Claims
- 1. A process for synthesizing photo-curable poly(ethynyl)carbosilane comprising the steps of:
a. mixing dichlorosilane and trichlorosilane reagents; b. adding sub-stoichiometric amounts of alkali metal; and c. adding excess sodium acetylide.
- 2. A process for synthesizing photo-curable poly(ethynyl)carbosilane comprising the steps of:
a. mixing dichlorosilane and trichlorosilane reagents in the presence of methylene bromide; b. adding sub-stoichiometric amounts of alkali metal; and c. adding excess sodium acetylide.
- 3. A process for synthesizing photocurable poly(ethynyl) carbosilane comprising the steps of:
a. mixing dichlorosilane and trichlorosilane reagents in the presence of methylene bromide; b. adding sub-stoichiometric amounts of sodium metal; and c. adding excess sodium acetylide.
- 4. A process for synthesizing photocurable poly(ethynyl) carbosilane comprising the steps of:
a. mixing dichloromethylsilane and trichlorophenylsilane reagents in the presence of methylene bromide; b. adding sub-stoichiometric amounts of sodium metal; and c. adding excess sodium acetylide.
- 5. A process for synthesizing photocurable poly(ethynyl) carbosilane comprising the steps of:
a. mixing dichloromethylsilane and trichlorophenylsilane reagents in the presence of methylene bromide; b. adding sub-stoichiometric amounts of molten sodium metal under flowing argon gas; and c. adding excess sodium acetylide dissolved in dimethyl formamide.
- 6. A process for synthesizing photocurable poly(ethynyl) carbosilane comprising the steps of:
a. forming a dispersion of sub-stoichiometric amounts of alkali metal; b. adding dichlorosilane and trichlorosilane reagents; and c. adding excess sodium acetylide.
- 7. A process for synthesizing photocurable poly(ethynyl) carbosilane comprising the steps of:
a. forming a dispersion of sub-stoichiometric amounts of molten sodium metal in a solvent; b. adding dichlorosilane and trichlorosilane reagents; and c. adding excess sodium acetylide.
- 8. A process for synthesizing photocurable poly(ethynyl) carbosilane comprising the steps of:
a. forming a dispersion of sub-stoichiometric amounts of molten sodium metal in a solvent; b. adding dichloromethylsilane and trichlorophenylsilane reagents; and c. adding excess sodium acetylide in dimethylbromide.
- 9. A process for synthesizing photocurable poly(ethynyl) carbosilane comprising the steps of:
a. forming a dispersion of sub-stoichiometric amounts of molten sodium metal in xylene; b. adding dichloromethylsilane and trichlorophenylsilane reagents; and c. adding excess sodium acetylide in dimethylbromide.
- 10. A process for synthesizing photocurable poly(ethynyl) carbosilane comprising the steps of:
a. forming a dispersion of sub-stoichiometric amounts of molten sodium metal in xylene; b. adding dichloromethylsilane and trichlorophenylsilane reagents; c. filtrating insoluble by-products; d. evaporating xylene solvent from poly(chloro)carbosilane polymer; e. dissolving said aforementioned polymer in tetrahydro furan; and f. adding excess sodium acetylide dissolved in dimethyl bromide.
- 11. A process of forming a photo-curable pre-ceramic polymer, poly(ethynyl)-carbosilane to silicon carbide ceramic comprising the steps of:
a. reacting sodium acetylide with organo-chlorosilanes; and b. condensing (polymerizing) the resultant organo(ethynyl)chlorosilane product of step a with an excess of an alkali metal.
- 12. A process of forming a photo-curable pre-ceramic polymer, poly(ethynyl)-carbosilane to silicon carbide ceramic comprising the steps of:
a. reacting sodium acetylide with organochloro-silanes; and b. condensing (polymerizing) the resultant organo-ethynyl)chlorosilane product of step a with an excess of an alkali metal sodium.
- 13. A process of forming a photo-curable pre-ceramic polymer, poly(ethynyl)-carbosilane, to silicon carbide ceramic comprising the steps of:
a. reacting sodium acetylide with a mixture of organodichlorosilanes and organotrichlorosilanes; and b. condensing (polymerizing) the resultant organo (ethynyl)-chlorosilane product of step a with an excess of an alkali metal.
- 14. A process according to claim 1 in which the organo chlorosilane is selected from a group of one or more of the following: dichlorodimethylsilane, trichloro-phenylsilane (tri-functional), and methyltrichlorosilane.
- 15. A process of forming a photo-curable pre-ceramic polymer, poly(ethynyl)-carbosilane to silicon carbide ceramic comprising the steps of:
a. reacting a sub-stoichiometric amount of an alkali metal with organochloro-silanes; and b. reacting the partially polymerized polyorganochlorosilane with sodium acetylide.
- 16. A process of forming a photo-curable pre-ceramic polymer, poly(ethynyl)-carbosilane to silicon carbide ceramic comprising the steps of:
a. reacting a sub-stoichiometric amount of sodium metal with organochlorosilanes; and b. reacting the partially polymerized polyorganochlorosilane with sodium acetylide.
- 17. A process of forming a photo-curable pre-ceramic polymer, poly(ethynyl)carbosilane to silicon carbide ceramic comprising the steps of:
a. reacting a sub-stoichiometric amount of an alkali metal with a mixture of organodichlorosilanes and organotrichlorosilanes; and b. reacting the partially polymerized polyorganochlorosilane with sodium acetylide.
- 18. A process according to claim 5 in which the organochlorosilane is selected from a group consisiting of one or more of the following: dichlorodimethylsilane, trichlorophenylsilane (tri-functional), and methyltrichlorosilane.
- 19. A process of forming a photo-curable pre-ceramic polymer, poly(ethynyl)silazane, to silicon nitride ceramic comprising the steps of:
a. reacting sodium acetylide with organochlorosilanes; and b. condensing (polymerizing) the resultant organo(ethynyl)chlorosilane product of step a with ammonia.
- 20. A process of forming a photo-curable pre-ceramic polymer, poly(ethynyl)-silazane to silicon nitride ceramic comprising the steps of:
a. reacting sodium acetylide with organochlorosilanes; and b. condensing (polymerizing) the resultant organo(ethynyl) chlorosilane product of step a with ammonia.
- 21. The process of preparing photocurable CERASETTM SZ inorganic polymer comprising the step adding a photoinitiator to CERASETTM SZ inorganic polymer.
- 22. The process of claim 21, in which said photo-initiator is Camphorquinone.
- 23. The process of claim 21 in which said photo-initiator is IRGACURE® 1800.
- 24. The process of preparing photocurable allylhydridopolycarbosilane polymer comprising the step of adding a photo-initiator to allylhydridopolycarbosilane polymer.
- 25. The process of claim 24, in which said photo-initiator is Camphorquinone.
- 26. The process of claim 24, in which said photo-initiator is IRGACURE® 1800.
- 27. A process of forming a photo-curable pre-ceramic polymer, poly(ethynyl)silazane, to silicon nitride ceramic comprising the steps of:
a. reacting sodium acetylide with a mixture of organodichlorosilanes and organotrichlorosilanes; and b. condensing (polymerizing) the resultant organo(ethynyl)chloro-silane product of step a with ammonia.
- 28. A process according to claim 27 in which the organochlorosilane is selected from a group consisting of one or more of the following: dichlorodimethylsilane, trichlorophenylsilane (tri-functional) and methyltri chlorosilane.
- 29. A process of forming a photo-curable pre-ceramic polymer, poly(ethynyl)-silazane to silicon nitride ceramic comprising the steps of:
a. reacting a sub-stoichiometric amount of ammonia with organo-chlorosilanes; and b. reacting the partially polymerized polyorgano chlorosilazane with sodium acetylide.
- 30. A process of forming a photo-curable pre-ceramic polymer, poly(ethynyl)-silazane to silicon nitride ceramic comprising the steps of;
a. reacting a sub-stoichiometric amount of ammonia with organo-chlorosilanes; and b. reacting the partially polymerized polyorgano chlorosilazane with sodium acetylide.
- 31. A process of forming a photo-curable pre-ceramic polymer, poly(ethynyl)-silazane to silicon nitride ceramic comprising the steps of:
a. reacting a sub-stoichiometric amount of ammonia with with a mixture of organodichlorosilanes and organotrichlorosilanes; and b. reacting the partially polymerized polyorganoc hlorosilazane with sodium acetylide.
- 32. A process for fabricating a ceramic matrix composites comprising the steps of:
a. preparing a solution of thermoplastic photo-curable pre-ceramic polymer; b. passing a pre-preg through said solution of thermoplastic photo-curable pre-ceramic polymer; c. applying said pre-preg to a shaped mandrel; d. using light energy to induce cross-linking of said photo-curable pre-ceramic polymer after application to said mandrel whereby said thermoplastic pre-ceramic polymer is curved; and e. pyrolyzing said cured thermoplastic pre-ceramic polymer matrix composite material.
- 33. A single-step fabrication of continuous ceramic fiber ceramic matrix composites employing a thermoplastic photo-curable pre-ceramic polymer in which the component is shape by a variety of standard composite fabrication techniques, such as filament winding, tape winding, and woven cloth winding comprising steps of:
a. passing ceramic fiber monofilament, tow, mat, or woven cloth through a solution of said thermoplastic photo-curable pre-ceramic polymer;
aa. applying ceramic fiber monofilament, tow, mat, or woven cloth to a shaped mandrel; bb. using photo-energy of the ultraviolet, visible or infrared light spectrum to induce cross-linking (curing) of the photo-curable pre-ceramic polymer after application to said mandrel; and cc. either partially or completely pyrolyzing the now cured pre-ceramic polymer matrix composite material.
- 35. A process for synthesizing ceramic matrix composites according to claim 34 in which the pre-ceramic polymer is poly(ethynyl)carbosilane.
- 36. A process for synthesizing ceramic matrix composites according to claim 34 in which the pre-ceramic polymer yields silicon carbide upon pyrolysis.
- 37. A process for synthesizing ceramic matrix composites according to claim 34 in which the pre-ceramic polymer yields an oxide ceramic upon pyrolysis.
- 38. A process for synthesizing ceramic matrix composites according to claim 34 in which the pre-ceramic polymer yields titanium carbide upon pyrolysis.
- 39. A process for synthesizing ceramic matrix composites according to claim 34 in which the pre-ceramic polymer yields aluminum nitride upon pyrolysis.
- 40. A process for synthesizing ceramic matrix composites according to claim 34 in which the pre-ceramic polymer yields silicon nitride upon pyrolysis.
- 41. A process for synthesizing ceramic matrix composites according to claim 34 in which the pre-ceramic polymer yields aluminum oxide upon pyrolysis.
- 42. Single-step fabrication of continuous ceramic fiber ceramic matrix composites employing a thermoplastic photo-curable pre-ceramic polymer in which the component is shape by a variety of standard composite fabrication techniques, such as filament winding, tape winding, and woven cloth winding under inert atmosphere comprising steps of:
a. passing ceramic fiber monofilament, tow, mat, or woven cloth through a solution of said thermoplastic photo-curable pre-ceramic polymer; b. applying ceramic fiber monofilament, tow, mat, or woven cloth to a shaped rotating mandrel; c. use of a heated or unheated compaction roller to press the thermoplastic pre-ceramic polymer onto the mandrel; d. using ultraviolet, visible, or infrared light to induce cross-linking (curing) of the photo-curable pre-ceramic polymer thereby rendering a thermoset polymer; e. either partially or completely pyrolyzing the now cured pre-ceramic polymer matrix material; and f. followed by the final heat treatment of the shaped ceramic matrix composite “brown body”.
- 43. A process for synthesizing ceramic matrix composites according to claim 42 in which the pre-ceramic polymer is poly(ethynyl)carbosilane.
- 44. A process for synthesizing ceramic matrix composites according to claim 42 in which the pre-ceramic polymer yields an oxide ceramic upon pyrolysis.
- 45. A process for synthesizing ceramic matrix composites according to claim 42 in which the pre-ceramic polymer yields silicon nitride upon pyrolysis.
- 46. A process for synthesizing ceramic matrix composites according to claim 42 in which the pre-ceramic polymer yields titanium carbide upon pyrolysis.
- 47. A process for synthesizing ceramic matrix composites according to claim 42 in which the pre-ceramic polymer yields aluminum nitride upon pyrolysis.
- 48. A process for synthesizing ceramic matrix composites according to claim 42 in which the pre-ceramic polymer yields silicon carbide upon pyrolysis.
- 49. A process for synthesizing ceramic matrix composites according to claim 42 in which the pre-ceramic polymer yields aluminum oxide upon pyrolysis.
- 50. Single-step fabrication of continuous ceramic fiber ceramic matrix composites employing a thermoplastic photo-curable pre-ceramic polymer in which the component is shape by a variety of standard composite fabrication techniques, such as filament winding, tape winding, and woven cloth winding, comprising steps of:
a. passing ceramic fiber monofilament, tow, mat, or woven cloth through a solution of said thermoplastic photo-curable pre-ceramic polymer; b. applying ceramic fiber monofilament, tow, mat, or woven cloth to a moving flat substrate; c. using a compaction roller to press the thermo plastic pre-ceramic polymer coated ceramic fiber onto flat substrate; d. using photo-light of the ultraviolet, visible, or infrared light spectrum to induce cross-linking curing) of the photo-curable pre-ceramic polymer thereby rendering a thermoset polymer; and e. either partially or completely pyrolyzing the now cured pre-ceramic polymer matrix coated ceramic fiber material.
- 51. A process for synthesizing ceramic matrix composites according to claim 50 in which the pre-ceramic polymer is poly(ethynyl)carbosilane.
- 52. A process for synthesizing ceramic matrix composites according to claim 50 in which the pre-ceramic polymer yields an oxide ceramic upon pyrolysis.
- 53. A process for synthesizing ceramic matrix composites according to claim 50 in which the pre-ceramic polymer yields silicon nitride upon pyrolysis.
- 54. A process for synthesizing ceramic matrix composites according to claim 50 in which the pre-ceramic polymer yields titanium carbide upon pyrolysis.
- 55. A process for synthesizing ceramic matrix composites according to claim 50 in which the pre-ceramic polymer yields aluminum nitride upon pyrolysis.
- 56. A process for synthesizing ceramic matrix composites according to claim 50 in which the pre-ceramic polymer yields silicon carbide upon pyrolysis.
- 57. A process for synthesizing ceramic matrix composites according to claim 50 in which the pre-ceramic polymer yields aluminum oxide upon pyrolysis.
Parent Case Info
[0001] This application is a continuation-in-part of an application filed Jun. 3, 1999 under Ser. No. 09/325,524 and is also a continuation-in-part of the application filed Oct. 6, 2000 which is a continuation-in-part of an application filed Jun. 3, 1999 under Ser. No. 09/325,524.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09325524 |
Jun 1999 |
US |
Child |
09782945 |
Feb 2001 |
US |