Claims
- 1. A magnetoplasmadynamic thruster having a substantially cylindrical anode forming a chamber, means for supplying a propellant to said chamber, means for providing a magnetic field in said chamber, and an improved cathode assembly having a predetermined operating temperature mounted within said chamber coaxially with said anode, said cathode assembly comprising
- an elongated hollow metal cylinder having a closed end,
- means within said hollow metal cylinder for heating said cathode to said predetermined operating temperature, and
- a pulse forming network operatively connected to said anode and heated cathode for operating said thruster in a pulsed mode.
- 2. A thruster as claimed in claim 1 wherein the cathode is porous tungsten.
- 3. A thruster as claimed in claim 1 including a plurality of heaters within said cathode.
- 4. A thruster as claimed in claim 3 including a plurality of tungsten-rhenium heaters mounted within the cathode.
- 5. A thruster as claimed in claim 4 including means for controlling the heaters so that the temperature of the cathode is maintained at about 1100.degree. C.
- 6. A thruster as claimed in claim 5 including a plurality of thermocouples within the cathode whereby the outputs of said thermocouples are used to adjust heater powers to obtain uniform temperature distribution.
- 7. In an electric propulsion device of the type having a pulsed electric discharge by a cylindrical anode wherein an ionized propellant is accelerated by Loretz body forces generated by the discharge current and both self-induced and externally applied magnetic fields, the improvement comprising
- a cathode comprising an elongated hollow cylinder of porous metal impregnated with a plurality of oxides mounted within said cylindrical anode,
- means within said hollow cylinder for heating the porous metal to a predetermined operating temperature, and
- means for applying a voltage between said cathode and said anode so that the electric propulsion device is operated in a pulsed mode.
- 8. An electric propulsion device as claimed in claim 7 wherein the metal cathode is porous tungsten.
- 9. An electric propulsion device as claimed in claim 7 including a plurality of heaters within said hollow cathode for heating the same to an operating temperature of about 1100.degree. C.
- 10. An electric propulsion device as claimed in claim 9 wherein the heaters are tungsten-rhenium coils.
- 11. A pulsed mode cathode comprising
- a hollow cylinder having an outer surface and an inner surface spaced inwardly therefrom, said hollow cylinder being a porous metal impregnated with a plurality of oxides,
- heating means within said hollow cylinder and spaced from said inner surface for maintaining the same at a predetermined operating temperature, and
- temperature monitoring means within said hollow cylinder in contact with said inner surface to control the heating means to maintain the outer surface of said cylinder at a uniform operating temperature.
- 12. A cathode as claimed in claim 11 including a plurality of heaters within said hollow cylinder.
- 13. A cathode as claimed in claim 12 wherein the heaters are tungsten-rhenium heating coils.
- 14. A cathode as claimed in claim 13 including a plurality of thermocouples within said hollow cylinder so that the temperatures of the heating coils can be adjusted to maintain a uniform temperature on the surface of the cylinder.
ORIGIN OF THE INVENTION
The invention described herein was made by an employee of the U.S. Government together with a contractor employee performing work under a NASA contract and is subject to the provisions of Section 305 of the National Aeronautics and Space Act (1958), Public Law 85-568 (72 Statute 435; 42 USC 2457).
US Referenced Citations (17)
Foreign Referenced Citations (3)
| Number |
Date |
Country |
| 61-152970 |
Jul 1986 |
JPX |
| 1-244174 |
Sep 1989 |
JPX |
| 4-47177 |
Feb 1992 |
JPX |
Non-Patent Literature Citations (3)
| Entry |
| "Plasma Investigation in a Reversed-Current Electron Bombardment Ion Engine", AIAA Journal, vol. 5, No. 4, pp. 692-696, Apr. 1967. |
| Sovey et al-"Performance and Lifetime Assessment of MPD Arc Thruster Technology"-NASA Tech. Memo. 101293 Jul. 1988. |
| Myers et al "MPD Thruster Technology"-NASA Technical Memorandum 105242-Sep. 1991. |