IP Library Granted Patent US 12,276,239
Granted Patent B1
US 12,276,239 · App. 18/117,326 · Granted Apr 15, 2025

Transverse-jet combustor for a rocket engine

Inventor: Robert Edward Breidenthal, Jr. (Seattle, WA)
F02K9/52
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Quick Facts
Patent No.
US 12,276,239
App. No.
18/117,326
Granted
Apr 15, 2025
Kind
B1
Abstract

This invention exploits the fundamental physics of turbulent mixing to improve bi-propellant chemical rocket engines. Instead of the many axial reactant injectors in conventional engines, only two transverse injectors are required to generate a pair of large, counter-rotating, streamwise vortices and to mix the reactants for the case of a circular combustion chamber. The vortex pair controls the rate of mixing and the rate of heat release, insensitive to pressure waves and relatively immune to combustion instabilities. The injector of a liquid propellant generates droplets, some of which may contact the opposite wall of the combustion chamber to aid in wall cooling. With the dramatic reduction in the number of injectors, the invention lowers engine mass and manufacturing costs while improving engine reliability.

Claims (15)

1. A chemical rocket propulsion system comprising:

a pressurized supply of a fuel propellant and a pressurized supply of an oxidizer propellant;

a combustion chamber comprising a wall defining a combustion chamber volume and a central axis extending through the combustion chamber volume;

at least one first injection nozzle for the fuel propellant mounted to the wall at a first azimuthal position about the central axis;

at least one second injection nozzle for the oxidizer propellant mounted to the wall of the combustion chamber at the first azimuthal position about the central axis such that the at least one first injection nozzle and the at least one second injection nozzle are aligned, and spaced apart, along the central axis in a direction parallel to the central axis and are oriented substantially transverse to the central axis;

wherein the wall lacks injection nozzles at all azimuthal positions about the central axis except the first azimuthal position;

wherein, during operation of the chemical rocket propulsion system, the at least one first injection nozzle and the at least one second injection nozzle are configured to inject the fuel propellant and the oxidizer propellant, respectively, to generate a pair of counter-rotating vortices within the combustion chamber which rotate about respective axis substantially parallel to the central axis; and

a downstream exhaust nozzle connected to the wall to receive exhaust gases from the combustion chamber.

2. The chemical rocket propulsion system of claim 1 , wherein the combustion chamber has a circular cross section perpendicular to the central axis.

3. The chemical rocket propulsion system of claim 1 , wherein the at least one first injection nozzle and the at least one second injection nozzle are positioned near an upstream end of the combustion chamber.

4. The chemical rocket propulsion system of claim 1 , wherein at least one of the fuel propellant and the oxidizer propellant is injected as a liquid.

5. The chemical rocket propulsion system of claim 1 , wherein at least one of the fuel propellant and the oxidizer propellant is injected as a spray from a multi-orifice spray head.

6. The chemical rocket propulsion system of claim 1 , wherein at least one of the fuel propellant and the oxidizer propellant is injected as a spray from a swirl atomizer.

7. The chemical rocket propulsion system of claim 1 , wherein at least one of the fuel propellant and the oxidizer propellant is supplied at a pressure sufficient to generate droplets with an inertial response time equal to or less than the chamber diameter divided by a nozzle injection speed.

8. The chemical rocket propulsion system of claim 1 , wherein at least one of the fuel propellant and the oxidizer propellant is injected such that some of the at least one of the fuel propellant and the oxidizer propellant contacts the wall of the combustion chamber.

References Cited (10)
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Jacob A. Boening et al., “Design and Experiments of a Continuous Rotating Detonation Engine: a Spinning Wave Generator and Modulated Fuel-Oxidizer Mixing”, AIAA 2016-4966, 52nd AIAA/SAE/ASEE Joint Propulsion Conference,… [cited by applicant]
Fiona Spencer, Giovanni Nino, Janna Wai, Jonathan M. Wai, and Robert Breidenthal, “Mixing in a Novel Rocket Engine”, AIAA 2024-0346, AIAA SCITECH 2024 Forum, Jan. 8-12, 2024, Orlando, FL. [cited by applicant]
R.E. Breidenthal et al., “Turbulent mixing in two-dimensional ducts with transverse jets”, 1986 AIAA Journal 21(11), pp. 1867-1869. [cited by applicant]
J.E. Broadwell and R.E. Breidenthal, “A simple model of mixing and chemical reaction in a turbulent shear layer”, 1982 J. Fluid Mech. [cited by applicant]
C.T. Crowe et al., “Multiphase Flows with Droplets and Particles”, CRC Press, 1997, pp. 24-26. [cited by applicant]
A.C. Edwards et al., “Turbulent mixing in tubes with transverse injection”, 1985 A.I.Ch.E. J. 31, pp. 516-518. [cited by applicant]
D.T. Harrje et al., (eds.), “Liquid Propellant Rocket Combustion Instability”, NSA SP-194, 1972, pp. 350-360. [cited by applicant]