Foam-filled structural plank building foundation with laminated reinforcement

Through the foam-filled structural slab building infrastructure system, the environmental pollution and long construction time caused by the use of concrete in the existing building infrastructure are solved, and a construction infrastructure solution with rapid assembly and disassembly, high stability and low cost is achieved.

JP7678941B2Active Publication Date: 2025-05-16PLANK STRUCTURAL SYST LLC
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Patent Information

Application Number
JP2024538663
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-12-15
Filing Date
2022-08-10
Publication Date
2025-05-16
Estimated Expiration
2042-08-10

AI Technical Summary

Technical Problem

The existing building infrastructure mostly uses concrete, which has problems such as environmental pollution, long construction time, and many materials, and is difficult to quickly assemble and disassemble.

Method used

The foam-filled structural panel building infrastructure system is adopted, which consists of multiple structural beams to form a closed space and fill structural building foam to form a foam-filled structural panel. The system can be used in building infrastructure, walls, roofs and floors, and enables rapid installation and disassembly by pre-assembly and connecting multiple infrastructure modules in the factory.

Benefits of technology

The system avoids the use of environmentally contaminated concrete, shortens construction time, reduces resources required for material transportation and installation, improves the stability and flexibility of building infrastructure, and reduces construction costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

A foam-filled structural plank made from a plurality of structural beams assembled together to form a structure capable of supporting the weight of a building thereon, the plurality of structural beams defining an enclosure between them and a perimeter therearound, and a structural building foam, such as expanded polystyrene foam having a density of 1.5-3.0 PFC, filling the enclosure. In various embodiments, the structural plank is used as a building foundation. However, as will be shown, using the present techniques of formation and assembly, the structural plank system can also be used as or in a building wall, ceiling, or roof.
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Description

[Technical field]

[0001] (CROSS REFERENCE TO RELATED APPLICATIONS) This application claims priority to U.S. Provisional Patent Application No. 63 / 232,425, filed August 12, 2021, and entitled “Foam Filed Structural Plank Building Foundation,” and U.S. Provisional Patent Application No. 63 / 289,816, filed December 15, 2021, and of the same title, the entire disclosures of which are incorporated herein in their entirety for all purposes.

[0002] The present system relates to structural planks, including structural planks for building foundations. [Background technology]

[0003] Building foundations are used to spread the loads of a building over an area of ​​soil. A proper building foundation distributes these building loads evenly and provides stability to the building. Thus, a proper building foundation ensures that differences in the soil beneath the building do not result in subsidence or structural damage to the building.

[0004] Traditionally, many building foundations are constructed using concrete slabs or foundations. A disadvantage of using concrete in building foundations is its large amount of embodied carbon. Instead, it would be preferable to provide a building foundation without concrete.

[0005] The assembly of a conventional building foundation can be a time-consuming task that requires many different materials and supplies to be delivered to a building site. Instead, what is desired is a building foundation that requires fewer materials to be delivered to a construction site. Ideally, such a building foundation would be lightweight and pre-assembled in a factory setting and then delivered to the building site. A system for reinforcing such lightweight building foundations is also desired.

[0006] It would also be desirable to use the same systems and techniques to provide the building foundation and also to provide the building wall, ceiling, and roof components. A system for reinforcing and strengthening such lightweight building wall, ceiling, and roof components is also desired.

[0007] Building modular homes has recently become increasingly popular. Modular home components are prefabricated and then assembled at the construction site. This results in much simpler and faster construction. It would be ideal to provide a building construction plank, including foundations, that could be quickly and easily installed. Such a system would be simple to build and reduce construction costs.

[0008] As will be shown herein, the present building foundation system addresses the disadvantages noted above. Summary of the Invention [Means for solving the problem]

[0009] In a preferred aspect, the system provides a foam-filled structural plank building foundation comprising a plurality of structural beams defining a structural plank that may be used as a building foundation, connected together and capable of supporting the weight of a building thereon, the plurality of structural beams defining an enclosure therebetween and a perimeter therearound, and structural building foam filling the enclosure. Preferably, the structural building foam is an expanded polystyrene foam having a density of 1.5 to 3.0 PFC (pounds force per cubic foot).

[0010] In various embodiments, the structural planks are used as building foundations, however, as will be shown, using the present techniques of formation and assembly, the structural plank system can also be used as or in building walls, ceilings, or roofs.

[0011] In a preferred aspect, the structural building foam has a number of openings cut to pass through it, allowing electrical wiring to pass through it, or to be used as an HVAC conduit for air to pass through it.

[0012] In a preferred aspect, the structural plank building foundation is mounted on an array of building piers with the inner support walls positioned against the building piers. Such mounting may be performed with the structural plank building foundation either resting on the ground or above the ground resting on the array of piers.

[0013] The system also provides a method of forming a foam-filled structural plank building foundation, the method including assembling together a plurality of structural beams to form a structural plank building foundation, the plurality of structural beams defining an enclosure therebetween and a perimeter therearound, then filling the enclosure with structural building foam, and then allowing the structural building foam to solidify.

[0014] In its various aspects, the building foundation provides a factory deployable system for supporting a building structure thereon. Advantageously, the building supported on the building foundation can be a prefabricated, modular, site-built or manufactured building.

[0015] The first advantage of the present building foundation is that it does not require any concrete. Concrete is an environmentally harmful material in view of the embodied carbon required in its formation. Thus, avoiding concrete results in a much more environmentally desirable system. Additionally, concrete installation depends on the environmental conditions of the day, and its time to reach full strength is not completely predictable. For example, it is possible that concrete may take only a week to reach 80-90% of its full strength, but may take as long as a month to reach full strength. In contrast, the strength of the present system is completely predictable since it can be built in a factory and delivered to the construction site rain or shine. Additionally, concrete takes a long time to reach its full strength, but the present system operates at full strength immediately from the start. There is no need to wait for the system to strengthen at the construction site. Additionally, there is no need to wait for favorable weather conditions to deploy the system. The present system therefore accelerates construction time.

[0016] Another advantage of the building foundation system is that it can be prefabricated off-site and then delivered to the site. For example, the building foundation can be manufactured in a factory (providing the benefits of a temperature and moisture controlled environment when the structural foam is poured into the structural enclosure and then later cut out for passages for air ducts and utilities).

[0017] Other advantages of this building foundation are that it can be quickly assembled and is very lightweight. Preferably, this building foundation is made of steel or aluminum (to form the structural "cage" or enclosure) and foam (which is poured into it to fill the cage). After the foam solidifies, the plank structure can then be moved to the construction site. The steel, aluminum, and foam used are all reusable. In contrast, conventional concrete is not reusable.

[0018] The structural foam used in the building foundation also provides other benefits. First, the foam is a thermal insulator (giving the entire building foundation assembly a good R-value). In addition, the ducts and duct manifolds, channels, and service holes can all be cut into the structural foam when the building foundation is first assembled in the factory. Preferably, the foam is an environmentally friendly material that does not leach into the atmosphere. As a result, the air ducting HVAC passages that are cut into the foam do not require air pipes therein. Rather, air can simply be passed directly through the ducting passages and thus throughout the entire building.

[0019] Another advantage of the building foundation is that it can accommodate dead loads, lateral loads, wind loads, and can accommodate loads due to subgrade pressure and voids required to support the building.

[0020] Another advantage of the present building foundation is that its structural members can be connected to structural members of adjacent building foundations. Thus, for larger buildings, multiple present building foundations can be delivered to a job site and then connected together to form the larger building foundation.

[0021] Another advantage of the present building foundation is that its structural members may include wall connections so that vertical building walls may be mounted directly to the present structural building foundation.

[0022] In further embodiments, at least one laminate panel is either attached to a structural plank building foundation, extends at least partially through a structural plank, or both.

[0023] In a preferred aspect, these laminate panels may comprise a woven mesh. In another preferred aspect, these laminate panels may comprise a fossil fuel mesh, including but not limited to rayon, polypropylene, or nylon, most preferably having a weight of 1.5 to 16 oz / sq yd ... 3 ~300g / m 3 (or optionally, 210-250 g / m 3 , or 180~290g / m 3In other preferred aspects, the laminate panels may comprise a carbon-based mesh having a density of 1000 nm to 1000 nm. In other preferred aspects, the laminate panels may comprise a plant-based mesh, including but not limited to, hemp or burlap. In other preferred aspects, the laminate panels may comprise a synthetic acrylic or cementitious composite, including but not limited to, Elephant Armor® (engineered ductile mortar made by GST Industries, Sparks, NV), Thorocoat® (a coating made by Standard Drywall Products, Miami, FL), EIFS systems Kryton® (a concrete admixture made by Kryton Systems, Vancouver, BC), or HMI mortar (made by Hargett Materials, MilaN, TN). In other preferred aspects, the laminate panels may comprise products made by a pultrusion process, which may optionally be fiberglass, graphene, carbon, fiberglass-reinforced carbon, or fiberglass-based. In other preferred aspects, these laminate panels may comprise wood-based panel products, including, but not limited to, cellulosic panels, plywood, MDF (medium density fiberboard), MDO (medium density overlay), OSB (oriented strand board), Finply® (plywood panel made by PERI USA, Elkridge, MD), Plyboo® (bamboo board made by Plyboo, Novato, CA), hemp board, flax board, particle board, or straw board. Additionally, the laminate panels may also comprise variable combinations of any of the above listed materials and other suitable materials.

[0024] In various approaches, the laminate panel covers the top or bottom (or both) of the structural plank. Alternatively or additionally, the laminate panel may instead extend across an interior portion of the structural plank. Various laminate panels operate to provide exceptional strength to the structural surface once the laminate panel is adhered to or positioned within the structural plank. The laminate panel may optionally be adhered to the structural plank by a heat-setting epoxy or glue.

[0025] In a further optional embodiment, multiple post-tensioning cables are passed through the structural plank to further increase the strength of the structural plank.

[0026] In various optional embodiments, the structural beams themselves, which are assembled to form the structural plank, can be replaced with laminate panels. In these embodiments, steel or aluminum is not required for the structural members. Rather, the entire building structural plank can be formed from laminate panels and architectural foam. It should also be understood that embodiments are also contemplated in which only some of the steel or aluminum structural beams are replaced with laminate panels, all while remaining within the scope of the present system.

[0027] In those embodiments in which the structural plank is not used as a building foundation, the system broadly comprises a plurality of structural beams connected together and defining a structural plank, the structural beams defining an enclosure therebetween and a perimeter therearound, structural building foam poured therein to fill the enclosure, and at least one laminate panel attached to or extending at least partially through the structural plank. The present invention provides, for example, the following: (Item 1) 1. A foam-filled structural plank comprising: a plurality of structural beams connected together and defining a structural plank building foundation, the structural plank building foundation capable of supporting a weight of a building thereon, the plurality of structural beams defining an enclosure therebetween and a perimeter therearound; a structural building foam filling the enclosure; and A structural plank comprising: (Item 2) The building foundation further comprises: at least one laminate panel, the at least one laminate panel being attached to or extending at least partially through the structural plank building foundation; 2. The structural plank of claim 1, comprising: (Item 3) The laminated panel comprises: (a) Woven mesh; (b) a fossil fuel mesh comprising rayon, polypropylene, or nylon, most preferably having a weight of 1.5 to 16 ounces per square yard; (c) a 170 g / m 3 ~300g / m 3 (or optionally, 210-250 g / m 3 , or 180~290g / m 3 ) a carbon-based mesh having a density of (d) plant-based mesh, including hemp or burlap; (e) synthetic acrylic or cementitious composites; (f) products made by a pultrusion process, which may optionally be fiberglass, graphene, carbon, fiberglass-reinforced carbon, or fiberglass-based; or (g) Wood-based panel products, including cellulosic panels, plywood, medium density fiberboard, medium density overlay, oriented strand board, plywood panels, bamboo boards, hemp boards, flax boards, particleboards, or straw boards. 3. The structural plank of claim 2, comprising at least one of: (Item 4) 4. The structural plank of claim 3, wherein the laminate panel covers the top or bottom of the structural plank building foundation. (Item 5) 4. The structural plank of claim 3, wherein the plurality of laminate panels are positioned parallel to one another and extend across an interior portion of the structural plank building foundation. (Item 6) 2. The structural plank of claim 1, wherein the structural building foam is an expanded polystyrene foam having a density of 1.5 to 3.0 PFC (pounds force per cubic foot). (Item 7) a bottom wall on the enclosure, the bottom wall connected to the plurality of structural beams, the structural building foam being poured onto a top of the bottom wall prior to the structural building foam solidifying in place; a top wall on the enclosure; 2. The structural plank of claim 1, further comprising: (Item 8) 8. The structural plank of claim 7, wherein the bottom wall is made from metal and the top wall is made from wood. (Item 9) 8. The structural plank of claim 7, wherein the structural foam substantially fills the enclosure and is in direct contact with the top and bottom walls. (Item 10) 8. The structural plank of claim 7, wherein some of the plurality of structural members form a perimeter of the structural plank and others of the plurality of structural members pass across an interior intermediate section of the structural plank. (Item 11) Item 11. The structural plank of item 10, wherein all of the plurality of structural members have the same height such that all of the plurality of structural members contact the top and bottom walls. (Item 12) 2. The structural plank of claim 1, wherein the structural building foam has a plurality of openings cut therein to allow electrical wiring or HVAC air conduits to pass therethrough. (Item 13) 2. The structural plank of claim 1, wherein the plurality of structural beams are made from steel or aluminum. (Item 14) Item 1 . The structural plank of item 1 , further comprising an array of piers, wherein an internal structural member of the structural plank is positioned on top of the piers, the placement of the internal structural member of the structural plank defining an opening through the structural plank through which the piers are received. (Item 15) 2. The structural plank according to claim 1, wherein the structural plank is a horizontally oriented building foundation capable of supporting the weight of a building thereon. (Item 16) 2. The structural plank of claim 1, wherein the structural plank is oriented vertically and positioned to function as a building wall or as a building ceiling or for use in a building roof. (Item 17) 1. A method of forming a foam-filled structural plank, comprising: assembling together a plurality of structural beams to form a structural plank, said plurality of structural beams defining an enclosure therebetween and a perimeter therearound; and then filling the enclosure with structural building foam; and allowing the structural building foam to set prior to transporting the structural plank to a construction site; and A method comprising: (Item 18) 20. The method of claim 17, further comprising adhering a laminate panel across one or both of the top or bottom of the structural plank. (Item 19) 20. The method of claim 17, further comprising assembling a plurality of laminate panels extending across an interior portion of the structural plank prior to filling the enclosure with the structural building foam. (Item 20) 20. The method of claim 17, further comprising cutting an opening into the structural building foam after it has solidified within the enclosure, the opening being sized to allow electrical wiring or HVAC air to pass therethrough. [Brief description of the drawings]

[0028] [Figure 1] FIG. 1 is a perspective view of one embodiment of the present structural plank building foundation ready for use.

[0029] [Diagram 2] FIG. 2 is a top plan view corresponding to FIG.

[0030] [Diagram 3] FIG. 3 is a cross-sectional side elevation view of a portion of the present structural plank building foundation mounted on a pier, with the building foundation resting on the ground.

[0031] [Figure 4] FIG. 4 is a cross-sectional side elevation view of a portion of the present structural plank building foundation mounted on a pier, the building foundation elevated above ground level.

[0032] [Diagram 5]FIG. 5 is a top plan view of a pair of present structural plank building foundations connected together.

[0033] [Figure 6] FIG. 6 is a cross-sectional elevation view showing both interior and exterior walls mounted on the structural plank building foundation.

[0034] [Figure 7] FIG. 7 is an enlarged cross-sectional elevation view of the area in which the exterior wall rests on the structural plank building foundation, showing optional floor penetrations.

[0035] [Figure 8] FIG. 8 is a view similar to FIG. 7, but showing passages for both electrical conduits and HVAC air vents within the structural building foam.

[0036] [Figure 9] FIG. 9 is another enlarged cross-sectional elevation view of the area where the exterior wall is mounted to the structural plank building foundation.

[0037] [Figure 10A] FIG. 10A is an exploded perspective view of a structural plank, similar to FIG. 1, receiving laminated top and bottom panels adhered thereto.

[0038] [Figure 10B] FIG. 10B is a side elevation view corresponding to FIG. 10A.

[0039] [Figure 11] FIG. 11 is a perspective view of a system similar to FIG. 1, further adding multiple post-tension cables passing therethrough.

[0040] [Figure 12] FIG. 12 is an illustration of a schematic rendering of the various laminations of the present system (showing both a longitudinal and cross-sectional view through it).

[0041] [Figure 13A] FIG. 13A is a top plan view of a 4'×4' heavy gauge floor plank framing panel.

[0042] [Figure 13B] FIG. 13B is a top plan view of the 8'×20' heavy gauge floor plank framing.

[0043] [Figure 13C] FIG. 13C is a side elevation view of the heavy gauge floor plank flexure test.

[0044] [Figure 13D] FIG. 13D is a top plan view of an 8'×20' light gauge floor plank framing panel. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0045] Detailed Description of the Drawings Figures 1 and 2 illustrate one rectangular embodiment of the present structural plank building foundation 10. It should be understood that the present system can be assembled in virtually unlimited sizes, shapes, and dimensions, and the present structural plank building foundation is not limited in any way to the exemplary embodiment illustrated herein. However, the embodiment illustrated in Figures 1 and 2 has been built and tested by the applicant. The tests showed significant strength properties, and the structure performed remarkably well for use in a building foundation. Thus, the tested embodiment thus represents a preferred embodiment of the present system.

[0046] In its broadest application, the present system provides structural planks (including building foundations) that are filled with structural foam. In a preferred embodiment, the structural foam completely (or nearly completely) fills the structure, contacting all of the structural members that make up the frame for the structural plank. Most preferably, the foam is poured into the structure when the structure is first assembled in a factory setting (as opposed to being added as a block of foam material that is inserted into a frame-type structure at the building site). As will be explained, applicants have found that assembling the present structural planks by completely (or nearly completely) filling the structure with foam and then allowing the foam to solidify provides a strong building foundation. As shown, the present system may include a plurality of structural beams 20 and 30 connected together and defining a structural plank building foundation 10 as shown. The structural plank building foundation 10 is capable of supporting the weight of a building thereon, and the dimensions and materials used for the beams 20 and 30 are designed and selected accordingly. In a preferred aspect, the beams 20 and 30 are made from steel or aluminum. However, other materials can also be used. The use of structural foam 50 also gives the assembly a high R-value (i.e., high insulation value). This is unlike concrete, which does not fundamentally act as an insulator. Thus, using concrete would also require insulation to be added above or below the concrete. The use of the present system of structural foam 50 overcomes these issues and does not require additional building components to be added to provide insulation.

[0047] Together, the beams 20 and 30 form an enclosure 40 (or a series of enclosures 40) into which the structural foam 50 (FIGS. 3, 4, and 6-9) is deposited. In other words, the beams 20 and 30 form the sides of a series of "voids" or "boxes" 40 that will be filled with the structural foam. It is believed that pouring the structural foam 50 into the enclosures 40 so that it fully contacts the sides of the structural members 20 and 30 when the planks are first assembled (i.e., prior to the structure being moved from the factory setting to the building site) increases the strength of the system. Advantageously, the structural members 20 and 30 also preferably have the same height when installed on their sides (as shown) so that the enclosures 40 into which the foam is filled all have sides that are the same depth. This facilitates manufacturing when the structural foam is first poured into the voids 40 between the structural members 20 and 30.

[0048] In a preferred aspect, the structural foam 50 is an expanded polystyrene foam having a density of 1.5 to 3.0 PFC (pounds force per cubic foot). In a preferred embodiment, the structural foam used may be Geocell foam, made by Geocel Products Group (Cleveland, Ohio). This structural foam has the advantages of being lightweight, having low density, providing insulation benefits, having long life performance, and having limited water absorption. However, it should be understood that the system is not limited to the use of this particular foam or any other type of foam. Thus, the system encompasses a wide variety of various open and closed cell foams.

[0049] When the system is being manufactured, the structural foam 50 is placed into the enclosure 40, which is then allowed to set and solidify. Preferably, a bottom wall (60 in FIG. 4) is placed on top of the bottom of the enclosure 40 prior to adding the foam 50 into the enclosure 40. The bottom wall 60 may simply be connected to the structural beams 20 and 30 using various mounting systems, and the structural building foam 50 can then be deposited on top of the bottom wall 60. The bottom wall 60 may optionally be made from aluminum, steel, or other suitable metals. The structural building foam 50 is then allowed to set and harden in place. At the construction site, an optional waterproofing layer (62 in FIG. 3) may be applied below the bottom wall 40 (i.e., between the building foundation 10 and the ground) as desired. In an additional preferred aspect, pressure can also be applied to the top of the foam 50 to help it harden and solidify with uniform dimensions. Having the structural members 20 and 30 have the same height as shown ensures that the structural foam 50 will have the same depth across the plank. Additionally, a top wall (70 in FIGS. 3 and 4) can be used to cover the top of the structural surface foundation after the foam 50 is added. Having the top of the filled structural foam 50 directly contact the underside of the top wall 70 will ensure that no undesirable voids are present within the plank. The top wall 70 may optionally be made of plywood or another suitable material that can then be covered by plywood. Thus, in a preferred embodiment, the system provides a structural building foundation in the form of a "sandwich" with a top plywood layer, a center foam and structural member layer, and a bottom metal layer. Having all three of these layers in contact with each other, i.e., with the center layer filled with structural foam (across the entire structure so that there are no undesirable voids or empty spaces therein), results in load sharing and distribution, resulting in a high strength building foundation. Additional benefits of using structural foam 50 within enclosure 40 (compared to conventional building foundation methods) include reduced construction time, lower construction costs, stability, and ease of handling.The advantage of using plywood as the top of a structure is that it can be easily drilled or used with nails to attach a wall or other structure onto it.

[0050] As best seen in FIG. 1, the plurality of structural beams 20 and 30 forming the structural plank building foundation 10 may include an outer edge wall (i.e., two beams 20A and two beams 30A that form the perimeter of the illustrated rectangular building plank foundation) and an inner support wall (i.e., the remaining interior beams 20 and 30) that spans between the outer edge walls. Also, as can be seen, the beams 20 and 30 may all preferably have the same vertical height, such that the separate enclosures / boxes 40 all have the same vertical height. This makes it very easy to fill the foam 50 to the same level across the entire structural plank building foundation 10. Preferably, the structural beams 20 and 30 are all rectangular in cross section, as shown. However, other possibilities and dimensions are also contemplated within the scope of the present invention. Additionally, and as can be seen from the figures, beams 20 and 30 all preferably have the same height across the plank such that the side edges of the beams contact the top and bottom of the plank (i.e., the side edges of beams 20 and 30 touch the bottom and top walls 60 and 70 in FIG. 3, or the top and bottom laminate panels 202 and 204 in FIG. 10A). Having the respective side edges of beams 20 and 30 in direct contact with either the bottom and top walls 60 and 70 or the panels 202 and 204 provides load distribution that strengthens the present structural plank system.

[0051] As can be seen in Figures 2, 3, and 4, an array of building piers 100 may also be included. In these exemplary embodiments, the interior support wall 30 is positioned relative to the building piers 100 such that the array of building piers 100 supports the building foundation 10 thereon. In this example, the location of the piers 100 allows the building foundation 10 to support a cantilever load.

[0052] FIG. 3 illustrates an embodiment of the system in which the building foundation 10 rests on the ground. An optional waterproof layer 62 can be provided below the bottom wall 60. Conversely, FIG. 4 illustrates an embodiment of the invention in which the building foundation 10 is elevated above the ground by an array of piers 100. As can be seen, the piers 100 are preferably dimensioned with an upper edge 101 that supports the bottom edge of the building foundation 10. As can also be seen, the piers 100 preferably comprise a central helical screw-type structure 102 that is inserted deep into a hole in the ground and then screwed into the ground below. Later, the hole is filled with concrete, resulting in a concrete-covered structure that protrudes above the ground, as can be seen in FIG. 3. Alternatively, as shown in FIG. 4, a larger portion of the concrete-covered pier 100 may protrude above the ground, such that the piers 100 support the building foundation 10 above the ground, as shown.

[0053] 5 illustrates an embodiment of the invention in which a first building foundation 10 is connected to a second building foundation 10B by a mechanical connector 90. FIG 5 illustrates a key advantage of the system in that the building foundation can be assembled from multiple smaller building foundations 10. Thus, smaller sections of a building foundation can be fabricated in a factory and then shipped to a construction site where they can be assembled together such that an easy to manufacture and transport building foundation can be used to support a much larger building foundation.

[0054] 6 illustrates both interior and exterior walls connected to the building foundation 10. Specifically, an optional interior shear wall 110 and an optional exterior foam wall 120 can be connected to the building foundation 10 as shown. Thus, the interior shear wall 110 can be supported directly above the pier 100, while the exterior wall 120 would be cantilevered from the pier 100. The walls 110 and 120 may be connected to the building foundation 10 by mechanical couplers that pass through metal flanges.

[0055] 7 illustrates an optional floor penetration 130 that passes vertically through the building foundation 10. Also illustrated is a mechanical coupler 105 in the building foundation 10 that connects through the top wall 70 of the building foundation 10 and through a metal flange 107 at the bottom of the exterior wall 120, thereby connecting the exterior wall 120 to the building foundation 10.

[0056] 8 illustrates an optional plurality of openings 140 and 150 passing through the building foundation. The openings 140 and 150 may be cut into the structural building foam 50 after it has solidified within the enclosure 40. As shown, the smaller openings 150 are sized to allow electrical wiring to pass therethrough and the larger openings 140 are sized as HVAC conduits for air to pass therethrough. It should be understood that the paths and layouts of the openings 140 and 150 can be in many different forms, locations and sizes, all while remaining within the scope of the present system.

[0057] As seen in both FIGS. 7 and 8, the connection mechanism 105 used to attach the exterior wall 120 to the structural building foundation 10 may be placed within the building foundation and later covered with foam 50.

[0058] FIG. 9 illustrates another embodiment of an exterior wall 120 secured to the building foundation 10 in which a structural plate or sill 108 is used in place of the metal flange 107 of FIGS.

[0059] FIG. 10A is an exploded perspective view of a structural plank similar to FIG. 1 receiving laminated top and bottom panels 202 and 204, respectively, adhered thereto. In a preferred embodiment, the structural plank of FIG. 10A has bottom and top walls 60 and 70 thereon, and panels 202 and 24 are received thereon (i.e., top panel 202 sits on top of top wall 70, and bottom panel 204 sits just below bottom wall 60). In other optional embodiments, laminate panels 202 and 204 simply replace top and bottom walls 70 and 60, respectively. FIG. 10B is a side elevational view taken along line 10B-10B in FIG. 10A. Laminate panels 202 and 204 may be adhered to structural plank 10 by heat-setting epoxy or glue. In a preferred embodiment, laminate panels 202 and 204 may be made from a woven mesh. In other preferred aspects, the laminate panels 202 and 204 may be made from a fossil fuel mesh, including but not limited to rayon, polypropylene, or nylon, most preferably having a weight of 1.5 to 16 oz / sq yd. ... 3 ~300g / m 3 (or optionally, 210-250 g / m 3 , or 180~290g / m 3) of a carbon-based mesh. In other preferred aspects, the laminate panels 202 and 204 may be made from a plant-based mesh, including but not limited to, hemp or burlap. In other preferred aspects, the laminate panels 202 and 204 may be made from a synthetic acrylic or cementitious composite, including but not limited to, Elephant Armor®, Thoroccoat®, EIF Ssystems Kryton®, or HMI mortar. In other preferred aspects, the laminate panels 202 and 204 may be made from a product made by a pultrusion process, which may optionally be fiberglass, graphene, carbon, fiberglass reinforced carbon, or fiberglass based. In other preferred aspects, the laminate panels 202 and 204 may be made from wood-based panel products, including, but not limited to, cellulosic panels, plywood, MDF (medium density fiberboard), MDO (medium density overlay), OSB (oriented strand board), Finply®, Plyboo®, hemp board, flax board, particle board, and straw board. The advantage of the laminate panels 202 and 204 is that they significantly increase the tensile strength of the structural planks. It should be understood that the laminate panels 202 and 204 may be made from any of the above listed materials, either alone or in combination with each other or with other suitable materials.

[0060] In various alternative embodiments seen in FIG. 10B, structural members 201, 202, and 203 may be either steel or aluminum members (similar to members 20 and 20A in FIG. 1) or may be sections of laminated panels (similar in structure to top and bottom panels 202 and 204). In addition, side structural member 20A may also be either steel or aluminum members (similar to member 20 in FIG. 1) or may be sections of laminated panels (similar in structure to top and bottom panels 202 and 204). It should be understood that the present system and technique includes all embodiments in which structural members 20 and 30 may be steel or aluminum (or other metal) members or sections of laminated panels. As can be seen from structural member 20A, 201, 202, and 203 all preferably reach from the top to the bottom of the structural plank 10, and the entire remainder of the structure is filled with structural foam 50. Applicant has tested the structure under load and achieved excellent results.

[0061] Importantly, the system also encompasses embodiments in which the structural plank 10 is used to be a building foundation or ceiling or flat roof section in the horizontal orientation shown. In addition, however, the structural plank 10 can alternatively be positioned vertically and function as a building wall (interior or exterior). The structural plank 10 can also be optionally positioned in other orientations (e.g., as a section of a sloped building roof). When used as a wall, the structure can be used both as an above-ground wall and as a below-ground wall. When used below-ground, a layer of waterproofing material can be added to the exterior side of the wall. The advantage of using the structure as a wall is that the structural foam therein will act as an insulator, thereby eliminating (or at least reducing) the need for additional insulation adjacent to the building wall.

[0062] 11 is a perspective view of a system similar to FIGS. 1 and 10, further adding a number of post-tension cables TC passing therethrough. These post-tension cables TC are used after the foam 40 has solidified (e.g., when the structural plank 10 is used as a building foundation) to provide additional strength.

[0063] FIG. 12 illustrates a schematic rendering of various stacks of the system (showing both longitudinal and cross-sectional views through it). The cable alignments shown correspond to the close-up of section A. Specifically, the cables, shown as straight extensions, reflect a compression system, while the V-shaped and C-shaped cable illustrations are over-exaggerated to represent load bearing in deflection. It should be understood that the system encompasses, but is not limited to, different cable geometries, installations, and cable types. It should also be understood that the final cable design and configuration will be specific to the dynamic loads to which the structural plank will need to react. Thus, the final design may be a composite of different cable systems and installations within the same building structural plank. Test Results:

[0064] Applicant has successfully built and tested embodiments of the present structural plank building foundation. Tests performed included "Heavy Gauge Plank in Compression", "Heavy Gauge Plank in Flexure", and "Light Gauge Plank in Flexure" tests as follows:

[0065] For testing the heavy gauge floor planks in compression, a 4' x 4' structure as illustrated in Figure 13A was formed having a C10 x 15.3 steel channel perimeter with a 0.125" mild steel metal skin on the bottom and a 3 / 4" plywood deck forming the top surface. A rigid 1.5 pound foam core was used. The planks held a load of 13,007.28 lbs / sq ft or about 90.33 psi, which was an excellent result.

[0066] For testing the heavy gauge deck planks in flexure, an 8' x 20' structure as shown in Figure 13B was constructed using C10 x 15.3 steel channel members positioned as shown, with a 0.125" mild steel metal skin on the bottom and a 3 / 4" plywood deck forming the top surface. A stiff 1.5 lb foam core was used. Loading was performed as shown in the side view of Figure 13C. This test was performed to evaluate the performance the planks would perform when seated on top of a helical pier foundation. A load of 2,461.23 lb / ft was achieved before failure. Again, this was an excellent result.

[0067] For testing light gauge floor planks in flexure, an 8' x 20' structure as illustrated in Figure 13D was constructed using 128 gauge metal track steel channel members positioned as shown, with a 0.125" mild steel metal skin on the bottom and 3 / 4" plywood deck forming the top surface. A stiffness 2.0 lb foam core was used. Tests showed a strength of 4,332.80 lbs / ft at failure. 2 An equivalent distributed load of 0.01 mm was achieved. Again, this was an excellent result.

[0068] A table summarizing the test results is provided below. [Table 1]

[0069] Based on these results, all plank variations were designed to achieve an average of 10-20 lb / ft2, as outlined in Chapter 5 of the 2021 International Residential Code. 2 Dead load and 30-40 lbs / ft 2 It is suitable for construction use as it is strong enough to handle live loads.

[0070] Heavy gauge floor planks are suitable for use as both building foundations and floor elements. 3,250 lb / ft in compression 2This is based on the design load of 3,000 lb / ft for gravel, gravel, and sand, as stated in Table R401.4.1 of the 2021 International Residential Code. 2 or less. In addition, heavy gauge floor planks have a load-bearing pressure of 430 lb / ft. 2 of design load required for floor framing elements and other potential loads, 10 to 20 lb / ft 2 of dead load and 30-40 lbs / ft 2 Since it is sufficiently strong to accommodate the live load of 100 kg / m², it can be used as a floor framing element.

[0071] Light gauge floor planks are suitable for use as floor elements. 72 lb / ft 2 Its design load is required to be 10 to 20 lb / ft, as required within Chapter 5 of the 2021 International Residential Code. 2 of dead load and 30-40 lbs / ft 2 More tests need to be done to determine its suitability as a foundation.

Claims

1. 1. A foam filled structural plank load bearing building foundation comprising: a plurality of structural beams connected together and defining a structural plank building foundation capable of supporting a weight of a building resting directly thereon, the plurality of structural beams defining an enclosure therebetween and a perimeter therearound; a bottom wall on the enclosure, the bottom wall being connected to the plurality of structural beams; and a top wall on the enclosure, the top wall being connected to the plurality of structural beams; and structural building foam filling the enclosure, the structural building foam being poured onto a top of the bottom wall prior to the structural building foam solidifying in place, the height of the structural building foam being the same as the height of the plurality of structural beams, the structural building foam being in direct contact with the plurality of structural beams and in direct contact with the bottom wall and the top wall; a bottom laminate panel covers and is in direct contact with the bottom wall; or A top laminate panel covers and is in direct contact with the top wall. A structural building foam, which is at least one of 1. A foam filled structural plank load bearing building foundation comprising:

2. 10. The foam filled structural plank load bearing building foundation of claim 1 , wherein the building foundation further comprises a plurality of laminate panels, the plurality of laminate panels extending at least partially through an interior portion of the structural plank building foundation.

3. At least one of the top or bottom laminate panels comprises: (a) a woven mesh; (b) a fossil fuel mesh comprising rayon, polypropylene, or nylon and having a weight of 1.5 to 16 ounces per square yard; (c) Graphene or Kevlar, 170 g / m 3 Up to 300 g / m 3 (or 210-250 g / m 3 , or 180 to 290 g / m 3 ) a carbon-based mesh having a density of (d) a plant-based mesh, said plant-based mesh including, but not limited to, hemp or burlap; (e) synthetic acrylic or cementitious composites; (f) products made by a pultrusion process that include fiberglass, graphene, carbon, fiberglass-reinforced carbon, or fiberglass-based; or (g) Wood-based panel products, including cellulosic panels, plywood, medium density fiberboard, medium density overlay, oriented strand board, plywood panels, bamboo boards, hemp boards, flax boards, particleboards, or straw boards.

10. The foam-filled structural plank load-bearing building foundation of claim 1, comprising at least one of:

4. 3. The foam filled structural plank load bearing building foundation of claim 2, wherein said plurality of laminate panels are positioned parallel to one another.

5. 10. The foam filled structural plank load bearing building foundation of claim 1, wherein said structural building foam is an expanded polystyrene foam having a density of 1.5 to 3.0 PFC (pounds force per cubic foot).

6. 10. The foam filled structural plank load bearing building foundation of claim 1, wherein said bottom wall is made from metal and said top wall is made from wood.

7. 10. The foam filled structural plank load bearing building foundation of claim 1 , wherein some of the plurality of structural members form a perimeter of the structural plank and others of the plurality of structural members pass across an interior intermediate section of the structural plank.

8. 8. The foam filled structural plank load bearing building foundation of claim 7, wherein all of said plurality of structural members have the same height such that all of said plurality of structural members are in direct contact with said top and bottom walls to provide load sharing and distribution through said structural planks.

9. 10. The foam filled structural plank load bearing building foundation of claim 1, wherein said structural building foam has a plurality of openings cut therein to allow electrical wiring or HVAC air conduits to pass therethrough.

10. 10. The foam filled structural plank load bearing building foundation of claim 1, wherein said plurality of structural beams are made from steel or aluminum.

11. 1. A foam filled structural plank load bearing building foundation comprising: a plurality of structural beams connected together and defining a structural plank building foundation capable of supporting a weight of a building resting directly thereon, the plurality of structural beams defining an enclosure therebetween and a perimeter therearound; a bottom wall on the enclosure, the bottom wall being connected to the plurality of structural beams; and a top wall on the enclosure, the top wall being connected to the plurality of structural beams; and structural building foam filling the enclosure, the structural building foam being poured onto a top of the bottom wall prior to the structural building foam solidifying in place, the height of the structural building foam being the same as the height of the plurality of structural beams, the structural building foam being in direct contact with the plurality of structural beams and in direct contact with the bottom wall and the top wall; a bottom laminate panel covers and is in direct contact with the bottom wall; or A top laminate panel covers and is in direct contact with the top wall. a structural building foam, an array of piers, an internal structural member of the structural plank positioned on top of the piers, an upper edge of each pier supporting a bottom edge of the bottom laminate panel of the structural plank, and the location of the internal structural member of the structural plank defining an opening through the structural plank through which the pier is received; 1. A foam filled structural plank load bearing building foundation comprising:

12. 10. The foam filled structural plank load bearing building foundation of claim 1, wherein the structural plank is a horizontally oriented building foundation capable of supporting the weight of a building thereon.

13. A method of forming a foam-filled structural plank load-bearing building foundation comprising the steps of: assembling together a plurality of structural beams to form a structural plank, said plurality of structural beams defining an enclosure therebetween and a perimeter therearound; assembling a bottom wall on the enclosure, the bottom wall being connected to the plurality of structural beams; filling the enclosure with structural building foam by pouring the foam onto the bottom wall, the height of the structural building foam being the same as the height of the plurality of structural beams; assembling a top wall over the enclosure, the structural building foam directly contacting the top wall; Mounting a bottom laminate panel onto the bottom wall; or Mounting an upper laminate panel onto the upper wall. and performing at least one of allowing the structural building foam to set prior to transporting the structural plank to a construction site; and A method comprising:

14. 14. The method of claim 13, further comprising assembling a plurality of laminate panels extending across an interior portion of the structural plank prior to filling the enclosure with the structural building foam.

15. 14. The method of claim 13, further comprising cutting an opening into the structural building foam after it solidifies within the enclosure, the opening being sized to allow electrical wiring or HVAC air to pass therethrough.

16. Each peer: a helical screw inserted into a hole in the ground, a bottom end of the helical screw extending down below a bottom of the hole in the ground; a concrete mix that fills the hole around the helical thread, thereby resulting in a concrete-covered structure that protrudes above ground level; and 12. The foam filled structural plank load bearing building foundation of claim 11, comprising:

17. Further equipped with a waterproof membrane, the structural plank is positioned directly on top of the waterproof membrane; 12. The foam filled structural plank load bearing building foundation of claim 11, wherein the waterproofing membrane is positioned directly on top of the ground.

18. 17. The foam filled structural plank load bearing building foundation of claim 16, wherein the structural plank is supported above the ground by the concrete covered structure on each of the piers.

19. 12. The foam filled structural plank load bearing building foundation of claim 11, further comprising an interior shear wall connected to said structural plank, said interior shear wall being supported by at least one of said piers positioned directly beneath said interior shear wall.

20. 12. The foam filled structural plank load bearing building foundation of claim 11, further comprising an exterior foam wall connected to said structural plank, said exterior foam wall being cantilevered in support from at least one of said piers, and a coupling mechanism used to attach said exterior foam wall connected to said structural plank being disposed within said structural plank and covered by said structural building foam.

21. 10. The foam filled structural plank load bearing building foundation of claim 1, further comprising a plurality of mechanical connectors on sides of the structural planks, the mechanical connectors allowing a plurality of structural planks to be assembled together side by side.

Citation Information

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