Patent · US2012283384A1 · A1 · US
Non-Porous Thermoformable Polyurethane Solid
- (11) Publication number
- US2012283384A1
- (21) Application number
- 13/101,410
- (22) Filing date
- 2011-05-05
- (30) Priority date
- 2011-05-05
- (43) Publication date
- 2012-11-08
- (52) CPC
- C08G Macromolecular compounds obtained otherwise than by reactions only involving unsaturated carbon-to-carbon bonds: 18/36
- B29C Shaping or joining of plastics; shaping of material in a plastic state, not otherwise provided for; after-treatment of the shaped products, e.g. repairing: 39/003, 45/00, 45/0001, 45/0013
- B29K Indexing scheme associated with subclasses B29B, B29C or B29D, relating to moulding materials or to materials for {moulds, } reinforcements, fillers or preformed parts, e.g. inserts: 2075/00
- C08K Use of inorganic or non-macromolecular organic substances as compounding ingredients: 2003/2227, 3/22
- C08L Compositions of macromolecular compounds: 75/04
- (73) Assignee
- COX TIMOTHY LEE; SURFACES LLC ETS
- (54) Title
- Non-Porous Thermoformable Polyurethane Solid
- (57) Abstract
The subject disclosure presents systems and methods for manufacturing a non-porous thermoformable polyurethane solid by combining an uncured polyurethane resin with Aluminum Trihydrate (ATH), a plurality of particulates, molecular sieves, and color particulates. This combination is mixed in a vacuum for a time period sufficient to initiate an exothermic reaction within the mixture. After the time period, the exothermically reacting mixture is allowed to cure to form the polyurethane solid. The curing may occur in a mold, i.e. by pouring or injecting the mixture into the mold. Alternatively, the mixture may be sprayed on to a surface and allowed to cure.
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Claims (1)
- A thermoformable, non-porous, polyurethane material, comprising: a plurality of isocyanates; a plurality of polyols; alumina trihydrate (ATH); a plurality of particulates; and a plurality of molecular sieves; wherein the plurality of isocyanates, the plurality of polyols, the ATH, the plurality of particulates, and the plurality of molecular sieves are mixed in a vacuum mixer to form a mixture, wherein a duration of mixing and a vacuum level of the vacuum mixer are sufficient to induce an exothermic polymerization reaction, and wherein the mixture is formed into a composite material after said duration of mixing. 2. The thermoformable, non-porous, polyurethane material of claim 1, wherein the plurality of isocyanates and the plurality of polyols together constitute between 20-70% of a total content of the mixture, wherein the ATH constitutes between 15-30% of the total content of the mixture, wherein the plurality of particulates constitutes between 5-50% of the total content of the mixture, and wherein the plurality of molecular sieves constitutes between 2-10% of the total content of the mixture. 3. The thermoformable, non-porous, polyurethane material of claim 2, further comprising a plurality of color particulates that constitute between 1 and 15% of the mixture, wherein the plurality of particulates includes cast particulates for special effects. 4. The thermoformable, non-porous, polyurethane material of claim 1, wherein the duration of mixing is between 15 and 18 minutes, and wherein the vacuum level is between 15 and 20 inches of mercury. 5. The thermoformable, non-porous, polyurethane material of claim 1, wherein a temperature of the exothermic polymerization reaction is maintained at no greater than 10 degrees F. over an ambient temperature. 6. The thermoformable, non-porous, polyurethane material of claim 1, wherein the mixture is formed into the composite material by pouring or injecting into a mold and allowing curing. 7. The thermoformable, non-porous, polyurethane material of claim 1, wherein the mixture is formed into the composite material by spraying the mixture onto a surface. 8. The thermoformable, non-porous, polyurethane material of claim 1, wherein the composite material is thermoformed to a desired shape after being cured. 9. The thermoformable, non-porous, polyurethane material of claim 1, wherein the polyol is a natural oil polyol. 10. The thermoformable, non-porous, polyurethane material of claim 1, wherein a resin formed by the isocyanates and the polyols has a viscosity of approximately 900 centipoise and a gel time of approximately 30 minutes. 11. The thermoformable, non-porous, polyurethane material of claim 1, wherein the plurality of particulates includes powdered recycled clear glass. 12. The thermoformable, non-porous, polyurethane material of claim 11, wherein the plurality of particulates constitutes up to 65% of the total content of the mixture. 13. The thermoformable, non-porous, polyurethane material of claim 1, wherein the vacuum mixer includes a thermometer to measure the temperature of the exothermically reacting mixture. 14. A method for manufacturing a thermoformable, non-porous, polyurethane material, the method comprising: combining a plurality of isocyanates, a plurality of polyols, alumina tri-hydrate, a plurality of particulates, and a plurality of molecular sieves to form a mixture; mixing the mixture under a vacuum, wherein the mixing occurs for a time period sufficient to create an exothermically reacting mixture; and forming a composite material using the exothermically reacting mixture. 15. The method of claim 14, wherein the forming the composite material further comprises curing the exothermically reacting mixture for a curing period. 16. The method of claim 15, wherein the forming the composite material further comprises one or more of pouring the exothermically reacting mixture into a mold, injecting the exothermically reacting mixture into a mold, or spraying the exothermically reacting mixture on to a surface. 17. The method of claim 14, wherein the plurality of isocyanates and the plurality of polyols together constitute between 20-70% of a total content of the mixture, wherein the ATH constitutes between 15-30% of the total content of the mixture, wherein the plurality of particulates constitutes between 5-50% of the total content of the mixture, and wherein the plurality of molecular sieves constitute between 2-10% of the total content of the mixture 18. The method of claim 17, further comprising coloring the composite material by adding a plurality of color particulates that constitute between 1-15% of the mixture before mixing under vacuum. 19. The method of claim 14, further comprising maintaining a temperature of the exothermically reacting mixture to no greater than 10 degrees F. over an ambient temperature.
Citations (8)
- EP1964866A2
- JP2005002297A
- US2009098302A1
- US2009203809A1
- US2009275249A1
- US4107256A
- US4145515A
- US4546120A
Record as JSON
{
"publication_number": "US2012283384A1",
"country": "US",
"kind": "A1",
"title": "Non-Porous Thermoformable Polyurethane Solid",
"abstract": "The subject disclosure presents systems and methods for manufacturing a non-porous thermoformable polyurethane solid by combining an uncured polyurethane resin with Aluminum Trihydrate (ATH), a plurality of particulates, molecular sieves, and color particulates. This combination is mixed in a vacuum for a time period sufficient to initiate an exothermic reaction within the mixture. After the time period, the exothermically reacting mixture is allowed to cure to form the polyurethane solid. The curing may occur in a mold, i.e. by pouring or injecting the mixture into the mold. Alternatively, the mixture may be sprayed on to a surface and allowed to cure.",
"claims": [
"1. A thermoformable, non-porous, polyurethane material, comprising: a plurality of isocyanates; a plurality of polyols; alumina trihydrate (ATH); a plurality of particulates; and a plurality of molecular sieves; wherein the plurality of isocyanates, the plurality of polyols, the ATH, the plurality of particulates, and the plurality of molecular sieves are mixed in a vacuum mixer to form a mixture, wherein a duration of mixing and a vacuum level of the vacuum mixer are sufficient to induce an exothermic polymerization reaction, and wherein the mixture is formed into a composite material after said duration of mixing. 2. The thermoformable, non-porous, polyurethane material of claim 1, wherein the plurality of isocyanates and the plurality of polyols together constitute between 20-70% of a total content of the mixture, wherein the ATH constitutes between 15-30% of the total content of the mixture, wherein the plurality of particulates constitutes between 5-50% of the total content of the mixture, and wherein the plurality of molecular sieves constitutes between 2-10% of the total content of the mixture. 3. The thermoformable, non-porous, polyurethane material of claim 2, further comprising a plurality of color particulates that constitute between 1 and 15% of the mixture, wherein the plurality of particulates includes cast particulates for special effects. 4. The thermoformable, non-porous, polyurethane material of claim 1, wherein the duration of mixing is between 15 and 18 minutes, and wherein the vacuum level is between 15 and 20 inches of mercury. 5. The thermoformable, non-porous, polyurethane material of claim 1, wherein a temperature of the exothermic polymerization reaction is maintained at no greater than 10 degrees F. over an ambient temperature. 6. The thermoformable, non-porous, polyurethane material of claim 1, wherein the mixture is formed into the composite material by pouring or injecting into a mold and allowing curing. 7. The thermoformable, non-porous, polyurethane material of claim 1, wherein the mixture is formed into the composite material by spraying the mixture onto a surface. 8. The thermoformable, non-porous, polyurethane material of claim 1, wherein the composite material is thermoformed to a desired shape after being cured. 9. The thermoformable, non-porous, polyurethane material of claim 1, wherein the polyol is a natural oil polyol. 10. The thermoformable, non-porous, polyurethane material of claim 1, wherein a resin formed by the isocyanates and the polyols has a viscosity of approximately 900 centipoise and a gel time of approximately 30 minutes. 11. The thermoformable, non-porous, polyurethane material of claim 1, wherein the plurality of particulates includes powdered recycled clear glass. 12. The thermoformable, non-porous, polyurethane material of claim 11, wherein the plurality of particulates constitutes up to 65% of the total content of the mixture. 13. The thermoformable, non-porous, polyurethane material of claim 1, wherein the vacuum mixer includes a thermometer to measure the temperature of the exothermically reacting mixture. 14. A method for manufacturing a thermoformable, non-porous, polyurethane material, the method comprising: combining a plurality of isocyanates, a plurality of polyols, alumina tri-hydrate, a plurality of particulates, and a plurality of molecular sieves to form a mixture; mixing the mixture under a vacuum, wherein the mixing occurs for a time period sufficient to create an exothermically reacting mixture; and forming a composite material using the exothermically reacting mixture. 15. The method of claim 14, wherein the forming the composite material further comprises curing the exothermically reacting mixture for a curing period. 16. The method of claim 15, wherein the forming the composite material further comprises one or more of pouring the exothermically reacting mixture into a mold, injecting the exothermically reacting mixture into a mold, or spraying the exothermically reacting mixture on to a surface. 17. The method of claim 14, wherein the plurality of isocyanates and the plurality of polyols together constitute between 20-70% of a total content of the mixture, wherein the ATH constitutes between 15-30% of the total content of the mixture, wherein the plurality of particulates constitutes between 5-50% of the total content of the mixture, and wherein the plurality of molecular sieves constitute between 2-10% of the total content of the mixture 18. The method of claim 17, further comprising coloring the composite material by adding a plurality of color particulates that constitute between 1-15% of the mixture before mixing under vacuum. 19. The method of claim 14, further comprising maintaining a temperature of the exothermically reacting mixture to no greater than 10 degrees F. over an ambient temperature."
],
"cpc": [
"C08G 18/36",
"B29C 39/003",
"B29C 45/00",
"B29C 45/0001",
"B29C 45/0013",
"B29K 2075/00",
"C08K 2003/2227",
"C08K 3/22",
"C08L 75/04"
],
"assignees": [
"COX TIMOTHY LEE",
"SURFACES LLC ETS"
],
"filing_date": "2011-05-05",
"publication_date": "2012-11-08",
"priority_date": "2011-05-05",
"application_number": "US-201113101410-A",
"family_id": "47090657",
"citations": [
"EP1964866A2",
"JP2005002297A",
"US2009098302A1",
"US2009203809A1",
"US2009275249A1",
"US4107256A",
"US4145515A",
"US4546120A"
]
}
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