Composite material including rigid foam with inorganic fillers
Abstract
A composite material includes, in an exemplary embodiment a polyurethane foam and a plurality of inorganic particles dispersed therein. The polyurethane foam is formed from a reaction mixture that includes a first polyether polyol having a first molecular weight and a functionality of about 3 or less, a second polyether polyol having a second molecular weight less than the first molecular weight and a functionality of greater than about 3, and at least one isocyanate. The ratio of an amount of the first polyol in the reaction mixture to an amount of the second polyol in the reaction mixture is between about 1:1 to about 5:1.
Claims
exact text as granted — not AI-modified1 - 25 . (canceled)
26 . A synthetic lumber article comprising a composite material, the composite material comprising a polyurethane foam and a plurality of inorganic filler particles, wherein:
the polyurethane foam is formed from at least one polyisocyanate, a first polyether polyol having a first molecular weight and a functionality of about 3 or less, and a second polyether polyol having a second molecular weight and a functionality of about 3 or greater, wherein the second molecular weight of the second polyether polyol is less than the first molecular weight of the first polyether polyol, and a wt % ratio of the first polyether polyol to the second polyether polyol ranges from about 1:1 to about 5:1; the plurality of inorganic filler particles is present in an amount of about 50 wt % to about 85 wt % based on the total weight of the composite material, the inorganic filler particles including fly ash and glass fibers; the composite material has a density in a range from about 30 lbs/ft 3 to about 52.1 lbs/ft 3 ; and the composite material comprises an aromatic hydrocarbon in an amount of upto 5 wt % based on the total weight of the composite material.
27 . The synthetic lumber article of claim 26 , wherein an average flex stress of the synthetic lumber article is at least 2330 psi.
28 . The synthetic lumber article of claim 26 , wherein a flex modulus of the synthetic lumber article is at least 543 Kpsi.
29 . The synthetic lumber article of claim 26 , wherein the glass fibers are present in an amount of 1 wt % to about 15 wt % based on the total weight of the composite material.
30 . The synthetic lumber article of claim 26 , wherein the reaction mixture further comprises a first catalyst comprising an amine compound, and a second catalyst comprising an organometallic compound.
31 . The synthetic lumber article of claim 29 , wherein the first catalyst comprises a tertiary amine, and the second catalyst comprises an organotin compound.
32 . The synthetic lumber article of claim 26 , wherein the amount of aromatic hydrocarbon ranges from at least 0.59 wt % to 5 wt % based on the total weight of the composite material.
33 . The synthetic lumber article of claim 31 , wherein the amount of aromatic hydrocarbon ranges from at least 0.75 wt % to 5 wt %.
34 . The synthetic lumber article of claim 26 , wherein the inorganic particles further comprise at least one of a bottom ash, fine sand, ceramic particles, glass particles, graphite fibers, carbon fibers, ceramic fibers, vermiculite fibers, basalt fibers, vallostonite fibers, or any combination thereof.
35 . The synthetic lumber article of claim 26 , adapted for use as a railroad tie, a roof shingle, a siding for homes, a fence post, a window frame, a door frame, or a replacement for ceramic and concrete building materials.
36 . A method of producing a synthetic lumber article, comprising:
mixing a first polyether polyol having a first molecular weight and a functionality of about 3 or less with a second polyether polyol having a second molecular weight and a functionality of about 3 or greater to form a polyol mixture, wherein a ratio of an amount of the first polyol in the mixture to an amount of the second polyol in the mixture is between about 1:1 to about 5:1, and the second molecular weight is less than the first molecular weight; adding up to about 5 weight percent based on the total weight of the composite material of an aromatic hydrocarbon; adding an amount of about 50 wt % to about 85 wt % of the plurality of inorganic particles to the mixture, the plurality of inorganic particles include fly ash and glass fibers, adding at least one polyisocyanate to the polyol mixture; and extruding the mixture into a mold to form a composite material having a density from about 30 lbs/ft 3 to about 52.1 lbs/ft 3 .
37 . The method of claim 36 , wherein an average flex stress of the synthetic lumber article is at least 2330 psi.
38 . The method of claim 36 , wherein a flex modulus of the synthetic lumber article is at least 543 Kpsi.
39 . The method of claim 36 , wherein the amount of aromatic hydrocarbon ranges from at least 0.59 wt % to 5 wt % based on the total weight of the composite material.
40 . The method of claim 39 , wherein the amount of aromatic hydrocarbon ranges from at least 0.75 wt % to 5 wt %.
41 . The method of claim 36 , wherein the glass fibers are present in an amount of 1 wt % to about 15 wt % based on the total weight of the composite material.
42 . The method of claim 36 , wherein the reaction mixture further comprises a blowing agent.
43 . The method of claim 42 , wherein the blowing agent comprises water.
44 . The method of claim 36 wherein the reaction mixture further comprises a first catalyst comprising an amine compound, and a second catalyst comprising an organometallic compound.
45 . The method of claim 36 , wherein the inorganic particles further comprise at least one of a bottom ash, fine sand, ceramic particles, glass particles, graphite fibers, carbon fibers, ceramic fibers, vermiculite fibers, basalt fibers, vallostonite fibers, or any combination thereof.Join the waitlist — get patent alerts
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