Claims
- 1. Apparatus for accelerating a projectile along a gun barrel having a longitudinal axis comprising a structure for establishing at least several axial gaps for providing at least several axial electrical discharges behind the projectile, the discharges causing plasma to flow with components at right angles to the axial discharges for a substantial time while the projectile is traversing the barrel, a propellant mass positioned to be responsive to the plasma flow resulting from the discharges, the propellant mass being converted into a high pressure gas for accelerating the projectile in the barrel in response to the plasma resulting from the discharges being incident on the propellant mass, the propellant mass including a solid fuel and an oxidizer that do not react at ambient conditions, a portion of the fuel abutting the structure, the fuel and oxidizer being vaporized and elevated to a sufficiently high temperature by the plasma as to produce an exothermic chemical reaction resulting in derivation of the high pressure gas pulse that is supplied to the projectile, the axial gaps being arranged so that the power applied to the plasma via gaps close to the projectile causes initial vaporization of the fuel closest to the projectile prior to vaporization of the fuel farther from the projectile and progressive vaporization of the fuel farther from the projectile.
- 2. The apparatus of claim 1 wherein the gaps are arranged so greater power is applied to gaps close to the projectile than is applied to gaps farther from the projectile.
- 3. The apparatus of claim 1 wherein the fuel mass is a solid confined to a region in proximity to the discharges and the oxidizer is in a second region radially beyond the confined region where the fuel is located.
- 4. The apparatus of claim 3 wherein the oxidizer is a liquid in the confined and second regions.
- 5. The apparatus of claim 4 wherein the fuel is a powder confined by a screen having a mesh less than the size of grains of the powder.
- 6. The apparatus of claim 4 wherein the oxidizer is a solid confined to the second region.
- 7. The apparatus of claim 6 wherein the fuel is a powder, the fuel and the oxidizer being confined by a screen having a mesh less than the size of grains of the powder.
- 8. The apparatus of claim 3 wherein the confined fuel mass decreases in cross sectional area along the structure as distance of the structure from the projectile increases.
- 9. The apparatus of claim 8 wherein the gaps include walls that erode differently in response to the discharges so that the walls of the gaps close to the projectile erode faster than the walls of the gaps farther from the projectile, the walls being on rings coaxial with an axis of the structure, the rings having diameters such that rings close to the projectile have smaller diameters than rings remote from the projectile, the screen having a cylindrical constant diameter wall coaxial with the rings.
- 10. The apparatus of claim 9 wherein the structure, screen, fuel mass and oxidizer mass are in a cartridge having circular cross sections that are coaxial with the rings and tapered toward the projectile so that the cross sections close to the projectile have smaller radii than cross sections remote from the projectile to form a nozzle-like structure for the fuel mass and the oxidizer in fluid form.
- 11. The apparatus of claim 8 wherein the combined fuel mass and oxidizer mass are in a housing having interior walls configured as a nozzle-like structure for directing the fuel mass and the oxidizer in fluid form toward the projectile.
- 12. The apparatus of claim 2 wherein the gaps include walls that erode differently in response to the discharges so that the walls of the gaps close to the projectile erode faster than the walls of the gaps farther from the projectile.
- 13. The apparatus of claim 12 wherein the walls include a solid material that is vaporized by the discharge and exothermally reacts chemically with the oxidizer to produce a portion of a high pressure gas pulse that is applied to the projectile.
- 14. The apparatus of claim 12 wherein the walls of the gaps close to the projectile have a smaller radius than walls of the gaps farther from the projectile.
- 15. The apparatus of claim 14 wherein the walls of the gaps close to the projectile are axially closer to each other than the walls of the gaps farther from the projectile.
- 16. The apparatus of claim 12 wherein the walls of the gaps close to the projectile are axially closer to each other than the walls of the gaps farther from the projectile.
- 17. The apparatus of claim 12 wherein each wall is part of a member having an outer periphery beyond the wall, the outer periphery being a cover for the portion of the member including the wall and being formed of a material that is eroded by the plasma at a rate which is much slower than the wall.
- 18. The apparatus of claim 17 wherein the cover material is an electric insulator.
- 19. The apparatus of claim 18 wherein the portion of the member including the wall is carbon.
- 20. The apparatus of claim 1 wherein the discharges are established between metal portions of the structure.
- 21. The apparatus of claim 20 wherein the gaps include walls that erode differently in response to the discharges so that the walls of the gaps close to the projectile erode faster than the walls of the gaps farther from the projectile.
- 22. Apparatus for supplying a high pressure pulse of gas along a longitudinal axis to an outlet port, comprising a structure for establishing at least several axial gaps for providing at least several axial electrical discharges behind the outlet port, the discharge causing plasma to flow with components at right angles to the axial discharges, a propellant mass positioned to be responsive to the plasma flow resulting from the discharges, the propellant mass being converted into a component of the high pressure gas pulse by the plasma flow, the gaps including walls that erode differently in response to the discharges so that the walls of the gaps close to the outlet erode faster than the walls of the gaps farther from the outlet, the propellant mass including a solid fuel and an oxidizer that do not react at ambient conditions, a portion of the fuel abutting the structure, the fuel and oxidizer being vaporized and elevated to a sufficiently high temperature by the plasma as to produce an exothermic chemical reaction resulting in derivation of the high pressure gas pulse that is supplied to the outlet.
- 23. The apparatus of claim 22 wherein the walls of the gaps close to the outlet have a smaller radius than walls of the gaps farther from the outlet.
- 24. The apparatus of claim 23 wherein the walls of the gaps close to the outlet are axially closer to each other than the walls of the gaps farther from the outlet.
- 25. The apparatus of claim 22 wherein the walls of the gaps close to the outlet are axially closer to each other than the walls of the gaps farther from the outlet.
- 26. A cartridge to be loaded into a gun barrel comprising a projectile, a propelling structure for the projectile, the projectile and propelling structure being attached to each other, the propelling structure establishing at least several axial gaps for providing at least several axial electrical discharges behind the projectile, the discharges causing plasma to flow with components at right angles to the axial discharges for a substantial time while the projectile is traversing the barrel, a propellant mass positioned to be responsive to the plasma flow resulting from the discharges, the propellant mass being converted into a high pressure gas for accelerating the projectile in the barrel in response to the plasma resulting from the discharges being incident on the propellant mass, the propellant mass including a solid fuel and an oxidizer that do not react at ambient conditions, a portion of the fuel abutting the structure, the fuel and oxidizer being vaporized and elevated to a sufficiently high temperature by the plasma as to produce an exothermic chemical reaction resulting in derivation of the high pressure gas pulse that is supplied to the projectile, the axial gaps being arranged so that the power applied to the plasma via gaps close to the projectile causes initial vaporization of the fuel closest to the projectile prior to vaporization of the fuel farther from the projectile and progressive vaporization of the fuel farther from the projectile.
- 27. A cartridge to be loaded into a gun barrel comprising a projectile, a propelling structure for the projectile, the projectile and propelling structure being attached to each other, the propelling structure establishing at least several axial gaps for providing at least several axial electrical discharges behind the projectile, the discharges causing plasma to flow with components at right angles to the axial discharges, a propellant mass positioned to be responsive to the plasma flow resulting from the discharges, the propellant mass being converted into a high pressure gas for accelerating the projectile in the barrel in response to the plasma resulting from the discharges being incident on the propellant mass, the gaps including walls that erode differently in response to the discharges so that the walls of the gaps close to the projectile erode faster than the walls of the gaps farther from the projectile, the propellant mass including a solid fuel and an oxidizer that do not react at ambient conditions, a portion of the fuel abutting the structure, the fuel and oxidizer being vaporized and elevated to a sufficiently high temperature by the plasma as to produce an exothermic chemical reaction resulting in derivation of the high pressure gas pulse that is supplied to the projectile.
RELATION TO CO-PENDING APPLICATION
The present application is a continuation in part of co-pending commonly assigned application Ser. No. 08/329,755, filed Oct. 26, 1994, entitled HYBRID ELECTROTHERMAL GUN WITH SOFT MATERIAL FOR INHIBITING UNWANTED PLASMA FLOW AND GAPS FOR ESTABLISHING TRANSVERSE PLASMA DISCHARGE.
US Referenced Citations (7)
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
329755 |
Oct 1994 |
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