Claims
- 1. An insulative material comprising:
a porous substrate formed of sintered ceramic fibers,
wherein said ceramic fibers comprise about 60 wt % to about 80 wt % silica fibers; about 20 wt % to about 40 wt % alumina fibers; and about 0.1 wt % to about 1.0 wt % boron-containing constituent; and a nanoporous material impregnated within said porous substrate material.
- 2. Prior to impregnating the nanoporous material, the substrate material has density ranging from 6 to 20 lb/ft3.
- 3. After impregnation, the hybrid insulation has density ranging from 8 to 25 lbf/t3.
- 4. The material of claim 1, wherein said ceramic fibers comprise
about 65 wt % to about 75 wt % silica fibers; about 25 wt % to about 35 wt % alumina fibers; and about 0.1 wt % to about 0.5 wt % boron-containing powders.
- 5. The material of claim 1, wherein the material is in the form of a tile having a thickness defined by a first surface and a second surface which opposes said first surface.
- 6. The material of claim 1, wherein the physical arrangement of the ceramic fibers is substantially ordered and substantially parallel to the plane of at least one of said first and second surfaces of the tile.
- 7. The material of claim 1, wherein said first surface and said second surface are coplanar.
- 8. The material of claim 6, wherein the physical arrangement of the ceramic fibers is substantially ordered and substantially coplanar with said first surface of the tile.
- 9. The material of claim 1, wherein the ceramic fibers are chopped.
- 10. The material of claim 8, wherein the chopped fibers have an average length between about 200 micron and about 500 micron.
- 11. The material of claim 8, wherein the chopped fibers have an average diameter of between about 2 μm and about 5 μm.
- 12. The material of claim 10, wherein the chopped fibers have an average diameter of about 3.0 μm.
- 13. The material of claim 1, wherein the nanoporous material is a silica based aerogel material.
- 14. The material of claim 1, wherein the silica aerogel material has a porosity of greater than 60%.
- 15. The material of claim 14, wherein the silica aerogel material has a density between about 1.0 and about 10.0 lbs/ft3.
- 16. The material of claim 14, wherein the silica aerogel material has a density of between about 5.0 lbs/ft3 and about 6.0 lbs/ft3.
- 17. The material of claim 1, wherein the aerogel material is a silica based aerogel material and the tile is either fully or partially impregnated with aerogel.
- 18. The material of claim 1, wherein the aerogel material is a silica based aerogel material and the tile is impregnated with aerogel from the first surface of the tile through a portion of the thickness of the tile.
- 19. The material of claim 17, wherein the second surface of the tile is coated with reaction cured glass (RCG) and TUFI.
- 20. The material of claim 17, wherein the impregnated tile has a density of between about 8 and about 25 lbs/ft3.
- 21. The material of claim 1, wherein the aerogel material is a alumina based aerogel material.
- 22. The material of claim 21, wherein the alumina aerogel material has a porosity of greater than 60%.
- 23. The material of claim 21, wherein the alumina aerogel material has a density between about 1.0 and about 10 lbs/ft3.
- 24. The material of claim 1, wherein the aerogel material is an alumina based aerogel material and the tile is either partially or fully impregnated with aerogel.
- 25. The material of claim 24, wherein the aerogel material is an alumina based aerogel and one of said second surfaces of the tile is coated with reaction cured glass (RCG) and TUFI.
- 26. The material of claim 23, wherein the impregnated tile has a density of between about 8 and about 25 lbs/ft3.
- 27. The material of claim 1, wherein said ceramic fibers comprise
about 67 wt % silica fibers; about 32.75 wt % alumina fibers; and about 0.25 wt % boron carbide fibers.
- 28. The material of claim 27, wherein the material is in the form of a tile having a thickness defined by a first surface and a second surface which opposes said first surface.
- 29. The material of claim 28, wherein the physical arrangement of the ceramic fibers is substantially ordered and substantially parallel to the plane of at least one of said first and second surfaces of the tile.
- 30. The material of claim 28, wherein said first surface and said second surface are coplanar.
- 31. The material of claim 28, wherein the physical arrangement of the ceramic fibers is substantially ordered and substantially coplanar with said first surface of the tile.
- 32. The material of claim 27, wherein the ceramic fibers are chopped.
- 33. The material of claim 32, wherein the chopped fibers have an average length between about 200 micron to about 500 micron.
- 34. The material of claim 32, wherein the chopped fibers have an average diameter of between about 2 μm and about 5 μm.
- 35. The material of claim 34, wherein the chopped fibers have an average diameter of about 3.0 μm.
- 36. The material of claim 27, wherein the aerogel material is a silica based aerogel material.
- 37. The material of claim 36, wherein the silica aerogel material has a porosity of greater than 60%.
- 38. The material of claim 37, wherein the silica aerogel material has a density between about 1.0 and about 10 lbs/ft3.
- 39. The method of claim 1, wherein the step of impregnating the substrate comprises impregnating the substrate with a silica based aerogel.
- 40. The method of claim 39, further comprising the step of forming an aerogel precursor prior to impregnating the substrate.
- 41. The method of claim 40, wherein forming the precursor comprises mixing an alkoxysilane, an alcohol, water, and at least one of an acid and base catalyst.
- 42. The method of claim 41, wherein the alkoxysilane is tetra-methoxy silane (TMOS) and wherein the alcohol is methanol.
- 43. The method of claim 1, wherein the step of impregnating the substrate comprises impregnating the substrate with an alumina based aerogel.
- 44. The method of claim 43, further comprising the step of forming an aerogel precursor prior to impregnating the substrate.
- 45. The method of claim 44, wherein forming the precursor comprises mixing an aluminum-tri-sec-butoxide an alcohol, water, and at least one of an acid and base catalyst.
- 46. The method of claim 1, further comprising curing the aerogel impregnated material under supercritical conditions.
- 47. The method of claim 46, wherein the step of under supercritical conditions comprises gradually heating the aerogel material to a temperature of about 625° F. and to a pressure of about 2000 psi over about a 6-9 hour period; and
gradually returning the aerogel material to room temperature and pressure over about a 4 hour period.
FEDERALLY SPONSORED RESEARCH OR DEVELOPMENT
[0001] This invention was made under Contract No: NAS 9-200000, WBS 1.7.8.8 awarded by NASA. The government has certain rights in this invention.