Claims
- 1. An ignitor for use with a rocket engine to provide hypergolic fluid directly to a combustion chamber, said ignitor comprising:
a cartridge having a cavity with a length therein and an inlet and an outlet; a piston assembly moveable between a first position and a discharged position along the length of the cartridge within the cavity; and a supply of hypergolic fluid located within the cavity between the piston assembly and the outlet, wherein movement of the piston assembly from the first position to the discharged position expels at least some of the supply of hypergolic fluid out of the outlet.
- 2. The ignitor of claim 1 further comprising first and second end caps located at opposing ends of the length of the cartridge, said end caps having threads, said cartridge further comprising threads which cooperate with the threads of the end caps to allow the end caps to be screwed to the cartridge.
- 3. The ignitor of claim 2 further comprising O-rings forming a seal between the end caps and the cartridge.
- 4. The ignitor of claim 2 further comprising an inlet and an outlet, and rupture disc assemblies connected to the end caps, said rupture disc assemblies communicating the inlet and the outlet of the cartridge to the inlet and outlet of the ignitor.
- 5. The ignitor of claim 4 wherein the rupture disc assemblies further comprise threads which cooperate with threads in the end caps to allow the rupture disc assemblies to screw into the end caps to connect the rupture disc assemblies to the end caps.
- 6. The ignitor of claim 5 further comprising an O-ring between the first end cap and the connecting rupture disc assembly.
- 7. The ignitor of claim 1 wherein the cartridge further comprises at least one purge groove located along an interior surface of the cartridge in the cavity, wherein when said piston assembly is in the discharged position, said purge groove provides a conduit for flow around the piston assembly from the ignitor inlet to the ignitor outlet.
- 8. An ignitor for use with a rocket engine comprising:
a cartridge having a length and a cavity therein; first and second end caps located at opposing ends of the cartridge separated by the length, the first end cap having an inlet, and the second end cap having an outlet; and a piston assembly moveable between a first position and a discharged position along the length of the cartridge within the cavity, wherein the piston assembly is closer to the outlet in the discharged position than in the first position.
- 9. The ignitor of claim 8 further comprising a first rupture disc assembly connected to the first end cap at the inlet, and a second rupture disc assembly connected to the second end cap at the outlet.
- 10. The ignitor of claim 9 wherein the first rupture disc assembly contains a rupture disc therein.
- 11. The ignitor of claim 10 wherein the rupture disc is designed to rupture upon the application of a pressure differential of greater than about one hundred fifty psig as applied from across the rupture disc from a rupture disc assembly inlet towards the inlet of the first end cap.
- 12. The ignitor of claim 9 wherein the first rupture disc assembly further comprises threads and the first end cap further comprises threads and the first rupture disc and the first end cap are screwed togther.
- 13. The ignitor of claim 12 further comprising an O-ring between the first rupture disc assembly and the first end cap.
- 14. The ignitor of claim 8 wherein the cartridge further comprises at least one purge groove located along an interior surface of the cartridge in the cavity, wherein when said piston assembly is in the discharged position, said purge groove provides a conduit for flow around the piston assembly from the ignitor inlet to the ignitor outlet.
- 15. The ignitor of claim 14 wherein the piston assembly further comprises a piston face having nubs extending therefrom and wherein when said piston assembly is in the discharged position, said nubs contact an interior surface of the second end cap thereby defining a channel between the second end cap and the piston face to communicate flow from the at least one purge groove to the ignitor outlet.
- 16. The ignitor of claim 14 wherein the cartridge further comprises two opposing purge grooves located substantially one hundred eighty degrees apart on the interior of the cartridge.
- 17. The ignitor of claim 8 further comprising a supply of hypergolic fluid located within the cavity between the piston assembly and the outlet, wherein movement of the piston assembly from the first position to the discharged position expels at least some of the supply of hypergolic fluid out of the outlet.
- 18. An ignitor for use with a rocket engine comprising:
a cartridge having a cavity therein, a length, an inlet and an outlet; a piston assembly moveable between a first position and a discharge position along the length of the cartridge within the cavity; and first and second rupture disc assemblies having rupture discs contained therein, said first rupture disc assembly connected to the inlet, and said second rupture disc assembly connected to the outlet.
- 19. The ignitor of claim 18 further comprising a supply of hypergolic fluid located within the cavity between the piston assembly and the outlet, wherein movement of the piston assembly from the first position to the discharged position expels at least some of the supply of hypergolic fluid out of the outlet.
- 20. The ignitor of claim 18 wherein the cartridge further comprises at least one purge groove located along a portion of an interior surface of the cartridge in the cavity, and when said piston assembly is in the discharged position, said purge groove provides a conduit for flow around the piston assembly from the inlet to outlet.
Government Interests
[0001] This invention was made by employees of the United States Government and may be manufactured and used by or for the Government for governmental purposes without the payment of any royalties thereon or thereof.