove panel and the subfloor. When the joint edges have been brought into engagement with each other to form the first mechanical connection 17, the groove panel is angled down so as to accommodate the locking element in the locking groove.


Laying can also be performed by first placing both the strip panel and the groove panel flat on the subfloor and then joining the panels parallel to their principal planes while bending the strip downwards until the locking element snaps up into the locking groove. This laying technique enables in particular mechanical locking of both the short and long sides of the floor panels. For example, the long sides can be joined together by using the first laying technique with downward angling of the groove panel, while the short sides are subsequently joined together by displacing the groove panel in its longitudinal direction until its short side is pressed on and locked to the short side of an adjacent panel in the same row.


In connection with their manufacture, the floor D panels can be provided with an underlay of e.g. floor board, foam or felt. The underlay should preferably cover the strip such that the joint between the underlays is offset in relation to the joint between the floor panels.


The above and other features and advantages of the invention will appear from the appended claims and the following description of embodiments of the invention.


The invention will now be described in more detail hereinbelow with reference to the accompanying drawing Figures.





DESCRIPTION OF DRAWING FIGURES


FIGS. 1
a and 1b schematically show in two stages how two floor panels of different thickness are joined together in floating fashion according to a first embodiment of the invention.



FIGS. 1
c and 1d show the floor panels of 1a and 1b respectively including an underlay.



FIGS. 2
a–c show in three stages a method for mechanically joining two floor panels according to a second embodiment of the invention.



FIGS. 3
a–c show in three stages another method for mechanically joining the floor panels of FIGS. 2a–c.



FIGS. 4
a and 4b show a floor panel according to FIGS. 2a–c as seen from below and from above, respectively.



FIG. 5 illustrates in perspective a method for laying and joining floor panels according to a third embodiment of the invention.



FIG. 6 shows in perspective and from below a first variant for mounting a strip on a floor panel.



FIG. 7 shows in section a second variant for mounting a strip on a floor panel.





DESCRIPTION OF PREFERRED EMBODIMENTS


FIGS. 1
a and 1b, to which reference is now made, illustrate a first floor panel 1, hereinafter termed strip panel, and a second floor panel 2, hereinafter termed groove panel. The terms “strip panel” and “groove panel” are merely intended to facilitate the description of the invention, the panels 1, 2 normally being identical in practice. The panels 1 and 2 may be made from compact laminate and may have a thickness of about 3 mm with a thickness tolerance of about ±0.2 mm. Considering this thickness tolerance, the panels 1, 2 are illustrated with different thicknesses (FIG. 1b), the strip panel 1 having a maximum thickness (3.2 mm) and the groove panel 2 having a minimum thickness (2.8 mm).



FIGS. 1
c and 1d illustrate the floor panel of FIGS. 1a and 1b further including an underlay 46. The joint between the underlay 15 is offset from the joint between the floor boards.



FIGS. 1
c and 1d illustrate the floor panel of FIGS. 1a and 1b respectively further including an upper decorative wear layer 80, an intermediate core 81 of particle board or other board, a base layer 82 and an underlay 46. The joint between the underlay 15 is offset from the joint between the floor boards.


Reference is now made primarily to FIGS. 1a and 1b, and secondly to FIGS. 4a and 4b showing the basic design of the floor panels from below and from above, respectively.


From the joint edge 3 of the strip panel 1, i.e. the one long side, projects horizontally a plat strip 6 mounted at the factory on the underside of the strip panel 1 and extending throughout the entire joint edge 3. The strip 6, which is made of flexible, resilient sheet aluminum, can be fixed mechanically, by means of glue or in any other suitable way. In FIGS. 1a and 1b, the strip 6 is glued, while in FIGS. 4a and 4b it is mounted by means of a mechanical connection, which will be described in more detail hereinbelow.


Other strip materials can be used, such as sheets of other metals, as well as aluminum or plastics sections. Alternatively, the strip 6 may be integrally formed with the strip panel 1. At any rate, the strip 6 should be integrated with the strip panel 1, i.e. it should not be mounted on the strip panel 1 in connection with laying. As a non-restrictive example, the strip 6 may have a width of about 30 mm and a thickness of about 0.5 mm.


As appears from FIGS. 4a and 4b, a similar, although shorter strip 6′ is provided also at one short side 3′ of the strip panel 1. The shorter strip 6′ does however not extend throughout the entire short side 3′ but is otherwise identical with the strip 6 and, therefore, is not described in more detail here.


The edge of the strip 6 facing away from the joint edge 3 is formed with a locking element 8 extended throughout the entire strip 6. The locking element 8 has a locking surface 10 facing the joint edge 3 and having a height of e.g. 0.5 mm. The locking element 8 is so designed that when the floor is being laid and the strip panel 2 of FIG. 1a is pressed with its joint edge 4 against the joint edge 3 of the strip panel 1 and is angled down against the subfloor 12 according to FIG. 1b, it enters a locking groove 14 formed in the underside 16, of the groove panel 2 and extending parallel to and spaced from the joint edge 4. In FIG. 1b, the locking element 8 and the locking groove 14 together form a mechanical connection locking the panels 1, 2 to each other in the direction designated D2. More specifically, the locking surface 10 of the locking element 8 serves as a stop with respect to the surface of the locking groove 14 closest to the joint edge 4.


When the panels 1 and 2 are joined together, they can however occupy such a relative position in the direction D2 that there is a small play Δ between the locking surface 10 and the locking groove 14. This mechanical connection in the direction D2 allows mutual displacement of the panels 1, 2 in the direction of the joint, which considerably facilitates the laying and enables joining together the short sides by snap action.


As appears from FIGS. 4a and 4b, each panel in the system has a strip 6 at one long side 3 and a locking groove 14 at the other long side 4, as well as a strip 6′ at one short side 3′ and a locking groove 14′ at the other short side 4′.


Furthermore, the joint edge 3 of the strip panel 1 has in its underside 18 a recess 20 extending throughout the entire joint edge 3 and forming together with the upper face 22 of the strip 6 a laterally open recess 24. The joint edge 4 of the groove panel 2 has in its top side 26 a corresponding recess 28.forming a locking tongue 30 to be accommodated in the recess 24 so as to form a mechanical connection locking the joint edges 3, 4 to each other in the direction designated D1. This connection can be achieved with other designs of the joint edges 3, 4, for example by a bevel thereof such that the joint edge 4 of the groove panel 2 passes obliquely in underneath the joint edge 3 of the strip panel 1 to be locked between that edge and the strip 6.


The panels 1, 2 can be taken up in the reverse order of laying without causing any damage to the joint, and be laid again.


The strip 6 is mounted in a tolerance-equalizing groove 40 in the underside 18 of the strip panel 1 adjacent the joint edge 3. In this embodiment, the width of the equalizing groove 40 is approximately equal to half the width of the strip 6, i.e. about 15 mm. By means of the equalizing groove 40, it is ensured that there will always exist between the top side 21 of the panel 1 and the bottom of the groove 40 an exact, predetermined distance E which is slightly smaller than the minimum thickness (2.8 mm) of the floor panels 1, 2. The groove panel 2 has a corresponding tolerance-equalizing surface or groove 42 in the underside 16 of the joint edge 4. The distance between the equalizing surface 42 and the top side 26 of the groove panel 2 is equal to the aforementioned exact distance E. Further, the thickness of the strip 6 is so chosen that the underside 44 of the strip is situated slightly below the undersides 18 and 16 of the floor panels 1 and 2, respectively. In this manner, the entire joint will rest on the strip 6, and all vertical downwardly-directed forces will be efficiently transmitted to the subfloor 12 without any stresses being exerted on the joint edges 3, 4. Thanks to the provision of the equalizing grooves 40, 42, an entirely even joint will be achieved on the top side, despite the thickness tolerances of the panels 1, 2, without having to perform any grinding or the like across the whole panels. Especially, this obviates the risk of damage to the bottom layer of the compact laminate, which might give rise to bulging of the panels.


Reference is now made to the embodiment of FIGS. 2a–c showing in a succession substantially the same laying method as in FIGS. 1a and 1b. The embodiment of FIGS. 2a–c primarily differs from the embodiment of FIGS. 1a and 1b in that the strip 6 is mounted on the strip panel 1 by means of a mechanical connection instead of glue. To provide this mechanical connection, illustrated in more detail in FIG. 6, a groove 50 is provided in the underside 18 of the strip panel 1 at a distance from the recess 24. The groove 50 may be formed either as a continuous groove extending throughout the entire length of the panel 1, or as a number of separate grooves. The groove 50 defines, together with the recess 24, a dovetail gripping edge 52, the underside of which exhibits an exact equalizing distance E to the top side 21 of the strip panel 1. The aluminum strip 6 has a number of punched and bent tongues 54, as well as one or more lips 56 which are bent round opposite sides of the gripping edge 52 in clamping engagement therewith. This connection is shown in detail from below in the perspective view of FIG. 6.


Alternatively, a first mechanical connection 17 between the strip 6 and the strip panel 1 can be provided as illustrated in FIG. 7 showing in section a cut-away part of the strip panel 1 turned upside down. In FIG. 7, the mechanical connection comprises a dovetail recess 58 in the underside 18 of the strip panel 1, as well as tongues/lips 60 punched and bent from the strip 6 and clamping against opposing inner sides of the recess 58.


The embodiment of FIGS. 2a–c is further characterized in that the locking element 8 of the strip 6 is designed as a component bent from the aluminum sheet and having an operative lock surface 10 extending at right angles up from the upper face 22 of the strip 6 through a height of e.g. 0.5 mm, and a rounded guide surface 34 facilitating the insertion of the locking element 8 into the locking groove 14 when angling down the groove panel 2 towards the subfloor 12 (FIG. 2b), as well as a portion 36 which is inclined towards the subfloor 12 and which is not operative in the laying method illustrated in FIGS. 2a–c.


Further, it can be seen from FIGS. 2a–c that the joint edge 3 of the strip panel 1 has a lower bevel 70 which cooperates during laying with a corresponding upper bevel 72 of the joint edge 4 of the groove panel 2, such that the panels 1 and 2 are forced to move vertically towards each other when their joint edges 3, 4 are moved up to each other and the panels are pressed together horizontally.


Preferably, the locking surface 10 is so located relative to the joint edge 3 that when the groove panel 2, starting from the joined position in FIG. 2c, is pressed horizontally in the direction D2 against the strip panel 1 and is turned angularly up from the strip 6, the maximum distance between the axis of rotation A of the groove panel 2 and the-locking surface 10 of the locking groove is such that the locking element 8 can leave the locking groove 14 without coming into contact with it.



FIGS. 3
a3b show another joining method for mechanically joining together the floor panels of FIGS. 2a–c. The method illustrated in FIGS. 3–c relies on the fact that the strip 6 is resilient and is especially useful for joining together the short sides of floor panels which have already been joined along one long side as illustrated in FIGS. 2a–c. The method of FIGS. 3a–c is performed by first placing the two panels 1 and 2 flat on the subfloor 12 and then moving them horizontally towards each other according to FIG. 3b. The inclined portion 36 of the locking element 8 then serves as a guide surface which guides the joint edge 4 of the groove panel 2 up on to the upper face 22 of the strip 6. The strip 6 will then be urged downwards while the locking element 8 is sliding on the equalizing surface 42. When the joint edges 3, 4 have been brought into complete engagement with each other horizontally, the locking element 8 will snap into the locking groove 14 (FIG. 3c), thereby providing the same locking as in FIG. 2c. The same locking method can also be used by placing, in the initial position, the joint edge 4 of the groove panel with the equalizing groove 42 on the locking element 10 (FIG. 3a). The inclined portion 36 of the locking element 10 then is not operative. This technique thus makes it possible to lock the floor panels mechanically in all directions, and by repeating the laying operations the whole floor can be laid without using any glue.


The invention is not restricted to the preferred embodiments described above and illustrated in the drawings, but several variants and modifications thereof are conceivable within the scope of the appended claims. The strip 6 can be divided into small sections covering the major part of the joint length. Further, the thickness of the strip 6 may vary throughout its width. All strips, locking grooves, locking elements and recesses are so dimensioned as to enable laying the floor panels with flat top sides in a manner to rest on the strip 6 in the joint. If the floor panels consist of compact laminate and if silicone or any other sealing compound, a rubber strip or any other sealing device is applied prior to laying between the flat projecting part of the strip 6 and the groove panel 2 and/or in the recess 24, a moisture-proof floor is obtained.


As appears from FIG. 6, an underlay 46, e.g. of floor board, foam or felt, can be mounted on the underside of the panels during the manufacture thereof. In one embodiment, the underlay 46 covers the strip 6 up to the locking element 8, such that the joint between the underlays 46 becomes offset in relation to the joint between the joint edges 3 and 4. FIG. 6 also shows the upper decorative wear layer 80, the intermediate core 81 of particle board or other board and the base layer 82.


As appears from FIG. 6, an underlay 46, e.g. of floor board, foam or felt, can be mounted on the underside of the panels during the manufacture thereof. In one embodiment, the underlay 46 covers the strip 6 up to the locking element 8, such that the joint between the underlays 46 becomes offset in relation to the joint between the joint edges 3 and 4. FIG. 6 also shows the upper decorative wear layer 80 that is not as hard as the core 1.


In the embodiment of FIG. 5, the strip 6 and its locking element 8 are integrally formed with the strip panel 1, the projecting part of the strip 6 thus forming an extension of the lower part of the joint edge 3. The locking function is the same as in the embodiments described above. On the underside 18 of the strip panel 1, there is provided a separate strip, band or the like 74 extending throughout the entire length of the joint and having, in this embodiment, a width covering approximately the same surface as the separate strip 6 of the previous embodiments. The strip 74 can be provided directly on the rear side 18 or in a recess formed therein (not shown), so that the distance from the topside 21, 26 of the floor to the rear side 76, including the thickness of the strip 74, always is at least equal to the corresponding distance in the panel having the greatest thickness tolerance. The panels 1, 2 will then rest, in the joint, on the strip 74 or only on the undersides 18, 16 of the panels, if these sides are made plane.


When using a material which does not permit downward bending of the strip 6 or the locking element 8, laying can be performed in the way shown in FIG. 5. A floor panel 2a is moved angled upwardly with its long side 4a into engagement with the long side 3 of a previously laid floor panel 1 while at the same time a third floor panel 2b is moved with its short side 4b′ into engagement with the short side 3a′ of the upwardly-angled floor panel 2a and is fastened by angling the panel 2b downwards. The panel 2b is then pushed along the short side 3a′ of the upwardly-angled floor panel 2a until its long side 4b encounters the long side 3 of the initially-laid panel 1. The two upwardly-angled panels 2a and 2b are therefore angled down on to the subfloor 12 so as to bring about locking.


By a reverse procedure the panels can be taken up in the reverse order of laying without causing any damage to the joint, and be laid again.


Several variants of preferred laying methods are conceivable. For example, the strip panel can be inserted under the groove panel, thus enabling the laying of panels in all four directions with respect to the initial position.

Claims
  • 1. A floating laminate floor board having first and second parallel long edges and first and second parallel short edges, comprising: an upper decorative wear layer;a core layer arranged beneath the upper decorative wear layer, the core layer being made of a material that is not as hard as the upper decorative wear layer;a base layer beneath the core layer;a first mechanical locking system comprising a locking strip extending from one of the long edges of the board and a locking groove formed in the material of the core and extending along another of the long edges of the board;a second mechanical locking system on the first and second short edges of the board;the locking systems being configured so as to releasably lock the board to adjacent identical boards in both a vertical direction and a horizontal direction; andan underlay mounted to an underside of the floor board,wherein the underlay extends underneath a portion of the locking strip that extends from the board, andwherein the underlay is arranged such that when the floor board is locked to an adjacent identical floor board, a joint between the underlays is offset from a joint between the floor boards.
  • 2. The floating laminate floor board of claim 1, wherein the underlay is made of floor board, foam, or felt.
  • 3. The floating laminate floor board of claim 1, wherein the underlay extends underneath a portion of the locking strip that extends from the board up to the locking element.
  • 4. The floating laminate floor board of claim 1, wherein the core layer is made of particle board.
  • 5. The floating laminate floor board of claim 1, wherein the upper decorative wear layer is about 1 mm. thick.
  • 6. The floating laminate floor board of claim 1, wherein the board is equal to or less than 10 mm. in thickness.
  • 7. The floating laminate floor board of claim 1, wherein the core layer is made from particle board or other board material.
  • 8. The floating laminate floor board of claim 1, wherein each of the locking strips is about 0.5 mm. thick.
  • 9. The floating laminate floor board of claim 1, wherein the locking strip includes a locking element at a distal end thereof.
  • 10. The floating laminate floor board of claim 9, wherein the locking element has a locking surface with a height of about 0.5 to 2 mm.
  • 11. The floating laminate floor board of claim 9, wherein the locking element has a locking surface with a height of about 0.5 to 2 mm.
  • 12. The floating laminate floor board of claim 10, wherein the locking element has a rounded guide surface.
  • 13. The floating laminate floor board of claim 1, wherein the second mechanical locking system comprises a locking strip extending from one of the short edges of the board and a locking groove formed in the material of the core and extending along another of the short edges of the board.
  • 14. A floating laminate floor board having four edges, comprising: an upper decorative wear layer;a core layer arranged beneath the upper decorative wear layer, the core layer being formed of a material that is not as hard as the upper decorative wear layer;a base layer beneath the core layer;the upper decorative wear layer and the core layer being arranged so as to define a principal plane of the board;a first mechanical locking system for locking the board to an identical board in both a vertical direction and a horizontal direction, the first mechanical locking system including:a tongue extending from a first edge of the board in a direction of the principal plane, the tongue being formed in the material of the core layer,a tongue groove extending into a second edge of the board in the direction of the principal plane, the tongue groove being formed in the material of the core layer;a locking strip extending from the second edge of the board; anda locking groove extending along an underside of the board set back from the first edge of the board;a second mechanical locking system on third and fourth edges of the board;the locking systems being configured so as to releasably lock the board to adjacent identical boards in both a vertical direction and a horizontal direction; andan underlay mounted at an underside of the floor board,wherein the underlay is arranged such that when the floor board is locked to an adjacent identical floor board, a joint between the underlays is offset from a joint between the floor boards.
  • 15. The floating laminate floor board of claim 14, wherein the underlay is made of floor board, foam, or felt.
  • 16. The floating laminate floor board of claim 14, wherein the core layer is made of particle board.
  • 17. The floating laminate floor board of claim 14, wherein the second mechanical locking system comprises a tongue extending from a third edge of the board in a direction of the principal plane, the tongue being formed in the material of the core layer, and a tongue groove extending into a fourth edge of the board in the direction of the principal plane, the tongue groove being formed in the material of the core layer.
  • 18. The floating laminate floor board of claim 14, wherein the core layer is made from particle board or other board material.
  • 19. The floating laminate floor board of claim 14, wherein the board is equal to or less than 10 mm. in thickness.
  • 20. A floating laminate floor board having first and second parallel long edges and first and second parallel short edges, comprising: a base layer;an upper decorative wear layer;a core layer arranged between the base layer and the upper decorative wear layer, the core layer being formed of a material that is not as hard as the upper decorative wear layer;the board having a height of about 3 to 10 mm;a first locking strip extending from an underside of one long edge of the board;a first locking element extending from a distal end of the locking strip, the locking element having a locking surface, the locking surface having a height of less than or equal to 2 mm.;a first locking groove extending along another long edge of the board;a second locking strip extending from an underside of one short edge of the board;a second locking element extending from a distal end of the locking strip, the locking element having a locking surface, the locking surface having a height of less than or equal to 2 mm.;a second locking groove extending along another short edge of the board;wherein the locking surfaces are adapted to engage in locking groove of identical boards when the board and the identical boards are locked together; andan underlay mounted at an underside of the floor board,wherein the underlay extends underneath a portion of the first locking strip that extends from the board, andwherein the underlay is arranged such that when the floor board is locked to an adjacent identical floor board, a joint between the underlays is offset from a joint between the floor boards.
  • 21. The floating laminate floor board of claim 20, wherein the underlay is made of floor board, foam, or felt.
  • 22. The floating laminate floor board of claim 20, wherein the underlay extends underneath a portion of the first locking strip that extends from the board up to the locking element.
  • 23. The floating laminate floor board of claim 20, the locking system further comprising a tongue extending from one of the edges of the board in a direction of a principal plane of the board, and a tongue groove extending into another of the edges of the board in the direction of the principal plane.
  • 24. The floating laminate floor board of claim 23, wherein the tongue and tongue groove are formed in the material of the core layer.
  • 25. The floating laminate floor board of claim 20, wherein the locking surfaces have a height of 0.5 mm. or greater.
  • 26. A rectangular floating laminate floor board having two parallel long edges and two parallel short edges, comprising: an upper decorative wear layer;a core layer arranged beneath the upper decorative wear layer, the core layer being made of a material that is not as hard as the upper decorative wear layer;a base layer beneath the core layer;a locking system comprising a first locking strip extending from one of the long edges and a second locking strip extending from one of the short edges of the board and a first locking groove formed in the material of the core and extending along another of the long edges of the board and a second locking groove formed in the material of the core and extending along another of the short edges of the board;the locking system being configured so as to releasably lock the long and short edges of the board to adjacent identical boards in both a vertical direction and a horizontal direction; andan underlay mounted at an underside of the floor board,wherein the underlay extends underneath a portion of the first locking strip that extends from the board, andwherein the underlay is arranged such that when the floor board is locked to an adjacent identical floor board, a joint between the underlays is offset from a joint between the floor boards.
  • 27. The floating laminate floor board of claim 26, wherein the underlay is made of floor board, foam, or felt.
  • 28. The floating laminate floor board of claim 26, wherein the underlay extends underneath a portion of the first locking strip that extends from the board up to the locking element.
  • 29. The floating laminate floor board of claim 26, wherein said locking system is configured to enable the releasably locking by angling and said locking system configured to enable the releasably locking by snapping.
  • 30. The floating laminate floor board of claim 26, wherein each of the long edges is configured to enable the releasably locking by angling.
  • 31. The floating laminate floor board of claim 26, wherein each of the short edges is configured to enable the releasably locking by snapping.
  • 32. The floating laminate floor board of claim 30, wherein each of the short edges is configured to enable the releasably locking by snapping.
  • 33. The floating laminate floor board of claim 26, wherein each of the long edges is configured to enable the releasably locking by snapping.
  • 34. The floating laminate floor board of claim 26, wherein each of the short edges is configured to enable the releasably locking by angling.
  • 35. The floating laminate floor board of claim 26, wherein the core layer is made of particle board.
  • 36. The floating laminate floor board of claim 26, wherein the upper decorative wear layer is about 1 mm. thick.
  • 37. The floating laminate floor board of claim 26, wherein the board is equal to or less than 10 mm. in thickness.
  • 38. The floating laminate floor board of claim 26, wherein the board is about 7 to 10 mm. in thickness.
  • 39. The floating laminate floor board of claim 26, wherein each of the locking strips includes a locking element at a distal end thereof and each of the locking elements has a locking surface with a height of about 0.5 to 2.0 mm.
  • 40. The floating laminate floor board of claim 26, wherein the core layer is made from particle board or other board material.
  • 41. A floating laminate floor board having four sides, comprising: an upper decorative wear layer;a core layer arranged beneath the upper decorative wear layer, the core layer being made of a board material that is not as hard as the upper decorative wear layer;a base layer beneath the core layer;a locking system on all four sides of the floor board to releasably lock the board to an adjacent identical board in both a vertical direction and a horizontal direction, the locking system being configured so as to allow concealed locking such that the floor boards are assembled and disassembled and disassembled without damage to the floor boards; andan underlay mounted to an underside of the floor board,wherein the underlay is arranged such that when the floor board is locked to an adjacent identical floor board, a joint between the underlays is offset from a joint between the floor boards.
  • 42. The floating laminate floor board of claim 41, wherein the underlay is made of floor board, foam, or felt.
Parent Case Info

This application is a continuation of U.S. application Ser. No. 09/534,007, filed on Mar. 24, 2000, now U.S. Pat. No. 6,516,579 which is a continuation of U.S. patent application Ser. No. 09/356,563, filed on Jul. 19, 1999, now U.S. Pat. No. 6,182,410, which is a continuation of U.S. patent application Ser. No. 09/193,687, filed on Nov. 18, 1998, now U.S. Pat. No. 6,023,907, which is a continuation of U.S. patent application Ser. No. 09/003,499, filed on Jan. 6, 1998, now U.S. Pat. No. 5,860,267, which is a continuation of U.S. patent application Ser. No. 08/436,224, filed on May 17, 1995, now U.S. Pat. No. 5,706,621, which was a National State Application of International Application No. PCT/SE94/00386, filed on Apr. 29, 1994, which International Application was published by the International Bureau in English on Nov. 24, 1994.

US Referenced Citations (181)
Number Name Date Kind
0213740 Conner Apr 1879 A
0714987 Wolfe Dec 1902 A
0753791 Fulghum Mar 1904 A
1124228 Houston Jan 1915 A
1194636 Joy Aug 1916 A
1371856 Cade Mar 1921 A
1407679 Ruthrauff Feb 1922 A
1454250 Parsons May 1923 A
1468288 Een Sep 1923 A
1477813 Daniels et al. Dec 1923 A
1510924 Daniels et al. Oct 1924 A
1540128 Houston Jun 1925 A
1575821 Daniels Mar 1926 A
1602256 Sellin Oct 1926 A
1602267 Karwisch Oct 1926 A
1615096 Meyers Jan 1927 A
1622103 Fulton Mar 1927 A
1622104 Fulton Mar 1927 A
1637634 Carter Aug 1927 A
1644710 Crooks Oct 1927 A
1660480 Daniels Feb 1928 A
1714738 Smith May 1929 A
1718702 Pfiester Jun 1929 A
1734826 Pick Nov 1929 A
1764331 Moratz Jun 1930 A
1778069 Fetz Oct 1930 A
1787027 Wasleff Dec 1930 A
1790178 Sutherland, Jr. Jan 1931 A
1823039 Gruner Sep 1931 A
1859667 Gruner May 1932 A
1898364 Gynn Feb 1933 A
1906411 Potvin May 1933 A
1929871 Jones Oct 1933 A
1940377 Stom Dec 1933 A
1953306 Moratz Apr 1934 A
1986739 Mitte Jan 1935 A
1988201 Hall Jan 1935 A
2044216 Klages Jun 1936 A
2266464 Kraft Dec 1941 A
2276071 Scull Mar 1942 A
2324628 Kahr Jul 1943 A
2398632 Frost et al. Apr 1946 A
2430200 Wilson Nov 1947 A
2740167 Rowley Apr 1956 A
2780253 Joa Feb 1957 A
2894292 Gramelspacher Jul 1959 A
2947040 Schultz Aug 1960 A
3045294 Livezey, Jr. Jul 1962 A
3100556 De Ridder Aug 1963 A
3125138 Bolenbach Mar 1964 A
3182769 De Ridder May 1965 A
3200553 Frashour et al. Aug 1965 A
3203149 Soddy Aug 1965 A
3267630 Omholt Aug 1966 A
3282010 King, Jr. Nov 1966 A
3310919 Bue et al. Mar 1967 A
3347048 Brown et al. Oct 1967 A
3387422 Wanzer Jun 1968 A
3460304 Braeuninger et al. Aug 1969 A
3481810 Waite Dec 1969 A
3526420 Brancalcone Sep 1970 A
3538665 Gohner Nov 1970 A
3548559 Levine Dec 1970 A
3553919 Omholt Jan 1971 A
3555762 Costanzo, Jr. Jan 1971 A
3694983 Couquet Oct 1972 A
3714747 Curran Feb 1973 A
3731445 Hoffmann et al. May 1973 A
3759007 Thiele Sep 1973 A
3768846 Hensley et al. Oct 1973 A
3786608 Boettcher Jan 1974 A
3859000 Webster Jan 1975 A
3902293 Witt et al. Sep 1975 A
3908053 Hettich Sep 1975 A
3936551 Elmendorf et al. Feb 1976 A
3988187 Witt et al. Oct 1976 A
4037377 Howell et al. Jul 1977 A
4084996 Wheeler Apr 1978 A
4090338 Bourgade May 1978 A
4099358 Compaan Jul 1978 A
4100710 Kowallik Jul 1978 A
4169688 Toshio Oct 1979 A
4242390 Nemeth Dec 1980 A
4299070 Oltmanns et al. Nov 1981 A
4304083 Anderson Dec 1981 A
4426820 Terbrack et al. Jan 1984 A
4471012 Maxwell Sep 1984 A
4489115 Layman et al. Dec 1984 A
4501102 Knowles Feb 1985 A
4561233 Harter et al. Dec 1985 A
4612074 Smith et al. Sep 1986 A
4612745 Hovde Sep 1986 A
4641469 Wood Feb 1987 A
4643237 Rosa Feb 1987 A
4646494 Saarinen et al. Mar 1987 A
4653242 Ezard Mar 1987 A
4703597 Eggemar Nov 1987 A
4715162 Brightwell Dec 1987 A
4716700 Hagemeyer Jan 1988 A
4738071 Ezard Apr 1988 A
4769963 Meyerson Sep 1988 A
4819932 Trotter, Jr. Apr 1989 A
4831806 Niese et al. May 1989 A
4845907 Meek Jul 1989 A
4905442 Daniels Mar 1990 A
5029425 Bogataj Jul 1991 A
5113632 Hanson May 1992 A
5117603 Weintraub Jun 1992 A
5148850 Urbanick Sep 1992 A
5165816 Parasin Nov 1992 A
5179812 Hill Jan 1993 A
5216861 Meyerson Jun 1993 A
5253464 Nilsen Oct 1993 A
5271564 Smith Dec 1993 A
5295341 Kajiwara Mar 1994 A
5349796 Meyerson Sep 1994 A
5390457 Sjölander Feb 1995 A
5433806 Pasquali et al. Jul 1995 A
5474831 Nystrom Dec 1995 A
5497589 Porter Mar 1996 A
5502939 Zadok et al. Apr 1996 A
5540025 Takehara et al. Jul 1996 A
5567497 Zegler et al. Oct 1996 A
5570554 Searer Nov 1996 A
5597024 Bolyard et al. Jan 1997 A
5618602 Nelson Apr 1997 A
5630304 Austin May 1997 A
5653099 MacKenzie Aug 1997 A
5671575 Wu Sep 1997 A
5695875 Larsson et al. Dec 1997 A
5706621 Pervan Jan 1998 A
5768850 Chen Jun 1998 A
5797237 Finkell, Jr. Aug 1998 A
5823240 Bolyard et al. Oct 1998 A
5827592 Van Gulik et al. Oct 1998 A
5860267 Pervan Jan 1999 A
5935668 Smith Aug 1999 A
5943239 Shamblin et al. Aug 1999 A
5968625 Hudson Oct 1999 A
5987839 Hamar et al. Nov 1999 A
6006486 Moriau et al. Dec 1999 A
6023907 Pervan Feb 2000 A
6094882 Pervan Aug 2000 A
6101778 Martensson Aug 2000 A
6119423 Costantino Sep 2000 A
6134854 Stanchfield Oct 2000 A
6148884 Bolyard et al. Nov 2000 A
6182410 Pervan Feb 2001 B1
6205639 Pervan Mar 2001 B1
6209278 Tychsen Apr 2001 B1
6216403 Belbeoc'h Apr 2001 B1
6216409 Roy et al. Apr 2001 B1
6324803 Pervan Dec 2001 B1
6446405 Pervan Sep 2002 B1
6490836 Moriau et al. Dec 2002 B1
6510665 Pervan Jan 2003 B1
6516579 Pervan Feb 2003 B1
6532709 Pervan Mar 2003 B1
6536178 Palsson et al. Mar 2003 B1
20010029720 Pervan Oct 2001 A1
20010034992 Pletzer et al. Nov 2001 A1
20020007608 Pervan Jan 2002 A1
20020007609 Pervan Jan 2002 A1
20020014047 Thiers Feb 2002 A1
20020020127 Thiers et al. Feb 2002 A1
20020031646 Chen et al. Mar 2002 A1
20020046528 Pervan et al. Apr 2002 A1
20020095894 Pervan Jul 2002 A1
20020100231 Miller et al. Aug 2002 A1
20020112433 Pervan Aug 2002 A1
20020178673 Pervan Dec 2002 A1
20020178674 Pervan Dec 2002 A1
20020178682 Pervan Dec 2002 A1
20030009972 Pervan et al. Jan 2003 A1
20030024199 Pervan et al. Feb 2003 A1
20030033784 Pervan Feb 2003 A1
20030084636 Pervan May 2003 A1
20030115812 Pervan Jun 2003 A1
20030115821 Pervan Jun 2003 A1
20050034404 Pervan Feb 2005 A1
20050034405 Pervan Feb 2005 A1
Foreign Referenced Citations (138)
Number Date Country
713628 Jan 1998 AU
200020703 Jun 2000 AU
417526 Sep 1936 BE
0557844 Jun 1957 BE
1010339 Jun 1998 BE
1010487 Oct 1998 BE
0991373 Jun 1976 CA
2226286 Dec 1997 CA
2252791 May 1999 CA
2289309 Jul 2000 CA
200949 Jan 1939 CH
211877 Jan 1941 CH
1 212 275 Mar 1966 DE
7102476 Jan 1971 DE
1 534 278 Nov 1971 DE
2 205 232 Aug 1973 DE
7402354 Jan 1974 DE
2 238 660 Feb 1974 DE
2 252 643 May 1974 DE
2 502 992 Jul 1976 DE
2 616 077 Oct 1977 DE
2 917 025 Nov 1980 DE
20 41781 Jun 1982 DE
32 14 207 Nov 1982 DE
332 46 376 Jun 1984 DE
3343601 Jun 1985 DE
35 38 538 Oct 1985 DE
8604004 Jun 1986 DE
3512204 Oct 1986 DE
35448845 Jun 1987 DE
3631390 Dec 1987 DE
40 02 547 Aug 1991 DE
41 30 115 Sep 1991 DE
4134452 Apr 1993 DE
4215273 Nov 1993 DE
4242530 Jun 1994 DE
43 13 037 Aug 1994 DE
97 17 191 Mar 1995 DE
297 10 175 Sep 1997 DE
196 51 149 Jun 1998 DE
197 09 641 Sep 1998 DE
200 01 225 Aug 2000 DE
200 02 744 Sep 2000 DE
199 25 248 Dec 2000 DE
200 17 461 Mar 2001 DE
200 18 284 Mar 2001 DE
0 248 127 Dec 1987 EP
0 623 724 Nov 1994 EP
0 652 340 May 1995 EP
0 690 185 Jan 1996 EP
0 698 162 Feb 1996 EP
0 843 763 May 1998 EP
0 849 416 Jun 1998 EP
0 855 482 Jul 1998 EP
0 877 130 Nov 1998 EP
0 958 441 Nov 1998 EP
0 903 451 Mar 1999 EP
0 969 163 Jan 2000 EP
0 969 163 Jan 2000 EP
0 969 164 Jan 2000 EP
0 969 164 Jan 2000 EP
0 974 713 Jan 2000 EP
843060 Aug 1988 FI
1 293 043 Apr 1962 FR
2 568 295 Jan 1986 FR
2 630 149 Oct 1989 FR
2 637 932 Apr 1990 FR
2 675 174 Oct 1992 FR
2 691 491 Nov 1993 FR
2 697 275 Apr 1994 FR
2 712 329 May 1995 FR
2 781 513 Jan 2000 FR
2 785 633 May 2000 FR
240629 Oct 1925 GB
424057 Feb 1935 GB
585205 Jan 1947 GB
599793 Mar 1948 GB
636423 Apr 1950 GB
812671 Apr 1959 GB
1127915 Oct 1968 GB
1171337 Nov 1969 GB
1237744 Jun 1971 GB
1275511 May 1972 GB
1430423 Mar 1976 GB
2117813 Oct 1983 GB
2126106 Mar 1984 GB
2243381 Oct 1991 GB
2256023 Nov 1992 GB
54-65528 May 1979 JP
57-119056 Jul 1982 JP
57-185110 Nov 1982 JP
59-186336 Nov 1984 JP
3-169967 Jul 1991 JP
4 106264 Apr 1992 JP
4-191001 Jul 1992 JP
5-148984 Jun 1993 JP
6-56310 May 1994 JP
6-146553 May 1994 JP
6-320510 Nov 1994 JP
7-076923 Mar 1995 JP
7-180333 Jul 1995 JP
7-300979 Nov 1995 JP
7-310426 Nov 1995 JP
8-109734 Apr 1996 JP
76017733 Aug 1976 NL
157871 Jul 1984 NO
305614 May 1995 NO
24931 Nov 1974 PL
372 051 May 1973 SE
450 141 Jun 1984 SE
501 014 Oct 1994 SE
502 994 Mar 1996 SE
506 254 Nov 1997 SE
509 059 Jun 1998 SE
509 060 Jun 1998 SE
512 290 Dec 1999 SE
512 313 Dec 1999 SE
0000200-6 Jul 2001 SE
363795 Nov 1973 SU
WO 8402155 Jun 1984 WO
WO 8703839 Jul 1987 WO
WO 9217657 Oct 1992 WO
WO 9313280 Jul 1993 WO
WO 9401628 Jan 1994 WO
WO 9426999 Nov 1994 WO
WO 9627719 Sep 1996 WO
WO 9627721 Sep 1996 WO
WO 9630177 Oct 1996 WO
WO 9747834 Dec 1997 WO
WO 9824994 Jun 1998 WO
WO 9824995 Jun 1998 WO
WO 9838401 Sep 1998 WO
WO 9940273 Aug 1999 WO
WO 9966151 Dec 1999 WO
WO 9966152 Dec 1999 WO
WO 0006854 Jan 2000 WO
WO 0066856 Nov 2000 WO
WO 0166876 Sep 2001 WO
Related Publications (1)
Number Date Country
20020178673 A1 Dec 2002 US
Continuations (5)
Number Date Country
Parent 09534007 Mar 2000 US
Child 10202098 US
Parent 09356563 Jul 1999 US
Child 09534007 US
Parent 09193687 Nov 1998 US
Child 09356563 US
Parent 09003499 Jan 1998 US
Child 09193687 US
Parent 08436224 US
Child 09003499 US