Kinetic air defense
09671200 ยท 2017-06-06
Assignee
Inventors
Cpc classification
F41G7/308
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41G7/224
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41G7/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41G7/2233
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41F3/065
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F41H11/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41G7/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A missile defense system on an aircraft for destroying threats to the aircraft. The defense system includes at least one miniature guided missile mounted in a launch tube on the aircraft, where the guided missile includes a target acquisition and seeker system. The system also includes at least one sensor on the aircraft for acquiring a target threat, and a controller on the aircraft receiving signals from the at least one sensor. The controller generates a fire control solution that is provided to the at least one guided missile that directs the guided missile once it is fired from the launch tube towards the target threat, and the seeker system on the guided missile acquires the target once it is launched from the aircraft so as to destroy the target.
Claims
1. A missile defense system on an aircraft for destroying threats to the aircraft, said defense system comprising: at least one guided missile mounted in a launch tube on the aircraft, said guided missile including a target acquisition and seeker system; at least two sensors on the aircraft for acquiring a target, including a cueing sensor and a tracking sensor, where the cueing sensor identifies the target and the tracking sensor tracks the target; and a controller on the aircraft responsive to signal from the at least ene two sensors, said controller generating a fire control solution that is provided to the at least one guided missile that directs the guided missile once the guided missile is fired from the launch tube towards the target, wherein the seeker system on the guided missile acquires the target once the guided missile is launched from the aircraft so as to destroy the target.
2. The defense system according to claim 1 wherein the at least one guided missile is a plurality of guided missiles.
3. The defense system according to claim 2 wherein at least some of the plurality of guided missiles are combined as a group of guided missiles on a common launch platform.
4. The defense system according to claim 3 wherein the plurality of guided missiles are on multiple launch platforms.
5. The defense system according to claim 3 wherein the launch platform is extendable and retractable relative to an aircraft outer surface.
6. The defense system according to claim 1 wherein the at least one guided missile is provided on the aircraft outside of a main offensive weapons bay on the aircraft.
7. The defense system according to claim 1 wherein the cueing sensor is an optical sensor and the tracking sensor is a radar sensor.
8. The defense system according to claim 1 wherein the cueing sensor and the tracking sensor are optical sensors.
9. The defense system according to claim 1 wherein the at least one guided missile is deployable for defensive purposes only.
10. The defense system according to claim 1 wherein the target is an offensive missile.
11. The defense system according to claim 1 wherein the aircraft is a military fighter aircraft.
12. A missile defense system on a military fighter aircraft for destroying incoming missile threats to the aircraft, said defense system comprising: a plurality of precision guided missiles mounted in a plurality of launch tubes, where the plurality of launch tubes are part of one or more launch platforms deployable on the aircraft, each guided missile including a target acquisition and seeker system; at least two sensors on the aircraft for acquiring a target missile, including an optical cueing sensor and a radar tracking sensor, where the cueing sensor identifies the target missile and the tracking sensor tracks the target missile; and a controller on the aircraft responsive to signals from the at least two sensors, said controller generating a fire control solution that is provided to at least one of the guided missile that directs the guided missile once the guided missile is fired from the launch tube towards the target missile, wherein the seeker system on the guided missile acquires the target missile once the guided missile is launched from the aircraft so as to destroy the target missile.
13. The defense system according to claim 12 wherein the one or more launch platforms are extendable and retractable relative to an aircraft outer surface.
14. The defense system according to claim 12 wherein the guided missiles are provided on the aircraft outside of a main offensive weapons bay on the aircraft.
15. A missile defense system on a military fighter aircraft for destroying incoming missile threats to the aircraft, said defense system comprising: a plurality of precision guided missiles mounted in a plurality of launch tubes, where the plurality of launch tubes are part of one or more launch platforms deployable on the aircraft, each said guided missile including a target acquisition and seeker system, wherein the guided missiles are provided on the aircraft outside of a main offensive weapons bay on the aircraft, and wherein the launch platform is extendable and retractable relative to an aircraft outer surface; at least two sensors on the aircraft for acquiring a target missile, including an optical cueing sensor and a radar tracking sensor, where the cueing sensor identifies the target missile and the tracking sensor tracks the target missile; and a controller on the aircraft responsive to signals from the at least two sensors, said controller generating a fire control solution that is provided to at least one of the guided missile that directs the guided missile once the guided missile is fired from the launch tube towards the target missile, wherein the seeker system on the guided missile acquires the target missile once the guided missile is launched from the aircraft so as to destroy the target missile.
16. The defense system according to claim 15 wherein at least some of the plurality of guided missiles are combined as a group of guided missiles on a common launch platform.
17. The defense system according to claim 16 wherein the plurality of guided missiles are on multiple launch platforms.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE EMBODIMENTS
(5) The following discussion of the embodiments of the invention directed to a mini self-defense missile (MSDM) system is merely exemplary in nature, and is in no way intended to limit the invention or its applications or uses. For example, the MSDM system will be discussed herein in connection with a high performance military aircraft. However, as will be appreciated by those skilled in the art, the MSDM system may have application for any airborne platform, such as bombers, tankers, helicopters, corporate jets, etc.
(6) The present invention proposes an anti-missile kinetic defense system deployable on an aircraft that includes a plurality of mini guided munitions or missiles employed solely for defensive purposes and fireable from one or more missile pods positioned on the aircraft, where the missile pods are separate from the main offensive weapons bay on the aircraft. The kinetic defense system can use sensors already available on the aircraft for object and threat detection. The missiles that are fired from the pod are guided to the incoming target threat so that the threat is destroyed at a safe distance from the aircraft.
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(8) The MSDM system 12 is a defensive kinetic weapons system that employs miniature precision guided munitions or missiles that are fired from the aircraft 10 to destroy incoming missiles or other objects intended to destroy the aircraft 10. The MSDM system 12 includes a plurality of missile pods 20 located at various locations on the aircraft 10. In this non-limiting example, the aircraft 10 includes six of the pods 20, although any number of the missile pods 20 may be applicable for the particular aircraft. Each of the pods 20 is shown in its retracted position on the aircraft 10 in
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(10) The system 12 includes a controller 32 for controlling the acquisition of the potential target and launching of the missiles 28. As mentioned above, the MSDM system 12 uses existing sensors on the aircraft 10 to detect incoming missile threats, and then launches the guided missiles 28 from the pods 20 to intercept and destroy the incoming missile target. In one embodiment, for example, an optical cueing sensor 34 on the aircraft 10 identifies an incoming target threat in a general location approaching the aircraft 10, and then a radar tracking sensor 36 tracks the target threat in response to a cue from the optical cueing sensor 34. Alternately, the tracking sensor could be an optical sensor.
(11)
(12) The foregoing discussion discloses and describes merely exemplary embodiments of the present invention. One skilled in the art will readily recognize from such discussion and from the accompanying drawings and claims that various changes, modifications and variations can be made therein without departing from the spirit and scope of the invention as defined in the following claims.