Selectable ramjet propulsion system
09726115 · 2017-08-08
Assignee
Inventors
Cpc classification
F02K9/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02K9/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02K9/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02K7/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A selectable ramjet propulsion system for propelling a rocket or missile includes a gas generator adjacent a booster. A frangible diaphragm is disposed between the gas generator and the booster. The booster and fuel gas generator can be operated in normal sequence, or operated at the same time in order to increase the thrust produced for short-range missions. A logic circuit contained on the rocket or missile determines a time to rupture the frangible diaphragm based on whether or not the distance to the target exceeds a threshold distance.
Claims
1. A selectable ramjet propulsion system for propelling a missile, comprising: a variable flow ducted rocket having a gas generator, a combustor, a frangible diaphragm, and an inlet duct, wherein the a gas generator has a center-perforated grain solid rocket propellant, wherein the center-perforated grain solid rocket propellant of the gas generator is a ramjet fuel, wherein the gas generator is adjacent the combustor, wherein the combustor has a center-perforated grain solid rocket propellant, wherein the frangible diaphragm is disposed between said gas generator and said combustor, wherein the frangible diaphragm is configured to withstand an approximate 2000 psia boost pressure from the combustor, yet to yield upon a pressure lower than the boost pressure from the gas generator prior to an ignition of the center-perforated grain solid rocket propellant of the combustor, wherein the inlet duct is selectively fluidly coupled to the combustor via a port cover, and wherein the surface area of the frangible diaphragm is sized to allow an unchoked subsonic flow of a gaseous product of a combustion of the gas generator center-perforated grain solid rocket propellant into the combustor.
2. A method for operating a selectable ramjet propulsion system, for propelling a missile, having a gas generator adjacent a combustor of a booster and a frangible diaphragm disposed between said gas generator and said booster combustor, comprising the steps of: igniting a booster combustor propellant contained within said booster; determining a distance to an intended target; and determining a time to ignite the gas generator fuel and rupture said frangible diaphragm based on said distance to target, and wherein the selectable ramjet propulsion system comprises: a variable flow ducted rocket having the gas generator, the booster combustor, the frangible diaphragm, and an inlet duct, wherein the gas generator fuel is a center-perforated grain solid rocket propellant, wherein the center-perforated grain solid rocket propellant of the gas generator is a ramjet fuel, wherein the booster combustor propellant is a center-perforated grain solid rocket propellant, wherein the frangible diaphragm is configured to withstand an approximate 2000 psia boost pressure from the booster combustor, yet to yield upon a pressure lower than the boost pressure from the gas generator prior to an ignition of the center-perforated grain solid rocket propellant of the booster combustor, wherein the inlet duct is selectively fluidly coupled to the booster combustor via a port cover, and wherein the surface area of the frangible diaphragm is sized to allow an unchoked subsonic flow of a gaseous product of a combustion of the gas generator center-perforated grain solid rocket propellant into the booster combustor.
3. The method of claim 2 wherein said gas generator is activated and said frangible diaphragm is ruptured prior to consumption of said booster combustor propellant if said distance to an intended target is less than a threshold distance.
4. The method of claim 3 wherein said gas generator is activated and said frangible diaphragm is ruptured prior to ignition of said booster combustor propellant.
5. The method of claim 2 wherein said gas generator is activated and said frangible diaphragm is ruptured subsequent to consumption of said booster combustor propellant if said distance to an intended target exceeds a threshold distance.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
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(6) Like reference numbers and designations in the various drawings indicated like elements.
DETAILED DESCRIPTION
(7) Propulsion phases of a missile mission include:
(8) Boost phase occurs when a solid rocket is typically used to accelerate the vehicle to low supersonic speeds where the ramjet engine becomes efficient;
(9) Transition phase occurs when the vehicle configuration is changed to allow air to enter the combustion chamber, and the fuel and air combustion process is initiated; and
(10) Ramjet sustain phase in which thrust is produced by sustained combustion of the fuel/air mixture.
(11)
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(14) Disclosed herein is a method whereby all or part of the ramjet impulse is applied to the boost phase on command to improve inner boundary performance when desired for a short range mission. This embodiment uses the unchoked ducted rocket engine shown in
(15) As particularly illustrated in Example 2 below, there is a threshold distance to target beyond which the boost/ramjet mode is superior to the selectable ramjet propulsion system described herein. Preferably, the missile autopilot has access to range information prior to launch and employs logic to select one mode or the other without any input required from the pilot.
(16) Advantages and Disadvantages of this Embodiment are:
(17) Advantages:
(18) Ramjet booster can be sized for takeover only, not increased to improve inner boundary. Increased thrust when desired for short range.
(19) Improved ramjet thrust and Mach number, but less fuel remaining at takeover.
(20) Disadvantages:
(21) Fuel rich exhaust when burning simultaneously, potentially with accompanying unburned carbon.
(22) Nozzle sizing and MEOP (maximum expected operating pressure) driven by simultaneous operation. This may result in non-optimum nozzled booster (nozzleless booster may not be affected).
(23) The benefits of the preceding embodiments will be more apparent from the Examples that follow.
EXAMPLES
Example 1
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Example 2
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(26) One or more embodiments of the present invention have been described. Nevertheless, it will be understood that various modifications may be made without departing from the spirit and scope of the invention. For example, an end-burning gas generator configuration could be employed in the selectable manner, and still demonstrate a degree of thrust increase. Accordingly, other embodiments are within the scope of the following claims.