IP Library Granted Patent US 7,762,058
Granted Patent B2
US 7,762,058 · App. 11/787,585 · Granted Jul 27, 2010

Ultra-compact, high performance aerovortical rocket thruster

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Quick Facts
Patent No.
US 7,762,058
App. No.
11/787,585
Granted
Jul 27, 2010
Kind
B2
Abstract

An ultra-compact aerovortical swirl-enhanced combustion (ASC) system features an aerovortical swirl generator for use in rocket thrusters utilizing hypergolic or non-hypergolic propellants. The ACS thruster can be sized for diameters ranging from about 0.5 to about 2.0 inches, and producing thrust levels of approximately 5 lb f to about 250 lb f . A plurality of helicoid flow channels in the swirl generator introduces swirl into a flow stream of a first propellant within ultra-compact sized rocket thrusters. The ASC system also includes injectors for introducing a second liquid propellant into the swirling flowfield to promote rapid and efficient atomization, mixing and vigorous combustion, which, results in major improvements in combustion and propulsion performance over current rocket thrusters, but in much shorter combustor systems. Hence, the ultra-compact ASC system is a substantial improvement in small bipropellant chemical propulsion thrusters, which can be utilized in-space satellite, spacecraft maneuvering and attitude/orbit control.

Claims (38)

1. An aerovortical swirl-enhanced combustion system for use in a rocket propulsion thruster system, the combustion system comprising:

an annular combustor having an inlet and an exit;

a first injector for injecting a first combustion constituent into the inlet of the annular combustor;

an aerovortical swirl generator positioned at the inlet of the annular combustor, the aerovortical swirl generator comprising a swirler having a plurality of helicoid flow channels for introducing a highly turbulent, three-dimensional swirling flowfield into the first combustion constituent;

a second injector for injecting a second combustion constituent into the swirling flowfield of the first combustion constituent such that a burning combustion process can take place in the swirling flowfield, the first and second combustion constituents selected from the group consisting of a fuel and an oxidizer;

a dump-step located at the inlet of the annular combustor such that an initial portion of the swirling flowfield of the first combustion constituent flows over the dump-step to create a toroidal outer recirculation zone alone the combustor wall;

an inlet ramp adjacent to the dump step to increase a height of the dump-step to increase the height, length and volume of the toroidal outer recirculation zone; and

an exhaust nozzle connected to the exit of the combustor wall for receiving byproducts of the combustion process to produce thrust.

2. The aerovortical swirl-enhanced combustion system of claim 1 wherein the swirler has a diameter in the range from about 0.5 inch to about 2.0 inch.

3. The aerovortical swirl-enhanced combustion system of claim 1 wherein the helicoid flow channels are formed at an angle into the swirler so that the flow stream creates a vortex flow downstream of the swirler.

4. The aerovortical swirl-enhanced combustion system of claim 1 wherein the helicoid flow channels are spirally wound around a center axis of the swirler.

5. The aerovortical swirl-enhanced combustion system of claim 1 wherein the nozzle comprises a convergent-divergent nozzle.

6. The aerovortical swirl-enhanced combustion system of claim 1 wherein the rocket propulsion thruster system produces about 5 lb f to about 250 lb f of thrust.

7. The aerovortical swirl-enhanced combustion system of claim 1 wherein the ratio of the combined combustor and exhaust nozzle length to the combustor diameter ranges from approximately 1.0 to approximately 1.6.

8. The aerovortical swirl-enhanced combustion system of claim 1 and further comprising a bluffbody attached to a downstream face of the swirler, the bluffbody including a flared conical portion for promoting mixing of the first and second combustion constituents, as well as for anchoring and stabilizing the burning combustion process.

9. The aerovortical swirl-enhanced combustion system of claim 8 and further comprising a centerbody for adjusting the position of the bluffbody relative to the dump step.

10. The aerovortical swirl-enhanced combustion system of claim 9 wherein the second injector comprises a plurality of injectors located at a position selected from the group consisting of: a combustor inlet wall downstream of the swirler, within the centerbody and within the bluffbody, wherein the plurality of injectors mix a portion of the second combustion constituent with a portion of the first combustion constituent to supply the outer recirculation zone with an ignitable mixture to self-sustain a stable combustion process.

11. An aerovortical swirl-enhanced combustion system for use in a rocket propulsion thruster system, the combustion system comprising:

an annular combustor having an inlet and an exit;

an aerovortical swirl generator positioned at the inlet of the annular combustor, the aerovortical swirl generator comprising a swirler having a plurality of helicoid flow channels for introducing a highly turbulent, three-dimensional swirling flowfield into the first combustion constituent;

a first injection manifold positioned around an upstream face of the swirler for injecting a first combustion constituent into the aerovortical swirl generator and the inlet of the annular combustor;

a second injector for injecting a second combustion constituent into the swirling flowfield of the first combustion constituent such that a burning combustion process can take place in the swirling flowfield, the first combustion constituent and the second combustion constituent comprise hypergolic bipropellants; and

an exhaust nozzle connected to the exit of the combustor wall for receiving byproducts of the combustion process to produce thrust.

12. Aerovortical swirl-enhanced combustion system of claim 11 , wherein the second injector comprises a second injection manifold comprising a plurality of injectors positioned in the swirler for injecting the second combustion constituent into the flowfield of the first combustion constituent to initiate a hypergolic combustion process.

13. An aerovortical swirl-enhanced combustion system for use in a rocket propulsion thruster system, the combustion system comprising:

an annular combustor having an inlet and an exit;

a first injector for injecting a first combustion constituent into the inlet of the annular combustor;

an aerovortical swirl generator positioned at the inlet of the annular combustor, the aerovortical swirl generator comprising a swirler having a plurality of helicoid flow channels for introducing a highly turbulent, three-dimensional swirling flowfield into the first combustion constituent;

a second injector for injecting a second combustion constituent into the swirling flowfield of the first combustion constituent such that a burning combustion process can take place in the swirling flowfield, the first combustion constituent and the second combustion constituent comprise hypergolic bipropellants;

an acoustical cavity for damping oscillations in the combustion process of the hypergolic bipropellants; and

an exhaust nozzle connected to the exit of the combustor wall for receiving byproducts of the combustion process to produce thrust.

14. An aerovortical swirl-enhanced combustion system for use in a rocket propulsion thruster system, the combustion system comprising:

an annular combustor having an inlet and an exit;

a first injector for injecting a first combustion constituent into the inlet of the annular combustor;

an aerovortical swirl generator positioned at the inlet of the annular combustor, the aerovortical swirl generator comprising a swirler having a plurality of helicoid flow channels for introducing a highly turbulent, three-dimensional swirling flowfield into the first combustion constituent;

a second injector for injecting a second combustion constituent into the swirling flowfield of the first combustion constituent such that a burning combustion process can take place in the swirling flowfield, the first combustion constituent and the second combustion constituent comprise hypergolic bipropellants;

a boundary layer control manifold for producing a boundary layer of the first combustion constituent between the burning swirling flowfield and the combustor wall; and

an exhaust nozzle connected to the exit of the combustor wall for receiving byproducts of the combustion process to produce thrust.

Assignments (7)
TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS Recorded Jul 28, 2023
From: BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT (AS SUCCESSOR AGENT TO WELLS FARGO BANK, NATIONAL ASSOCIATION (AS SUCCESSOR-IN-INTEREST TO WACHOVIA BANK, N.A.), AS ADMINISTRATIVE AGENT
To: AEROJET ROCKETDYNE OF DE, INC. (F/K/A PRATT & WHITNEY ROCKETDYNE, INC.)
Reel/Frame 064424/0050 →
RELEASE OF SECURITY INTEREST Recorded Aug 5, 2016
From: U.S. BANK NATIONAL ASSOCIATION
To: AEROJET ROCKETDYNE OF DE, INC. (F/K/A PRATT & WHITNEY ROCKETDYNE, INC.)
Reel/Frame 039597/0890 →
NOTICE OF SUCCESSION OF AGENCY (INTELLECTUAL PROPERTY) Recorded Jun 20, 2016
From: WELLS FARGO BANK, NATIONAL ASSOCIATION, AS THE RESIGNING AGENT
To: BANK OF AMERICA, N.A., AS THE SUCCESSOR AGENT
Reel/Frame 039079/0857 →
CHANGE OF NAME Recorded May 14, 2016
From: PRATT & WHITNEY ROCKETDYNE, INC.
To: AEROJET ROCKETDYNE OF DE, INC.
Reel/Frame 038707/0175 →
SECURITY AGREEMENT Recorded Jun 21, 2013
From: PRATT & WHITNEY ROCKETDYNE, INC.
To: U.S. BANK NATIONAL ASSOCIATION
Reel/Frame 030656/0615 →
SECURITY AGREEMENT Recorded Jun 17, 2013
From: PRATT & WHITNEY ROCKETDYNE, INC.
To: WELLS FARGO BANK, NATIONAL ASSOCIATION
Reel/Frame 030628/0408 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 17, 2007
From: PEDERSON, ROBERT J.
To: PRATT & WHITNEY ROCKETDYNE, INC.
Reel/Frame 019271/0653 →