The disclosure relates to walkway systems, and, more particularly, to a reinforced walkway system with thermal protection, superior dimensional stability and high reflectivity and high emissivity properties.
There currently exists commercially available roof walkway systems that are designed to protect single-ply roof membrane from foot traffic damage, thermal degradation, dragged or wheeled objects and usage or damage from dropped tools. One such system is the Tuff TracĀ® Roof Walkway System available from The Biltrite Corporation, Waltham, Mass. 02453. Because such systems are secured to the roof of the structure, they are exposed to the elements, particularly extreme temperatures, for extended periods, depending on the geographic location of the structure. Particularly in more southerly and westerly areas, extreme heat and exposure to ultraviolet rays can cause dimensional instability, and UV damage to the material from which the system is constructed. In areas of frequent precipitation, traction and water channeling concerns arise.
Accordingly, need exists for a roof walkway system which possesses improved thermal protection, dimensional stability, high reflectivity and high emissivity properties, and channels water efficiently.
Disclosed is a reinforced walkway system comprising an embossed walkway performance layer having a composite reinforcement layer thermally bonded thereto. The performance layer may be manufactured from fibrous recycled thermoplastic or rubber scrap that creates dimensional stability within the polymer formulation thereof and may have a pattern embossed thereon, such as a herringbone pattern, that allows for superior water drainage. The reinforcement layer may comprise a high temperature reinforcing composite which is thermally applied to the underside of the performance layer to prevent delamination therefrom during the product life and which provides a medium that maintains the dimensional stability of the embossed performance layer at high temperatures.
According to one aspect of the disclosure, an article of manufacture comprises a walkway performance layer comprising a polymer composite and a reinforcement layer secured thereto, the reinforcement layer being a composite layer formed of a plurality of materials. In one embodiment, the walkway performance layer may comprise any of polyolefin (TPO), Polyvinylchloride (PVC), and Elvaloy/Polyvinylchloride optionally mixed with other additives such as UV protection or mineral fillers. In another embodiment, the reinforcement layer may comprise a plurality of different materials chosen to maintain the dimensional stability of the embossed walkway at high temperatures.
According to another aspect of the disclosure, a method of forming a reinforced walkway system comprises: a) providing a walkway performance layer comprising a polymer composite; b) providing a composite reinforcement layer formed of a plurality of materials; c) thermally fusing the performance layer and the reinforcement layer together to form a fused layer therebetween, while substantially simultaneously embossing the performance layer.
A reinforced walkway system 5 in accordance with the disclosure comprises an embossed walkway layer 10 and a composite reinforcement layer 30. A thermal fusion layer 20 is formed at the juncture of layers 10 and 30 during the manufacturing process. In another embodiment, layer 30 has a polymer adhesive layer 40 and release layer 50 formed there under to facilitate peel and stick attachment of system 5 to a roof structure. The system 5 is designed to protect single-ply roof membrane from foot traffic damage, thermal degradation, dragged or wheeled objects and usage or damage from dropped tools. System 5 offers superior dimensional stability versus non-reinforced walkway forms.
In one embodiment, layer 10 may comprise a mineral filled, recycled thermoplastic such as one or more of polyolefin (TPO), Polyvinylchloride (PVC), or Elvaloy/Polyvinylchloride blend. Layer 10 may comprise both post industrial and post consumed thermoplastic or rubber materials. Specifically, layer 10 may be manufactured from fibrous recycled thermoplastic or rubber scrap that creates dimensional stability within the polymer formulation by adding structural integrity. Layer 10 maybe manufactured from recycled roofing membrane resin which is mixed via a direct compounding process by itself or with prime resins and other additives such as UV protection or mineral fillers to promote the proper longevity of the product in outdoor weathering conditions. In one embodiment, layer 10 may be implemented with a commercially available material, such as the Tuff TracĀ® Roof Walkway System available from The Biltrite Corporation, Waltham, Mass. 02453.
Layer 10 may be designed with a herringbone embossment on the upward or exterior surface thereof, as illustrated in
In an alternative embodiment, other embossing patterns may be formed into performance layer 10, including Diamond Plate embossment, Pyramid embossment, or similar patterns which provide both improved traction and water channeling characteristics.
Layer 30, in one embodiment, comprises a high temperature reinforcing composite which is thermally applied to the backside of the walkway performance layer 10 to prevent delamination of the performance layer during the product life. The composite reinforcing layer 20, which in one embodiment may be fabric reinforced, provides a backing medium that maintains the dimensional stability of the embossed walkway at high temperatures (defined as greater than 158 Fahrenheit up to 250 Fahrenheit).
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Layer 20F represents the thermal fusion juncture of embossed walkway layer 10F with composite reinforcement 30F as formed using manufacturing processes described herein. In system 5F, composite reinforcement layer 30F comprises either a polyolefin or polyvinyl chloride film 31F, a fiberglass or polyester fabric 32F, and a Mylar polyester film or reflective foil 35F, as illustrated. In addition system 5F comprises a layer 40F of extruded or coated modified butyl rubber or thermoplastic polymer adhesive disposed on the under surface of layer 30F. Adjacent layer 40F is a removable layer 50F comprising a silicon coated release liner. The system 5F as illustrated in
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The various system embodiments illustrated in
System 5 as disclosed herein provides a sure foot pathway that is slip resistant due to the deep herringbone embossment that will not wrinkle or exhibit distortion at high temperature extremes.
System 5 maybe applied to existing roof membrane surfaces with direct thermal bonding. In one embodiment, a reinforced walkway comprising system 5 is designed with a welding edge that is not reinforced to allow for undisturbed thermal bonding of walkway to the roof membrane. The non-reinforced edge is supported from dimensional movement by the underlying roof membrane.
System 5 may be manufactured with a brightly colored safety edge applied to the outside edges of the walkway surface for easy identification of the high raised area of the protective walkway.
As noted previously, system 5 maybe made with a high temperature reinforcing composite to provide a high reflective and emissive layer for thermal protection of the underlying roof membrane.
It will be obvious to those recently skilled in the art that modifications to the article of manufacture and process disclosed here in may occur, including substitution of various materials within the compounds of layers and different layer configurations, without parting from the true spirit and scope of the disclosure.
Number | Date | Country | |
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61372309 | Aug 2010 | US |