Claims
- 1. A multiple cell thermionic converter for use in a vacuum environment comprising:a plurality of tubular electron emitters attached to a first support member, a plurality of tubular electron collectors attached to a second support member, said emitters and said collectors being disposed coaxially and juxtaposed with one another with uniform gaps therebetween to provide a plurality of thermionic cells, and tubular metal connectors which have a pair of edges and which interconnect, in series electrical connection, the collector of one such thermionic cell to the emitter of the next-adjacent cell by joinder to said respective edges, said connectors being apertured in a pattern that effectively reduces stress inherently created therein from thermal expansion and contraction of said converter resulting from changes between ambient temperature and operating temperature while still providing a low resistance current path, said aperture pattern including a set of slot means disposed in at least two primary planes that are oriented substantially perpendicular to the axis of the tubular connector.
- 2. The multiple cell thermionic converter according to claim 1 wherein each said slot means contains one or more slots which extend for a total of at least about 180° of arc and which are arranged so that said aperture pattern is symmetrical.
- 3. The multiple cell thermionic converter according to claim 1 wherein each said slot means terminates in a pair of circular openings having a diameter greater than the width of said slot means.
- 4. The multiple cell thermionic converter according to claim 1 wherein each of said slot means in each said primary plane includes at least two slots of substantially equal length, and wherein said planes are spaced apart so that each is respectively nearer to one said edge of said connector than to said other primary plane.
- 5. The multiple cell thermionic converter according to claim 4 wherein the total length of said slots in each primary plane is at least about 180° of arc and wherein each slot terminates in a circular opening of greater diameter than the width of the slot.
- 6. The multiple cell thermionic converter according to claim 4 wherein said aperture pattern also includes short keyhole openings at about the midpoint of each said slot in each primary plane.
- 7. The multiple cell thermionic converter according to claim 4 wherein said aperture pattern also includes auxiliary slits disposed in a plane between said primary planes.
- 8. The multiple cell thermionic converter according to claim 7 wherein said plane of said auxiliary slits is equidistant from said primary planes.
- 9. The multiple cell thermionic converter according to claim 1 wherein each said slot means has a width between about 2% and about 20% of the axial length of said tubular connector.
- 10. The multiple cell thermionic converter according to claim 9 wherein said tubular connector is circular in cross-section and has a thickness equal to between about 2% and about 12% of the outer diameter of said connector.
- 11. The multiple cell thermionic converter according to claim 10 wherein said tubular connectors are made of a refractory metal selected from the group consisting of tantalum, tungsten, rhenium, niobium, molybdenum and alloys thereof.
- 12. The multiple cell thermionic converter according to claim 1 wherein said connector is a thin metallic tube of substantially constant interior diameter and wherein each end of said connector has an annular recess in its exterior surface.
- 13. The multiple cell thermionic converter according to claim 1 wherein said emitters and said collectors are respectively supported on tubular ceramic bodies carried by the respective surfaces of said first and second support members.
- 14. The multiple cell thermionic converter according to claim 13 wherein either said first support tube or said second support tube is an integral tube to which a continuous coating is fused to provide said ceramic body upon which either said emitters or said collectors are supported.
- 15. A multiple cell thermionic converter for use in a vacuum environment comprising:a plurality of tubular electron emitters of circular cross-section attached to a first support member of circular cross-section but separated therefrom by an electrically insulating ceramic layer, a plurality of tubular electron collectors of circular cross-section attached to a second support member of circular cross-section but separated therefrom by an electrically insulating ceramic layer, said emitters and said collectors being disposed coaxially and juxtaposed with one another with uniform annular gaps therebetween to provide a plurality of thermionic cells, and tubular metal connectors of circular cross-section which have a pair of edges and major interior and exterior surfaces of essentially constant diameter, said connectors interconnecting, in series electrical connection, the collector of one such thermionic cell to the emitter of the next-adjacent cell by joinder to said respective edges, said connectors being apertured in a pattern that effectively reduces stress inherently created therein from thermal expansion and contraction of said converter of said converter resulting from changes between ambient temperature and operating temperature while still providing a low resistance current path, said aperture pattern including a set of slot means disposed in at least two primary planes that are oriented substantially perpendicular to the axis of the tubular connector, each of said slot means containing one or more slots which extend for a total of at least about 180° of arc, which are arranged so that said aperture pattern is symmetrical and which each terminate in a pair of circular openings having a diameter greater than the width of said slot.
- 16. The multiple cell thermionic converter according to claim 15 wherein each of said slot means in each said primary plane includes at least two slots of substantially equal length, and wherein planes are spaced apart so that each is respectively nearer to one said edge of said connector than to said other primary plane.
- 17. The multiple cell thermionic converter according to claim 16 wherein said aperture pattern also includes short keyhole openings at about the midpoint of each said slot in each primary plane.
- 18. The multiple cell thermionic converter according to claim 17 wherein said aperture pattern also includes auxiliary slits disposed in a plane between said primary planes.
- 19. The multiple cell thermionic converter according to claim 15 wherein each said slot means has a width between about 2% and about 20% of the axial length of said tubular connector, wherein said tubular connector has a thickness equal to between about 1% and about 20% of the outer diameter of said connector and wherein said tubular connectors are made of a refractory metal selected from the group consisting of tantalum, tungsten, rhenium, niobium, molybdenum and alloys thereof.
Government Interests
The Government has certain rights in this invention pursuant to Contract No. DSWA01-97-C-0088 awarded by the U.S. Department of Defense, Defense Threat Reduction Agency, formerly the Defense Special Weapons Agency.
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Number |
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Date |
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3702408 |
Longsderff et al. |
Nov 1972 |
|
4667126 |
Fitzpatrick |
May 1987 |
|
5219516 |
Horner-Richardson et al. |
Jun 1993 |
|