This application claims priority to Swedish patent applications 0101581-7 filed 7 May 2001 and Swedish patent application 0200597-3 filed 27 Feb. 2002 and is the national phase under 35 U.S.C. § 371 of PCT/SE02/00851 filed 3 May 2002.
The present invention relates to a method for discharging countermeasure means, such as radar chaff or hot IR chaff, laser reflectors or equivalent from an electromechanical dispenser arrangement. The invention also relates to a dispenser arrangement designed in accordance therewith.
The most serious threat to modern fighter aircraft and transport aircraft is the self-guiding missile equipped with radar, IR or laser sensors, which can be fired either from enemy aircraft or from the ground. In order to protect own aircraft, these are therefore now normally provided with equipment so as to be capable, when they are attacked or fear attack, of dispensing various types of countermeasure means. An example of such equipment is the BOL dispenser produced and patented by ourselves. In this connection, reference may be made to our U.S. Pat. Nos. 4,417,709 and 4,650,092. By means of this type of dispenser, the dispensing of countermeasure means can be simply controlled and adapted to the threat situation existing at the time. A very common form of our dispenser, which is of electromechanical type, is the kind which is built into the load-bearing beam of the aircraft and can therefore serve as a mounting for other load at the same time. This type of countermeasure dispenser, which has become widely used within a large number of different air forces, nevertheless has the disadvantage that the quantity of countermeasure means it can contain is limited by the normal outer dimensions of the load-bearing beam. Given that the various sensors of the missiles are becoming increasingly sophisticated, however, demands are becoming more exacting with regard to the quantity of countermeasure means necessary for each protective action and the rapidity with which the countermeasure means have to be spread in order for it to be possible for the sensors of an attacking missile to be deceived and the own aircraft to manage to move out of the way. At the same time, access to various missile weapons has increased markedly, as a result of which the need for it to be possible to perform more or longer protective actions within one and the same mission has increased to a corresponding extent.
The present invention therefore relates to an improved discharging method and an improved type of spreader for countermeasure means adapted for a greater quantity of countermeasure means carried, which thus makes possible more or longer countermeasure actions one after another. The countermeasure types principally concerned in this connection are conventional radar chaff made chiefly from aluminized foil or fibres, hot IR chaff, and also laser-reflecting fibres or foils.
With the present invention, a cloud or a screen of protective means is therefore produced around the carrier aircraft by means of a method which involves unit-packed countermeasure means being spread successively but in one and the same operation from a number of magazines arranged parallel to one another, spreading taking place in a laterally directed manner transversely to the flying direction of the aircraft serving as the carrier. In this connection, each magazine is given its own discharging direction which preferably extends radially outwards from a common main axis, the discharging directions also being uniformly distributed all the way around. As the unit packs are designed in such a manner that, as soon as they have left the spreader, they will be broken up by the relative wind and thus in turn spread their contents, a protective cloud is thus produced rapidly, which conceals the carrier aircraft and confuses missiles aimed at it.
Inside each magazine included in the arrangement according to the invention, a simple feed spring, for example, can serve for feeding the unit countermeasure packs to a discharging location specific to the magazine in question. Provided that the discharging locations of all the magazines are arranged in one and the same transverse plane arranged transversely to the flying direction of the aircraft, one and the same rotating discharger or ejector can be used for successively, as it passes the magazines, ejecting the countermeasure pack next in order located there. If it is desirable to use this variant, the various magazines should therefore be arranged parallel to one another around a centre axis, the centre axis also constituting a bearing point for the rotating discharger which can itself be in the form of a cam which, during its rotation past a countermeasure pack present in each discharging location, moves the pack in the discharging direction until it has completely left the discharging location. In order to bring about the desired radial discharge, the various countermeasure packs should also be guided up in the desired discharging direction until the moment when these have completely left the spreader. In this connection, the various countermeasure packs are preferably arranged stacked on top of one another in the magazines, with their respective greatest extents lying in the lateral direction transversely to the feed direction of the dispenser. The spreading of the countermeasure packs is thus carried out in the longitudinal direction of the packs, that is to say transversely to the feed direction of the magazines.
The spreader arrangement described above in terms of its basic principles therefore comprises a number of magazines arranged parallel to one another around a central axis, and an ejector arranged rotatably about this axis. It should be possible for the whole of this arrangement, without major problems, to be built into one of the rocket capsules intended for originally unguided attack rockets, which are available in great numbers for most combat and transport aircraft in service today. This could be a good use for at least some surplus rocket capsules, of which there must be many because, in the current situation with existing anti-aircraft missiles, it is only entirely unprotected targets which are likely to be attacked using unguided attack rockets. If rebuilding such a rocket capsule for this purpose is anticipated, it may be necessary to manufacture a new nose cone for the capsule because the nose cone, in the original state, is often discarded before the rockets are fired, but, when used as a countermeasure dispenser, the nose cone needs only to be provided with discharger openings adapted to the intended dispensing directions, if the dispensing of countermeasure means takes place in the front part of the dispenser.
A further improvement of the spreading of countermeasure means can also be brought about by arranging angled swirl plates in close proximity to the discharging openings through which the countermeasure packs leave the spreader. By means of such swirl plates, a turbulent air flow is brought about just around the discharging opening of the spreader, and the spreading of the countermeasure means itself is thus improved as soon as it has left its unit pack. Especially in the case of rapid combat aircraft, it will probably also be suitable to arrange some sort of wind deflector in the flying direction of the plane in front of each discharging opening, because the unit packs could otherwise, in spite of high discharging speed, be broken by the relative wind even before they have completely left their discharging opening. In this connection, these wind deflectors can be in the form of a bellied projection, a guide rail in the form of an angled plate or equivalent.
As already indicated, the dispenser arrangement according to the invention can be contained in a carrier with in principle the same outer configuration as conventional rocket launchers or consisting of a rebuilt rocket launcher of such a type, of which there have long been great quantities intended for all combat and transport aircraft in service. The carrier is therefore in the form of an oblong cylindrical capsule, and this shape provides room for a number of magazines arranged side by side extending in the longitudinal direction of the capsule and also a drive arrangement, arranged centrally in the middle of the capsule, for a rotating discharger which, when it is activated, during its rotation successively ejects one after another the unit countermeasure packs which lie next in order in the discharging locations of the magazines. The actual discharging of the unit countermeasure packs, which according to the invention is to take place radially in relation to the longitudinal axis of the carrier capsule, can of course be arranged in either the front or the rear end of the carrier capsule and/or somewhere in between.
In an especially preferred arrangement, magazines of standard countermeasure packs are therefore arranged around a central space, in which the drive arrangement for the rotating discharger is arranged, and, at the same time, each of the magazines is provided with its own discharging location, and all these discharging locations are positioned in a common plane which is arranged transversely to the discharging direction of the magazines and in which the discharger also rotates when it is activated. With this setup, a single discharger can therefore serve all the magazines by, during its rotation, successively passing the discharging locations of the various magazines. Each magazine then has its own guide path for controlling the general ejection of the countermeasure packs, while the feed of the unit packs within each magazine can be effected by means of separate feed springs or by a common ball screw which, by means of separate feed arms, effects the feed of the countermeasure packs within all the magazines.
The packs can contain previously known types of interference material and reflective material as mentioned above, and, when these packs have left the spreader, they open and form material clouds capable of diverting the threat concerned.
The invention is not limited to the embodiments shown above by way of example but can undergo modifications within the scope of the patent claims below.
The invention will be described in greater detail below by means of illustrative embodiments with reference to accompanying drawings, in which:
The spreader 1 for countermeasure means shown in
For further details, reference is also made to
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Number | Date | Country | Kind |
---|---|---|---|
0101581 | May 2001 | SE | national |
0200597 | Feb 2002 | SE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/SE02/00851 | 5/3/2002 | WO | 00 | 5/19/2004 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO02/093102 | 11/21/2002 | WO | A |
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Number | Date | Country | |
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20040200382 A1 | Oct 2004 | US |