This application is related to U.S. patent application Ser. No. 15/662,936 filed on Jul. 28, 2017 entitled “Insulated Reinforced Door Panel and Door Frame with Thermal Break;” U.S. patent application Ser. No. 15/679,273, filed on Aug. 17, 2017, entitled “Insulated Fiber Reinforced Door Panel and Method of Making Same” and U.S. patent application Ser. No. 15/710,909 filed on even date herewith entitled “Fiber Reinforced Plastic Door with Polycarbonate Ballistic Core and Method of Making Same.”
The present invention relates to insulated structural panels that may be used as doors, and in particular, door panels having improved rigidity, blast and ballistic resistance, thermal efficiency, aesthetics and manufacturability.
Commercial hollow metal and wood door cores typically consist of Polystyrenes, Polyurethanes, Polyisocyanurate, Honeycomb (Kraft paper), Stave Lumber, Particleboard, Agra-Fiber, Mineral Core, Rock Wool, Fiberglass, Blast-Resistant, and Bullet-Resistant materials. Each core type has a different performance function and price point. Maintaining all of these core types adds complexity, inventory, and costs that could be reduced. Steel reinforcements and steel end caps may also be employed, yet they are conductive for thermal and electrical energy. These steel reinforcements may not be dimensionally stable under thermal loading, negatively impacting the energy efficiency of the door opening thermal performance for preventing thermal transfer. The steel is also vulnerable to corrosion and rusting, and greatly increases the total weight of the door. This added weight impacts hardware wear and tear, product lifestyle, and cost of ownership. The weight of components and finished door total weight also impacts freight and shipment costs of raw components, and finished goods shipment cost.
Bearing in mind the problems and deficiencies of the prior art, it is therefore an object of the present invention to provide a structural panel that may be used as a door with improved structural integrity, blast- and ballistic-resistance, and/or thermal efficiency.
It is another object of the present invention to provide a structural panel which provides a reduction in weight without sacrificing structural strength and blast- and ballistic-resistance (if employed).
It is yet another object of the present invention to provide a structural panel which is dimensionally stable to reduce thermal bow effect.
Still another object of the present invention is to provide a structural panel which provides sound transmission class (STC) improvement.
A further object of the present invention is to provide a structural panel which provides improvement in thermal insulation and air infiltration.
The above and other objects, which will be apparent to those skilled in the art, are achieved in the present invention which is directed to a panel which may be used as a door. The panel comprises a shell having spaced first and second exterior panels and frame members adjacent edges of the panels. At least one polymeric sheet is between the first and second exterior panels, the at least one polymeric sheet being made of a thermoplastic material, and has a plurality of openings through a thickness thereof. The openings are spaced apart by flat wall portions of the polymeric sheet.
The panel may include a plurality of polymeric sheets. In an embodiment, the sheets are stacked with the openings of one sheet offset from the openings of an adjacent sheet, and the openings of one sheet are adjacent flat wall portions of the adjacent sheet. The polymeric sheet may be bonded to an adjacent exterior panel. The at least one polymeric sheet may be spaced from an adjacent exterior panel, and a foam insulation material may substantially fill all of the space therebetween. A plurality of polymeric sheets and a plurality of stiffeners may be disposed between the polymeric sheets.
An embodiment of the panel may further include securing stiffeners by a polymeric end cap made of a thermoplastic material, the end cap which has a plurality of openings through a thickness thereof. The ends of the stiffeners are received within the openings of the polymeric end cap, and the openings of the polymeric end cap are oriented 90° to the openings of the polymeric sheets. A foam insulation material may fill substantially all of the space between the polymeric sheets, stiffeners, and frame members in the shell interior portion.
The present invention also provides a method of making a panel which may be used as a door. First and second exterior panels and frame members are provided for a door shell. At least one polymeric sheet being made of a thermoplastic material is also provided. The polymeric sheet has a plurality of openings through a thickness thereof, the openings being spaced apart by flat wall portions of the polymeric sheet. The first and second exterior panels, frame members, and the at least one polymeric sheet are assembled to make a shell having spaced first and second exterior panels and frame members adjacent edges of the panels. The at least one polymeric sheet is between adjacent exterior panels and bonded to them.
The method may further include the at least one polymeric sheet being spaced apart from adjacent exterior panels, with a curable and hardenable foam insulation material injected therebetween. The insulation provides both thermal insulation and a chemical bond with the polymeric sheet and exterior panels when cured. The method may also include a plurality of polymeric sheets and a plurality of stiffeners comprising a thermally non-conductive fiber reinforced polymer. The plurality of stiffeners are assembled between the polymeric sheets.
The present invention also provides a structural panel which may be used as a door. A shell has spaced first and second exterior panels and frame members adjacent edges of the panels. At least one polymeric sheet is between the first and second exterior panels. The at least one polymeric sheet is made of a thermoplastic material and has a plurality of openings through a thickness thereof. The openings are spaced apart by flat wall portions of the polymeric sheet. At least one blast- or ballistic-resistant core layer is adjacent the at least one polymeric sheet.
An embodiment of the panel includes a plurality of polymeric sheets wherein the at least one blast- or ballistic-resistant core layer is between a pair of the polymeric sheets. The panel may further include a plurality of polymeric sheets wherein the sheets are stacked with the openings of one sheet being offset from the openings of an adjacent sheet. The openings of one sheet are adjacent flat wall portions of the adjacent sheet. The at least one polymeric sheet may further be bonded to an adjacent exterior panel. The at least one polymeric sheet may also be spaced from an adjacent exterior panel, with a foam insulation material filling substantially all of the space therebetween.
The present invention additionally provides a method of making a panel which may be used as a door. First and second exterior panels and frame members for a door shell are provided. The method also provides at least one polymeric sheet being made of a thermoplastic material and having a plurality of openings through a thickness thereof. The openings are spaced apart by flat wall portions of the polymeric sheet. At least one blast- or ballistic-resistant core layer is also provided. The first and second exterior panels, frame members, at least one polymeric sheet, and at least one blast- or ballistic-resistant core layer are assembled to make a shell having spaced first and second exterior panels and frame members adjacent edges of the panels. The at least one polymeric sheet is between adjacent exterior panels, and the at least one blast- or ballistic-resistant core layer is adjacent the at least one polymeric sheet. The at least one polymeric sheet is bonded to adjacent exterior panels.
The method may further provide a plurality of polymeric sheets, and assembling the at least one blast- or ballistic-resistant core layer between the polymeric sheets. The at least one polymeric sheet may be spaced from an adjacent exterior panel, and the method may further include injecting a curable and hardenable foam insulation material therebetween. When cured, the insulation provides both thermal insulation and a chemical bond with the polymeric sheet and exterior panels.
The features of the invention believed to be novel and the elements characteristic of the invention are set forth with particularity in the appended claims. The figures are for illustration purposes only and are not drawn to scale. The invention itself, however, both as to organization and method of operation, may best be understood by reference to the detailed description which follows taken in conjunction with the accompanying drawings in which:
In describing the preferred embodiment of the present invention, reference will be made herein to
The drawings show alternate embodiments of the structural panel 20 of the present invention, which is in the embodiment shown a door panel. The door shell includes an inner panel 40 and a spaced outer panel 42 opposite the inner panel. The inner panel 40 and outer panel 42 form the exterior panels of the door, and may also be referred to as the door skin. The exterior panels may be made of any suitable sheet material, for example a metal or alloy such as about 14, 16, 18 or 20 gauge steel, a fiber reinforced plastic (FRP), wood or composite. The exterior panels may be flat or embossed. The door 20 includes door edges 48 extending between the periphery of the inner and outer panels. Upper and lower door edges 48 are formed by elongated upper and lower frame members 90, which may have a “U” or “C” channel cross-section, to which the inner and outer panels 40, 42 are welded or otherwise adhered. Side door edges 48 also have a “U” or “C” cross-section 94, which may be formed by folding the side edges of outer panel 42. There may be provided in the frame members one or more slots or openings 98 for hanging panel 20 during the manufacturing process, such as when painting, and one or more slots or openings 96 for injecting foam insulation (
In the interior portion of the shell between the inner and outer exterior panels there is disposed one or more planar polymeric sheet(s) 30, 30a, 30b made of a thermoplastic material, such as a polycarbonate, with opposite sides or walls. The polymeric sheet 30, 30a, 30b is formed with a honeycomb pattern having a plurality of regularly spaced, patterned openings or holes 32 between flat wall portions 33, which openings may be molded in during forming of the thermoplastic, or otherwise formed through the thickness of the polymeric sheet. The openings 32 may have any desired cross-section, such as circular, square, rectangular or polygonal. The polymeric sheet 30, 30a, 30b is both thermally and electrically non-conductive. The sheet dimensions may be sized to fill substantially the entire interior of the panel volume, or may be of lesser width, height or thickness than the interior space formed by the panel skins and edges. The thermoplastic material and dead air space formed by the openings 32 provides thermal insulation through the panel thickness. If a plurality of stacked polymeric sheets of lesser thickness are used, to provide additional thermal insulation each sheet may be staggered or offset from the adjacent panel so that the holes or openings of one sheet are offset from those of the adjacent sheet, and are instead aligned with the polymeric wall between openings of an adjacent sheet.
In one embodiment (
In another embodiment (
In the interior portion, between the polymeric sheets, one or more core layers of a blast-resistant or ballistic-resistant material 180 extend substantially between the door edges (
In the interior portion between the inner and outer exterior panels a plurality of spaced-apart elongated structural stiffeners 50 extend substantially between the door edges. Although stiffeners 50 are shown extending vertically from the top to the bottom edges of the door, they may extend horizontally from one side to the other, or in any other direction. The stiffeners may be made of a fiber reinforced polymer (FRP), such as glass fiber reinforced polymer (GFRP), aramid fiber reinforced polymer (AFRP), carbon fiber reinforced polymer (CFRP), or the like. FRP stiffeners are described in U.S. application Ser. No. 15/662,936, the disclosure of which is hereby incorporated by reference. The drawings show a FRP rod 50 which has glass fibers spirally wrapped 54 about the exterior (
As shown, the FRP stiffener 50 is of a substantially circular configuration. The diameter of the stiffeners may typically be in the range of 0.25 in to 0.75 in., for example 0.375 in. or 0.5 in. The stiffener diameter may typically be in the range of 20% to 50% of the interior door thickness, and may be in the range of 20% to 30% thereof. The stiffeners 50 should be provided in configuration, number, and size to provide sufficient structural integrity to maintain the desired strength of the door. Stiffeners 50 are sized and spaced from inner and outer door panels 40, 42, so a gap exists and there is no direct contact between the mid-portions of the stiffeners between ends 52 and the inner surface of the door panels or skins.
On one or either side of stiffeners 50 are disposed a polymeric sheet 30, between the stiffeners and the interior of the panels or skins 40, 42 (
The FRP rod ends 52 may be secured into the end cap openings with an adhesive, for example, epoxy. Alternatively, the stiffener ends 52 may be mechanically locked in position by a tight sliding interference fit into the end cap openings 82. Other bonding methods and materials may alternatively or additionally be used to secure the stiffener ends 52, including but not limited to mechanical fasteners, such as a lock washer. Both ends of the stiffeners are secured to the end caps, and similar end caps 80 (not shown) are provided at the top end of door panel 20′ secured to top frame 90 at top edge 48 between door panels or skins 40, 42.
Insulation material 60 may be inserted between adjacent stiffeners and to fill the interior cavity formed between polymeric sheets 30, such as the aforedescribed expanded foam. The foam when cured acts to provide thermal insulation through the thickness of the panel. Additionally, the cured foam adheres to and acts to lock the mid-sections of stiffeners 50 in place, between the ends 52, to prevent movement of the stiffeners from side-to-side, in the directions of the panel side frame members 94. The FRP stiffener composition may also be selected so that the insulation material 60 when cured chemically bonds to the FRP stiffener surface, so that the stiffeners and insulation are integral with one another. The use of FRP for the stiffeners also improves the thermal insulation of the door, since the FRP has more thermal insulation value than and is more thermally and electrically non-conductive than stiffeners made of steel or other metals. Additionally, the FRP stiffeners are corrosion resistant and provide dimensional stability to the panel under thermal loading. The cured-in-place structural combination of the foam and stiffeners eliminates the need to have the stiffeners, in the mid-portions between the ends 52, otherwise separately adhered to the adjacent sheets 30 to prevent such side-to-side movement.
In a method for making the reinforced structural or door panel of the first embodiment (
Flowable foam is then injected into any cavities between the inner and outer panels, frame members, stiffeners and polymeric sheets. The injection may be made through foam slot(s) 96 in the frame member(s) at ends or edges of the door shell. If stiffeners are used and the polymeric sheets are of a thickness that provides a gap between the sheet and the stiffener, foam may flow between the sheets and stiffeners to fill substantially all of the cavities making up the interior volume. Where the stiffeners contact the inside surfaces of polymeric sheets, a foam inlet will be provided between each pair of stiffeners, or between a stiffener and the door side frame member. The flowable foam may be a foam material that expands upon contact with the atmospheric air or alternately a two-part foam that expands upon mixing the two parts together. The stiffeners may include openings or slots along the stiffener length which allow the expanding foam to flow from one cavity to an adjacent cavity. The flowable foam then hardens and is bonded to the inside surfaces of the polymeric sheets, frame members, and stiffeners. If foam is to be used to bond the polymeric sheets to the inner and outer panels, then it is pumped into the gaps therebetween in a similar manner. The foam acts both as thermal insulation material and bonds to the door skins or panels, polymeric sheets and stiffeners as an adhesive or direct chemical bond.
In a method for making the blast- or ballistic-resistant embodiment of the reinforced door panel (
Instead of using the bonding adhesive, the honeycomb polycarbonate sheets are spaced from the exterior panels 40, 42, and a flowable foam is then injected into cavities therebetween. The injection may be made through foam slot(s) 96 in the frame member(s) at ends or edges of the door shell. The polymeric sheets may also be spaced from the core blast- or ballistic-resistant material layer, and foam injected between. The flowable foam may be a foam material that expands upon contact with the atmospheric air or alternately a two-part foam that expands upon mixing the two parts together. The flowable foam then hardens and is bonded to the inside surfaces of the polymeric sheets, frame members, and stiffeners. The foam acts both as thermal insulation material and bonds to the door skins or panels, polymeric sheets and stiffeners as an adhesive or direct chemical bond.
Thus, the present invention provides a door panel in which polymeric sheet(s), with or without structural framework of fiber reinforced polymer, improves the structural integrity and thermal efficiency of the door or other wall panels, and, if without an FRP framework but in combination with blast- or ballistic-resistant material, improves the structural integrity, blast- and ballistic-resistance, and thermal efficiency of the door or other wall panels.
In these embodiments, the polycarbonate core can be used in hollow metal, wood, and FRP door designs potentially reducing the number of core types and inventory used in manufacturing. The invention provides major reduction in weight without sacrificing structural strength and blast and ballistic resistance (if employed), is dimensionally stable to reduce thermal bow effect, provides sound transmission class (STC) improvement due to core design and construction, and provides improvement in thermal insulation and air infiltration. The invention provides the option to encapsulate the polycarbonate core with foam in place polyurethane to bond the interior components, polycarbonate core and skins and/or use structural adhesives (epoxy) to bond the polycarbonate core and components to skins.
While the present invention has been particularly described, in conjunction with a specific preferred embodiment, it is evident that many alternatives, modifications and variations will be apparent to those skilled in the art in light of the foregoing description. It is therefore contemplated that the appended claims will embrace any such alternatives, modifications and variations as falling within the true scope and spirit of the present invention.
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