Claims
- 1. A filter comprising:
a structure having a porous cermet material, the cermet material including:
a discontinuous ceramic phase selected from the group consisting of alumina, zirconia silicate, zirconia, mullite, cordierite, and iron III oxide bonded with a transition metal aluminide phase, and wherein the filter is configured to be operably coupled to an exhaust of an internal combustion engine.
- 2. The filter of claim 1, wherein the transition metal aluminide phase exhibits electrical continuity throughout a substantial portion of the filter.
- 3. The filter of claim 1 further comprising an electrical source for providing a current within the filter.
- 4. The filter of claim 1 further comprising a resistive heating element disposed within the filter.
- 5. The filter of claim 4 further comprising an electrical source for providing a current within the resistive heating element.
- 6. The filter of claim 4, wherein the resistive heating element is made from a material selected from the group consisting of nickel-chromium alloys and molybdenum disilicide.
- 7. The filter of claim 4, wherein the resistive heating element has a coefficient of thermal expansion substantially the same as that of the filter.
- 8. The filter of claim 4, wherein the resistive heating element is coated with a ceramic material.
- 9. The filter of claim 8, wherein the ceramic material comprises a refractory oxide.
- 10. The filter of claim 1 further comprising a heating element external to the filter.
- 11. The filter of claim 1, wherein the filter has a melting temperature greater than or equal to about 1500° C.
- 12. The filter of claim 1, wherein the filter has a fracture toughness greater than or equal to about 22 MPa·m1/2.
- 13. The filter of claim 1, wherein the filter has a density less than or equal to about 3 grams per cm3.
- 14. The filter of claim 1, wherein the filter comprises pores providing a volume greater than or equal to about 50 volume percent of the filter.
- 15. The filter of claim 1, wherein the filter is generally disk shaped or cylinder shaped.
- 16. The filter of claim 1 further comprising a structural reinforcement phase in the porous cermet material.
- 17. The filter of claim 16, wherein the structural reinforcement phase is selected from the group consisting of metal fibers, ceramic fibers, and metal screens.
- 18. The filter of claim 1 further comprising a housing bonded to the porous cermet material.
- 19. The filter of claim 1, wherein the porous cermet material exhibits a graded porosity.
- 20. The filter of claim 1 further comprising electrodes integral with the porous cermet material.
- 21. The filter of claim 1, wherein the porous cermet material further comprises an ammonia emitting phase.
- 22. The filter of claim 1, wherein the porous cermet material further comprises a hydrocarbon emitting phase.
- 23. The filter of claim 1, wherein the porous cermet material further comprises a NOX absorbing phase.
- 24. The filter of claim 1, wherein the porous cermet material further comprises an alkali oxide phase.
- 25. A cermet material comprising:
a transition metal aluminide phase; a ceramic phase selected from the group consisting of alumina, zirconia silicate, zirconia, mullite, cordierite, and iron III oxide; an ammonia emitting phase; and a substantial number of pores extending through the cermet material.
- 26. The cermet material of claim 25 further comprising a hydrocarbon emitting phase.
- 27. The cermet material of claim 25 further comprising a NOX absorbing phase.
- 28. The cermet material of claim 25 further comprising an alkali oxide phase.
- 29. The cermet material of claim 25, wherein the transition metal aluminide phase exhibits electrical continuity throughout a substantial portion of the cermet material.
- 30. The cermet material of claim 25 further comprising a resistive heating element disposed within the cermet material.
- 31. The cermet material of claim 30, wherein the resistive heating element is made from a material selected from the group consisting of nickel-chromium alloys and molybdenum disilicide.
- 32. The cermet material of claim 30, wherein the resistive heating element has a coefficient of thermal expansion substantially the same as that of the cermet material.
- 33. The cermet material of claim 30, wherein the resistive heating element is coated with a ceramic material.
- 34. The cermet material of claim 33, wherein the ceramic material comprises a refractory oxide.
- 35. The cermet material of claim 25 further comprising a heating element external to the cermet material.
- 36. The cermet material of claim 25, wherein the cermet material has a melting temperature greater than or equal to about 1500° C.
- 37. The cermet material of claim 25, wherein the cermet material has a fracture toughness greater than or equal to about 22 MPa·m1/2.
- 38. The cermet material of claim 25, wherein the cermet material has a density less than or equal to about 3 grams per cm3.
- 39. The cermet material of claim 25, wherein the pores comprise a volume greater than or equal to about 50 volume percent of the cermet material.
- 40. The cermet material of claim 25, wherein the cermet material is generally disk shaped or cylinder shaped.
- 41. The cermet material of claim 25 further comprising a structural reinforcement phase in the cermet material.
- 42. The cermet material of claim 41, wherein the structural reinforcement phase is selected from the group consisting of metal fibers, ceramic fibers, and metal screens.
- 43. The cermet material of claim 25 further comprising a housing bonded to the cermet material.
- 44. The cermet material of claim 25, wherein the cermet material exhibits a graded porosity.
- 45. The cermet material of claim 25 further comprising electrodes integral with the cermet material.
- 46. An internal combustion system comprising:
an internal combustion engine having an exhaust operably coupled to a filter, the filter comprising a porous cermet material including:
a discontinuous ceramic phase selected from the group consisting of alumina, zirconia silicate, zirconia, mullite, cordierite, and iron III oxide bonded with a a transition metal aluminide phase.
- 47. A reduced pollution vehicle comprising:
a vehicle having an internal combustion engine, the internal combustion engine having an exhaust operably coupled to a filter, the filter comprising a porous cermet material including:
a discontinuous ceramic phase selected from the group consisting of alumina, zirconia silicate, zirconia, mullite, cordierite, and iron III oxide bonded with a transition metal aluminide phase.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application is related to U.S. application Ser. No. 10/______ entitled CERMET MATERIALS, SELF-CLEANING CERMET FILTERS, APPARATUS AND SYSTEMS EMPLOYING SAME, filed on even date herewith.
STATEMENT OF GOVERNMENT RIGHTS
[0002] The United States Government has rights in the following invention pursuant to Contract No. DE-AC07-99ID13727 between the U.S. Department of Energy and Bechtel BWXT Idaho, LLC.