Claims
- 1. A neutral, room temperature condensation curable, fluorosilicone sealant composition comprising:
(A) a silanol terminated fluoroalkyl substituted polydiorganosiloxane, (B) an oligomeric fluorosilicone crosslinker, (C) filler, and (D) an effective amount of a condensation catalyst,
- 2. The sealant composition in accordance with claim 1, where the polydiorganosiloxane is present at about 100 parts by weight of the sealant composition.
- 3. The sealant composition in accordance with claim 1, where the polydiorganosiloxane comprises organofluorosiloxy units of the formula
- 4. The sealant composition in accordance with claim 3, where the polydiorganosiloxane comprises [trifluoropropyl(methyl)siloxy] units.
- 5. The sealant composition in accordance with claim 1, wherein the crosslinker comprises the formula
- 6. The sealant composition in accordance with claim 5, where the crosslinker comprises a dimethoxymethylsilyl terminated methyltrifluoropropylsiloxane fluid.
- 7. The sealant composition in accordance with claim 5, where the crosslinker is present in a range between about 1 part and about 20 parts by weight per 100 parts of the silanol terminated fluoroalkyl substituted polydiorganosiloxane.
- 8. The sealant composition in accordance with claim 1, where the condensation catalyst comprises an organometallic compound.
- 9. The sealant composition in accordance with claim 8, where the organometallic compound comprises dibutyltin diacetate, dimethyltin neodecanoate, dibutyltin dilaurate, stannous octoate, dimethyltin hydroxyoleate, or combinations thereof.
- 10. The sealant composition in accordance with claim 9, where the organometallic compound comprises dibutyltin diacetate.
- 11. The sealant composition in accordance with claim 1, where the condensation catalyst is present in a range between about 0.1 parts and about 5.0 parts by weight per 100 parts of the of sealant composition.
- 12. The sealant composition in accordance with claim 11, where the condensation catalyst is present in a range between about 0.1 parts and about 1.0 parts by weight per 100 parts of the sealant composition.
- 13. The sealant composition in accordance with claim 1, where the filler comprises fumed silica.
- 14. The sealant in accordance with claim 1, where the filler is present in a range between about 0 parts and 30 parts by weight per 100 parts of the silanol terminated fluoroalkyl substituted polydiorganosiloxane.
- 15. The sealant in accordance with claim 14, where the filler is present in a range between about 5 parts and about 15 parts by weight per 100 parts of the silanol terminated fluoroalkyl substituted polydiorganosiloxane.
- 16. The sealant composition in accordance with claim 1, where the composition further comprises a heat stabilizer.
- 17. The sealant composition in accordance with claim 16, where the heat stabilizer comprises iron oxide, ceric oxide, titanium dioxide, or combinations thereof.
- 18. The sealant composition in accordance with claim 17, where the heat stabilizer comprises iron oxide.
- 19. The sealant composition in accordance with claim 1, where the heat stabilizer is present in a range between about 0.1 parts and about 10 parts by weight per 100 parts of the silanol terminated fluoroalkyl substituted polydiorganosiloxane.
- 20. A neutral, room temperature condensation curable, fluorosilicone sealant composition comprising by weight:
(A) a silanol terminated fluoroalkyl substituted polydiorganosiloxane which comprises [trifluoropropyl(methyl)siloxy] units present at about 100 parts by weight of the sealant composition, (B) a diethoxymethylsilyl terminated methyltrifluoropropylsiloxane present in a range between about 1 part and about 20 parts by weight per 100 parts of the silanol terminated fluoroalkyl substituted polydiorganosiloxane, (C) fumed silica filler in a range between about 5 parts and about 15 parts by weight per 100 parts of the silanol terminated fluoroalkyl substituted polydiorganosiloxane, and (D) dibutyltin diacetate in a range between about 0.1 parts and about 1 parts by weight per 100 parts of the silanol terminated fluoroalkyl substituted polydiorganosiloxane.
- 21. An oligomeric fluorosilicone crosslinker which comprises the formula,
- 22. A polyalkoxysilyl terminated oligomeric fluorosilicone crosslinker comprising in a range between about 3 and about 30 chemically combined [trifluoropropyl(methyl)silyloxy] units.
- 23. A dialkoxyalkylsilyl terminated oligomeric fluorosilicone in accordance with claim 22.
- 24. A polyethoxysilyl terminated oligomeric fluorosilicone in accordance with claim 22.
- 25. A polymethoxysilyl terminated oligomeric fluorosilicone in accordance with claim 22.
- 26. A method for making an oligomeric fluorosilicone crosslinker having terminal polyalkoxysilyl units which comprises effecting reaction between a silanol terminated fluoroalkyl substituted polydiorganosiloxane and a polyalkoxysilane in the presence of an effective amount of a Platinum Group Metal catalyst.
- 27. The method in accordance with claim 26, where there is used in a range between about 2 moles and about 10 moles of polyalkoxysilane, per mole of silanol terminated fluoroalkyl substituted polydiorganosiloxane.
- 28. The method in accordance with claim 26, where the reaction occurs at a temperature in a range between about −10° C. and about 150° C.
- 29. The method in accordance with claim 28, where the reaction occurs at a temperature in a range between about 10° C. and about 40° C.
- 30. The method in accordance with claim 26, where the Platinum Group Metal catalyst is present in a range between about 10 parts per million and about 103 parts per million per part of reaction mixture.
- 31. The method in accordance with claim 26, where the silanol terminated fluoroalkyl substituted polydiorganosiloxane comprises the formula,
- 32. The method in accordance with claim 31, where the silanol terminated fluoroalkyl substituted polydiorganosiloxane comprises chemically combined [trifluoropropyl(methyl)silyloxy] units.
- 33. The method in accordance with claim 26, where the polyalkoxysilane comprises the formula,
- 34. The method in accordance with claim 33, where the polyalkoxysilane comprises triethoxysilane, trimethoxysilane, methyldiethoxysilane, methyldimethoxysilane, or combinations thereof.
- 35. A method for making a triethoxysilyl terminated poly(methyltrifluoropropyl)siloxane comprising effecting reaction between a silanol terminated (methyltrifluoropropyl)siloxane and triethoxysilane in the presence of an effective amount of a Platinum Group Metal catalyst.
- 36. A method for making a trimethoxysilyl terminated poly(methyltrifluoropropyl)siloxane comprising effecting reaction between a silanol terminated (methyltrifluoropropyl)siloxane and trimethoxysilane in the presence of an effective amount of a Platinum Group Metal catalyst.
- 37. A method for making a methyldiethoxysilyl terminated poly(methyltrifluoropropyl)siloxane comprising effecting reaction between a silanol terminated (methyltrifluoropropyl)siloxane and methyldiethoxysilane in the presence of an effective amount of a Platinum Group Metal catalyst.
- 38. A method for making a methyldimethoxysilyl terminated poly(methyltrifluoropropyl)siloxane comprising effecting reaction between a silanol terminated (methyltrifluoropropyl)siloxane and methyldimethoxysilane in the presence of an effective amount of a Platinum Group Metal catalyst.
Government Interests
[0001] The present invention is based on work sponsored under NASA's High Speed Research Contract NASI 20220, with Boeing under subcontract ZA0073 Task 22, Subtask 4.2.2.4.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09627911 |
Jul 2000 |
US |
Child |
10226837 |
Aug 2002 |
US |