Claims
- 1. A subliming solids gas generator which comprises: a gas-tight chamber having an outlet conduit, a single mass of solid fuel devoid of a liquid contained within said chamber which fuel has a positive heat of formation and is adapted to sublime with the application of heat to provide a gaseous medium having a relatively high latent chemical energy content due to the positive heat of formation, means for supplying heat to said fuel, catalyst means for effecting the catalytic decomposition of the gaseous medium on issuance thereof from said outlet conduit to release the latent chemical energy and provide a high temperature working fluid, and means connected to said outlet conduit to convert the high temperature working fluid to useful work.
- 2. A subliming solids gas generator according to claim 1 wherein the fuel chamber is separated from the catalyst means by a porous barrier to prevent gas backflow into said fuel chamber.
- 3. A subliming solids gas generator according to claim 1 wherein the fuel chamber is separated from the catalyst by a porous barrier and an insulation means to prevent the backflow of gases and heat into said fuel chamber.
- 4. A subliming solids gas generator according to claim 1 wherein the solid fuel is one wherein the combined thermal and reaction vacuum specific impulse is in excess of about 200 seconds.
- 5. A subliming solids gas generator according to claim 1 wherein the solid fuel sublimes and decomposes to provide at least high temperature hydrogen and nitrogen gases.
- 6. A subliming solids gas generator according to claim 1 wherein the fuel is selected from the group consisting of solid ammonium azide, hydroxylamine, hydroxylamine azide, hydrazine azide, hydrazine azide-hydrazinate and azidoamine.
- 7. A subliming solids gas generator according to claim 1 wherein the fuel is solid ammonium azide.
- 8. A subliming solids gas generator according to claim 1 wherein the catalyst means is a catalyst selected from the group consisting of ruthenium, iron, cobalt, nickel, rhenium, rhodium and platinum.
- 9. A subliming solids gas generator according to claim 1 wherein the means for supplying heat comprises an electric heater positioned within the gas-tight chamber.
- 10. A subliming solids gas generator according to claim 1 including valve means in said outlet conduit intermediate said fuel and said catalyst means to selectively control the discharge of gases from said gas-tight chamber.
- 11. A subliming solids gas generator according to claim 1 wherein the outlet conduit has a substantial portion thereof including the catalyst means positioned within said gas-tight chamber in heat exchange relation to said fuel.
- 12. A subliming solids gas generator according to claim 1 wherein the means for supplying heat to the fuel includes a plurality of heater elements embedded in the solid fuel and which an activation are each adapted to sublime a discrete portion of the fuel charge.
- 13. A subliming solids gas generator according to claim 1 wherein the solid fuel sublimes to provide a gaseous medium at relatively low temperatures.
- 14. A subliming solids gas generator in accordance with claim 6 wherein the catalyst means is a catalyst selected from the group consisting of ruthenium, iron, cobalt, nickel, rhenium, rhodium and platinum.
- 15. A subliming solids gas generator in accordance with claim 7 wherein the catalyst means is a catalyst selected from the group consisting of ruthenium, iron, cobalt, nickel, rhenium, rhodium and platinum.
- 16. A subliming solids gas generator according to claim 11 wherein the work conversion means includes a gas turbine.
- 17. The method of producing a high temperature working fluid from a solid fuel which comprises the steps of providing a single mass of solid fuel devoid of a liquid which has a positive heat of formation and is adapted to sublime with the application of heat to provide a gaseous medium having a relatively high latent chemical energy content due to the positive heat of formation, enclosing said solid fuel within a gas-tight chamber having an outlet, applying heat to said fuel in an amount sufficient only to produce a gaseous medium with a vapor pressure adequate to force the gases through a catalytic zone containing a catalyst adapted to decompose the gases to release the latent chemical energy and produce a high temperature working fluid, and expanding said working fluid through a work conversion means to produce work.
- 18. The method of claim 17 wherein the solids fuel is selected from the group consisting of solid ammonium azide, hydroxylamine, hydroxylamine azide, hydrazine azide, hydrazine azide-hydrazinate and azidoamine.
- 19. The method of claim 17 wherein the solid fuel is solid ammonium azide.
- 20. The method of claim 18 wherein the catalyst for decomposing the gaseous medium is selected from the group consisting of ruthenium, iron, cobalt, nickel, rhenium, rhodium and platinum.
- 21. The method of claim 19 wherein the catalyst for decomposing the gaseous medium is selected from the group consisting of ruthenium, iron, cobalt, nickel, rhenium, rhodium and platinum.
Parent Case Info
This is a continuation of application Ser. No. 677,093, filed Oct. 23, 1967, abandoned.
US Referenced Citations (7)
Continuations (1)
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Number |
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677093 |
Oct 1967 |
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