Claims
- 1. A thermionic emitter comprising:
- a porous body of metal selected from the group consisting of tungsten, molybdenum and alloys thereof;
- an emissive surface layer of a fully alloyed material being a coating on said porous body;
- said fully alloyed material consisting solely of 15 to 45% of a first metal selected from the group consisting of osmium, iridium, ruthenium, rhodium, rhenium and alloys thereof, fully alloyed with 85 to 55% of a second metal selected from the group consisting of tungsten, molybdenum and alloys thereof, such that said fully alloyed material has said first metal and said second metal substantially fully interdiffused therein; and,
- an alkaline earth activator dispersed within said porous body.
- 2. A thermionic emitter according to claim 1 wherein said activator comprises a mixture of barium oxide or a compound of barium which decomposes on heating to the oxide, an oxide or compound which decomposes on heating to the oxide of an alkaline earth metal other than barium, and at least one of aluminium oxide and boron oxide.
- 3. A thermionic emitter according to claim 2, wherein the said alkaline earth metal other than barium comprises a metal selected from the group of calcium, strontium and magnesium.
- 4. A thermionic emitter according to claim 1, wherein a layer is interposed between said coating and said porous body, the layer composed of said first metal.
- 5. A thermionic emitter according to claim 4, further comprising said first metal diffused into the said porous body.
- 6. A thermionic emitter according to claim 1, wherein the activator further comprises 1% or less of the said first metal.
- 7. A thermionic emitter according to claim 1, wherein the said fully alloyed material comprises about 30% to 20% of said first metal fully alloyed with about 70% to 80% of said second metal.
- 8. A thermionic emitter according to claim 1, wherein said fully alloyed material comprises about 35% to 45% of said first metal fully alloyed with about 65% to 55% of said second metal.
- 9. A thermionic emitter according to claim 1, wherein said first metal comprises osmium and said second metal comprises tungsten.
- 10. A thermionic emitter comprising:
- a porous body formed of a fully alloyed material;
- said fully alloyed material consisting solely of 15 to 45% of a first metal selected from the group consisting of osmium, iridium, ruthenium, rhodium, rhenium and alloys thereof, fully alloyed with 85 to 55% of a second metal selected from the group consisting of tungsten, molybdenum and alloys thereof, such that said fully alloyed material has said first metal and said second metal substantially fully interdiffused therein; and,
- an alkaline earth activator dispersed within said porous body.
- 11. A method of making a thermionic electron emitter comprising the steps of:
- providing a first metal selected from the group consisting of osmium, iridium, ruthenium, rhodium, rhenium and alloys thereof and a second metal selected from the group consisting of tungsten, molybdenum and alloys thereof,
- providing a porous body;
- fully alloying said first and second metals to form at least an emissive surface layer on said porous body as a fully alloyed material consisting solely of 15 to 45% of said first metal and about 85 to 55% of said second metal, such that said fully alloyed material has said first and said second metal substantially interdiffused therein; and
- incorporating an alkaline earth activator in said porous body.
- 12. A method according to claim 11, wherein the activator comprises a mixture of barium oxide a compound of barium which decomposes on heating to the oxide, an oxide or compound which decomposes on heating to the oxide of an alkaline earth metal other than barium, and at least one of aluminium oxide and boron oxide.
- 13. A method according to claim 12, wherein the said metal other than barium comprises a metal selected from the group of calcium, strontium and magnesium.
- 14. A method according to claim 11, wherein the proportions of the selected metals are about 65 to 55% of said second metal and about 35 to 45% of said first metal.
- 15. A method according to claim 11, wherein the proportions of the selected metals are about 70 to 80% of said second metal and about 30 to 20% of said first metal.
- 16. A method according to claim 11, wherein said second metal is tungsten and said first metal is osmium.
- 17. A method of making a thermionic electron emitter comprising the steps of:
- (i) providing a porous matrix of a metal selected from the group consisting of tungsten, molybdenum and alloys thereof;
- (ii) impregnating the matrix with an alkaline earth activator; and
- (iii) providing a first metal selected from the group consisting of osmium, iridium, ruthenium, rhodium, rhenium, and alloys thereof and a second metal selected from the group consisting of tungsten, molybdenum and alloys thereof;
- (iv) fully alloying said first and second metals and forming a fully alloyed coating as an emissive surface layer on the impregnated matrix, said fully alloyed coating consisting solely of 15 to 45% of said first metal and about 85 to 55% of said first metal, and said fully alloyed coating having said first and said second metal substantially interdiffused therein.
- 18. A method according to claim 17, wherein said fully alloyed coating is formed by co-sputtering said first and second metals onto said porous matrix.
- 19. A method according to claim 17, wherein said fully alloyed coating is formed by co-evaporating said first and second metals onto said porous matrix.
- 20. A method according to claim 17, wherein said fully alloyed coating is formed by co-precipitating said first and second metals onto said porous matrix from reducible compounds of those metals.
- 21. A method according to claim 17, further comprising the step of forming a layer of said first metal on said matrix prior to forming said fully alloyed coating.
- 22. A method according to claim 17, further comprising the steps of forming a layer of said first metal on said matrix and causing the metal layer to diffuse into said matrix prior to forming said fully alloyed coating.
- 23. A method according to claim 22 further comprising the step of forming a further layer of said first metal on said matrix prior to forming said fully alloyed coating.
- 24. A method according to claim 17, wherein the impregnating step comprises:
- (i) forming a reducible impregnation mixture of the said activator and a compound of the a metal selected from the group consisting of osmium, iridium, ruthenium, rhodium, rhenium, and alloys thereof;
- (ii) providing a reducing atmosphere; and,
- (iii) impregnating said matrix using said mixture in said reducing atmosphere whereby said selected metal is released from its compound.
- 25. A method of making a thermionic electron emitter comprising the steps of:
- (i) providing a first metal selected from the group consisting of osmium, iridium, ruthenium, rhodium, rhenium, and alloys thereof and a second metal selected from the group consisting of tungsten, molybdenum and alloys thereof;
- (ii) pressing a mixture of 15 to 45% of said first metal with about 85 to 55% of said second metal;
- (iii) sintering said mixture to form a porous matrix;
- (iv) producing a fully alloyed material consisting solely of said first metal fully alloyed with said second metal by heating said porous matrix, said fully alloyed material having said first and said second metal substantially interdiffused therein; and
- (v) impregnating said porous matrix with an alkaline earth activator.
- 26. A method of making a thermionic emitter comprising the steps of:
- (i) providing a powder of fully alloyed material comprising 15 to 45% of a first metal selected from the group consisting of osmium, iridium, ruthenium, rhodium, rhenium and alloys thereof and 85 to 55% of a second metal selected from the group consisting of tungsten, molybdenum, and alloys thereof, the particles of the fully alloyed powder having said first and said second metal substantially interdiffused therein;
- (ii) placing said powder in a mold;
- (iii) pressing said powder;
- (iv) sintering the pressed powder to form a porous matrix; and,
- (v) impregnating said porous matrix with an alkaline earth activator.
- 27. A method of making a thermionic electron emitter as claimed in claim 25 wherein the heating of said porous matrix takes place at 1800.degree. to 2000.degree. C. for five to ten hours.
Priority Claims (1)
Number |
Date |
Country |
Kind |
7918610 |
May 1979 |
GBX |
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Parent Case Info
This application is a continuation of application Ser. No. 123,575, filed 2/22/80, abandoned.
US Referenced Citations (14)
Continuations (1)
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Number |
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123575 |
Feb 1980 |
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