Claims
- 1. A non-thermal plasma reactor element comprising:
a multi-cell stack comprising a plurality of formed building blocks of dielectric material, walls of said building blocks defining a cell having an exhaust passage for flowing gas therethrough, wherein a conductive print forming an electrode and connector is disposed on at least one wall of said cell; and outer insulative plates disposed on opposite ends of said multi-cell stack.
- 2. The non-thermal plasma reactor element of claim 1, wherein said building block comprises a full cell.
- 3. The non-thermal plasma reactor element of claim 1, where in said building block comprises two half cells.
- 4. The non-thermal plasma reactor element of claim 1, wherein said conductive print comprises a continuous grid pattern forming an electrode and terminal connector and having a cut-out region disposed opposite said terminal connector for reducing potential voltage leaks.
- 5. The non-thermal plasma reactor element of claim 1, wherein said conductive print is extended over an edge of the said cell to provide a site for electrical connection along the side of each cell in said multi-cell stack.
- 6. The non-thermal plasma reactor element of claim 1, wherein said conductive print is disposed on top and bottom walls of outermost cell in said multi-cell stack and remainder of said cells have conductive print disposed on only one wall.
- 7. The non-thermal plasma reactor element of claim 1. wherein said cells comprising said multi-cell stack are connected with glass glue diffused at selected print locations into dielectric material comprising said cells.
- 8. The non-thermal plasma reactor element of claim 1, wherein said cells comprising said multi-cell stack are connected with collars.
- 9. The non-thermal plasma reactor element of claim 1, wherein said cells comprising said multi-cell stack are connected with adhesive disposed along sides of said multi-cell stack.
- 10. The non-thermal plasma reactor element of claim 1, wherein said conductive print comprises three-dimensional conductive print.
- 11. The non-thermal plasma reactor element of claim 1, wherein said dielectric material is selected from the group consisting of cordierite, titania, alumina, steatite, mullite, plastics, or a combination thereof.
- 12. The non-thermal plasma reactor element of claim 1, wherein said walls defining said cells comprise side walls and top walls, wherein said side walls comprise a thickness of about 10 to 20 millimeters and said top walls comprises a thickness of about 0.3 to about 0.8 millimeters.
- 13. The non-thermal plasma reactor element of claim 1, wherein said building block further comprises a structural ligament formed as part of said dielectric building block.
- 14. The non-thermal plasma reactor element of claim 1, wherein said formed building blocks are formed via extrusion.
- 15. A method for preparing a non-thermal plasma reactor comprising:
forming cell building blocks of material having a high dielectric constant; printing a conductive print onto said cells, walls of said cells forming an exhaust passage for flowing gas to be treated therethrough; assembling said cells into a multi-cell stack; preparing electrical connections for connecting said cells to a high voltage source; applying insulation to said multi-cell stack; and inserting said multi-cell stack into a non-thermal plasma reactor housing.
- 16. The method of claim 15, wherein said forming is by extruding.
- 17. The method of claim 15, wherein said building blocks comprise full cells.
- 18. The method of claim 15, wherein said building blocks comprise half cells, assembled in pairs wherein each pair forms a full cell.
- 19. The method of claim 18, wherein said forming comprises roll compaction fabrication.
- 20. The method of claim 18, further comprising:
disposing a catalytic coating on at least one of said half-cells.
- 21. The method of claim 15, wherein said printing comprises a printing sequence defined from a top portion of said multi-cell stack to a bottom portion of said multi-cell stack.
- 22. The method of claim 15, further comprising:
connecting said cells comprising said multi-cell stack by diffusing glass glue at selected print locations into dielectric material comprising said cells.
- 23. The method of claim 15, further comprising:
connecting said cells comprising said multi-cell stack with collars.
- 24. The method of claim 15. further comprising:
connecting said cells comprising said multi-cell stack with adhesive applied to sides of said multi-cell stack.
- 25. A non-thermal plasma reactor comprising a reactor element as in claim 1, including:
a high temperature housing surrounding said reactor element; an insulated conductor connected with said cells for connecting first electrodes to an alternating voltage source; a grounded conductor connected with second electrodes of said cells for connecting said second electrodes to ground; and means for directing exhaust gas through said cells.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The present application claims priority to U.S. provisional application of David E. Nelson, et al., filed Jun. 29, 1999, entitled “Design and Method of Manufacturing a Plasma Reactor for Treating Auto Emissions—Stacked Shape,” Attorney Docket No. DP-300505, Ser. No. 60/141,427.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09511590 |
Feb 2000 |
US |
Child |
09808245 |
Mar 2001 |
US |