Claims
- 1) A process for preparing alkali silicate-polyisocyanate composites comprising the steps of:
a) mixing a catalyst with a polyisocyanate to form a first component, wherein said first component has a pH of at least 7.5; b) mixing an alkali silicate with water to form a second component; and c) mixing the first and second component to form a reactive mixture that reacts to form a hardened composite, wherein the catalyst comprises 2,2′-dimorpholinodiethylether.
- 2) The process of claim 1, wherein the alkali silicate comprises sodium silicate.
- 3) The process of claim 2, wherein the ratio of silicon to sodium present in the alkali silicate component is from about 1.6:1 to about 3.32:1 on a weight basis.
- 4) The process of claim 2, wherein the ratio of silicon to sodium present in the alkali silicate component is from about 2.0 to about 3.0 on a weight basis.
- 5) The process of claim 1, wherein the polyisocyanate comprises a polymeric diphenylmethane diisocyanate with a functionality greater than two.
- 6) The process of claim 1, wherein the exotherm for the reactive mixture is less than 100° C.
- 7) A process for preparing alkali silicate-polyisocyanate composites comprising the steps of:
a) mixing a catalyst with a polyisocyanate to form a first component, wherein said first component has a pH of at least 7.5; b) mixing an alkali silicate with water to form a second component; and c) mixing the first and second component to form a reactive mixture that reacts to form a hardened composite, wherein said reactive mixture and said hardened composite are homogeneous, and wherein the catalyst comprises 2,2′-dimorpholinodiethylether.
- 8) The process of claim 7, wherein the alkali silicate comprises sodium silicate.
- 9) The process of claim 8, wherein the ratio of silicon to sodium present in the alkali silicate component is from about 1.6:1 to about 3.32:1 on a weight basis.
- 10) The process of claim 8, wherein the ratio of silicon to sodium present in the alkali silicate component is from about 2.0 to about 3.0 on a weight basis.
- 11) The process of claim 7, wherein the polyisocyanate comprises a polymeric diphenylmethane diisocyanate with a functionality greater than two.
- 12) The process of claim 7, wherein the exotherm for the reactive mixture is less than 100° C.
- 13) A process for consolidating, filling, or sealing various void volumes, which may include cracks, holes, crevasses, fissures, caves, and the like comprising the steps of:
a) mixing a catalyst with a polyisocyanate to form a first component, wherein said first component has a pH of at least 7.5; b) mixing an alkali silicate with water to form a second component; c) mixing the first and second component to form a reactive mixture; and d) introducing the reactive mixture into at least one of said void volumes, and allowing the reactive mixture to react to form a hardened composite, wherein the catalyst comprises 2,2′-dimorpholinodiethylether.
- 14) The process of claim 13, wherein the alkali silicate comprises sodium silicate.
- 15) The process of claim 14, wherein the ratio of silicon to sodium present in the alkali silicate component is from about 1.6:1 to about 3.32:1 on a weight basis.
- 16) The process of claim 14, wherein the ratio of silicon to sodium present in the alkali silicate component is from about 2.0 to about 3.0 on a weight basis.
- 17) The process of claim 13, wherein the polyisocyanate comprises a polymeric diphenylmethane diisocyanate with a functionality greater than two.
- 18) The process of claim 13, wherein the exotherm for the reactive mixture is less than 100° C.
- 19) An alkali silicate-polyisocyanate composite that is prepared by:
a) mixing a catalyst with a polyisocyanate to form a first component, wherein said first component has a pH of at least 7.5; b) mixing an alkali silicate with water to form a second component; and c) mixing the first and second component to form a reactive mixture that reacts to form a hardened composite, wherein the catalyst comprises 2,2′-dimorpholinodiethylether.
- 20) The composite of claim 19, wherein the alkali silicate comprises sodium silicate.
- 21) The process of claim 20, wherein the ratio of silicon to sodium present in the alkali silicate component is from about 1.6:1 to about 3.32:1 on a weight basis.
- 22) The process of claim 20, wherein the ratio of silicon to sodium present in the alkali silicate component is from about 2.0 to about 3.0 on a weight basis.
- 23) The composite of claim 19, wherein the polyisocyanate comprises a polymeric diphenylmethane diisocyanate with a functionality greater than two.
- 24) The composite of claim 19, wherein the exotherm for the reactive mixture is less than 100° C.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This Application is a continuation-in-part of U.S. application Ser. No. 09/640,224 which was filed on Aug. 16, 2000 and is currently still pending, the entire contents of which are herein incorporated by reference thereto.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09640224 |
Aug 2000 |
US |
Child |
10015064 |
Dec 2001 |
US |