Claims
- 1. An orientation independent ignitron, comprising:
- a cathode having a surface with a plurality of spaced grooves,
- an anode having a surface spaced from and facing said grooved cathode surface, said grooved cathode surface being generally annular, said anode and cathode being coaxial with respect to each other,
- means for cooling said cathode sufficiently so that liquid metal vapor between said cathode and anode condenses as a film retained on said grooved cathode surface by surface tension and forms reservoirs within said grooves, and
- means for applying a voltage differentially between said cathode and anode sufficient to sustain a metal vapor arc between said anode and the liquid metal coated for a pulse period.
- 2. The orientation independent ignitron of claim 1, wherein said anode has a generally cylindrical surface facing said cathode, and said cathode surrounds said anode.
- 3. The orientation independent ignitron of claim 2, said cathode grooves being generally parallel and annular.
- 4. The orientation independent ignitron of claim 1, further comprising a plurality of igniters adjacent at least some of said cathode grooves for generating a plasma from the liquid metal on said cathode surface to initiate conduction between said cathode and anode.
- 5. The orientation independent ignitron of claim 4, said grooved cathode surface being characterized by generally convex sections bounding successive grooves, wherein said igniters extend through the cathode to locations at approximately the apices of respective convex sections.
- 6. The orientation independent ignitron of claim 5, said cathode having an outer surface which is generally parallel to its grooved surface, wherein said igniters extend through the cathode generally normal to said outer surface.
- 7. The orientation independent ignitron of claim 5, wherein fewer igniters than cathode grooves are provided, and at least one of said igniters is positioned between adjacent grooves so as to initiate arcing between both of said adjacent grooves and the anode.
- 8. The orientation independent ignitron of claim 4, further comprising a pulsing circuit for said igniters, said circuit firing said igniters in a non-simultaneous sequence at a predetermined rate, thereby providing each igniter with additional time for cooling between firings compared to a simultaneous pulsing of the igniters at said predetermined rate.
- 9. An orientation independent ignitron, comprising:
- a generally annular cathode having a plurality of spaced annular grooves having concave sections on its inner surface;
- an anode coaxially disposed within said cathode and having an anode surface spaced from and facing said inner cathode surface,
- means for cooling said cathode sufficiently so that liquid metal vapor between said cathode and anode condenses as a film retained on said cathode inner surface by surface tension and forms generally annular reservoirs within the concave sections of said grooves, and
- means for applying a voltage differential between said cathode and anode sufficient to sustain a metal vapor arc between said anode and the liquid metal coated cathode for a pulse period.
- 10. The orientation independent ignitron of claim 9, further comprising a plurality of igniters adjacent at least some of said cathode grooves for generating a plasma from the liquid metal on said cathode surface to initiate conduction between said cathode and anode.
- 11. An orientation independent ignitron, comprising:
- a generally annular cathode having a plurality of spaced annular grooves on its inner surface, said inner cathode surface being characterized by generally convex section bounding successive grooves,
- an anode disposed within said cathode and having an anode surface spaced from and facing said inner cathode surface,
- means for cooling said cathode sufficiently so that liquid metal vapor between said cathode and anode condenses as a film retained on said cathode inner surface by surface tension and forms generally annular reservoirs within said grooves,
- means for applying a voltage differential between said cathode and anode sufficient to sustain a metal vapor arc between said anode and the liquid metal coated cathode for a pulse period, and
- a plurality of igniters adjacent at least some of said cathode grooves for generating a plasma from the liquid metal on said cathode surface to initiate conduction between said cathode and anode, wherein said igniters extend inwardly through the cathode to locations at approximately the apices of respective convex sections.
- 12. The orientation independent ignitron of claim 11, wherein the outer cathode surface is generally cylindrical, and said igniters extend generally radially inward therefrom.
- 13. The orientation independent ignitron of claim 11, wherein fewer igniters than cathode grooves are provided, and at least one of said igniters is positioned between adjacent grooves so as to initiate arcing between both adjacent grooves and the anode.
- 14. The orientation independent ignitron of claim 11, further comprising a pulsing circuit for said igniters, said circuit firing said igniters in a non-simultaneous sequence at a predetermined rate, thereby providing each igniter with additional time for cooling between firings compared to a simultaneous pulsing of the igniters at said predetermined rate.
- 15. A method of wetting the inner surface of a generally cylindrical orientation independent ignitron cathode with a liquid metal film, said inner cathode surface having a plurality of generally annular grooves facing and spaced from an anode which is interior to the cathode, comprising:
- positioning said cathode on its side with said grooves generally vertical,
- accumulating liquid metal reservoirs at the lower ends of said grooves,
- establishing metal vapor arcing between said anode and the liquid metal within said grooves,
- sustaining said arcing with a sufficient current density and for a sufficient period of time so that said liquid metal reservoirs flow and wet the adjacent surface of said grooved cathode, liquid metal evaporates from said reservoirs and condenses on the remainder of the grooved cathode surface, and said arcing progresses to the areas of the cathode surface upon which liquid metal has condensed to wet the condensed liquid metal against the cathode surface and form a liquid metal film retained on substantially the entire grooved cathode surface by surface tension.
- 16. An orientation independent ignitron, comprising:
- a cathode having a surface with a plurality of spaced grooves, said grooved cathode surface being characterized by generally convex sections bounding successive grooves,
- an anode having surface spaced from and facing said cathode surface,
- means for cooling said cathode sufficiently so that liquid metal vapor between said cathode and anode condenses as a film retained on said cathode grooved surface by surface tension and forms reservoirs within said grooves,
- means for applying a voltage differential between said cathode and anode sufficient to sustain a metal vapor arc between said anode and the liquid metal coated cathode for a pulse period, and
- a plurality of igniters adjacent at least some of said cathode grooves for generating a plasma from the liquid metal on said cathode surface to initiate conduction between said cathode and anode, said igniters extending through the cathode to locations at approximately the apices of respective convex sections.
- 17. The orientation ignitron of claim 16, said cathode having an outer surface which in generally to its grooved surface, wherein said igniters extend through the cathode generally normal to said outer surface.
- 18. The orientation independent ignitron of claim 16, wherein fewer igniters than cathode grooves are provided, and at least one of said igniters is positioned between adjacent grooves so as to initiate arcing between both of said adjacent grooves and the anode.
- 19. The orientation independent ignitron of claim 16, further comprising a pulsing circuit for said igniters, said circuit firing said igniters in a non-simultaneous sequence at a predetermined rate, thereby providing each igniter with additional time for cooling between firings compared to a simultaneous pulsing of the igniters at said predetermined rate.
BACKGROUND OF THE INVENTION
This invention was made with U.S. Government support under Contract No. DNA 001-87-C-0089 awarded by the Defense Nuclear Agency. The U.S. Government has certain rights in this invention.
US Referenced Citations (6)
Foreign Referenced Citations (2)
Number |
Date |
Country |
694539 |
Jul 1953 |
GBX |
1191394 |
May 1970 |
GBX |
Non-Patent Literature Citations (1)
Entry |
H. E. Gallagher et al., "Repetition Rate Extension of the Orientation Independent Ignitron", Digest of Technical Papers, 4th IEEE Pulsed Conference, Jun. 1983. |