Reactive armor
11512930 · 2022-11-29
Inventors
Cpc classification
F41H5/0492
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F42B1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A reactive armor unit has a first explosion center and a second explosion center, the unit being configured with a predetermined distance between the first and the second explosion centers.
Claims
1. A reactive armor unit comprising a first explosion center and a second explosion center, the unit being configured with a predetermined distance between the first and the second explosion centers, the predetermined distance being selected such that the second explosion center is located behind an initial detonation of an incoming tandem warhead relative to an incoming direction of said tandem warhead, wherein said second explosion center is mounted on a movable element to extend away from said reactive armor unit to a second predetermined distance from said first explosion center.
2. The reactive armor unit of claim 1, further comprising a shield element between the first explosion center and the second explosion center.
3. The reactive armor unit of claim 1, wherein said movable element is controllably movable between said predetermined distances.
4. The reactive armor unit of claim 1, having a first state in which said second explosion center is extended outwards on said movable element and a second state in which said second explosion center is withdrawn into said reactive armor unit.
5. The reactive armor unit of claim 1, further comprising a third explosion center at a third predetermined distance from said first explosion center and at a fourth predetermined distance from said second explosion center.
6. The reactive armor unit of claim 5, wherein said third explosion center is mounted on a movable element to extend outwards of said reactive armor unit to a fifth predetermined distance from said first explosion center, or wherein said third explosion center is on said movable element at a sixth predetermined distance along said moving element from said second explosion center.
7. The reactive armor unit of claim 1, further comprising a trigger mechanism for activation by an incoming warhead, and a delay mechanism configured to define respective predetermined delays to each of said explosion centers.
8. The reactive armor unit of claim 7, wherein at least one of said predetermined delays is selected to ensure that at least one of said explosion centers is timed to explode at a time suitable for disruption of pressure wave formation or structural integrity of a secondary detonation of said incoming tandem missile.
9. The reactive armor unit of claim 7, wherein said delay mechanism comprises one member of the group consisting of: a predetermined length of explosive cord, an electronic timer, a length of high explosive and a tube of high explosive.
10. The reactive armor unit of claim 7, wherein at least one of said predetermined distances is selected to ensure that at least one of said explosion centers is located behind a primary detonation of an incoming tandem missile and in a position suitable for disruption of pressure wave formation or structural integrity of a secondary detonation of said incoming tandem missile.
11. The reactive armor unit of claim 7, having a first surface for orientation parallel to armor being protected, wherein said first explosion center comprises first and second sheets of steel placed at an acute angle to said first surface, or having an outer surface following a contour defined by said first and second sheets of steel at said acute angle.
12. The reactive armor unit of claim 11, said predetermined distance being defined by an outer extension extending from said first surface to accommodate said second explosion center.
13. The reactive armor unit of claim 12, further comprising an opening to allow an explosion center to be extended outwardly therefrom.
14. The reactive armor unit of claim 12, wherein at least one of said explosion centers comprises a hemispherical charge.
15. The reactive armor unit of claim 14, wherein said hemispherical charge comprises at least one member of the group consisting of: at least one hollow section; a metal shell; a metal shell enclosing at least one hollow section; and at least one hollow section lined with a metal liner; a metal shell comprising a first metal around an outer contour of said charge and a second metal different from said first metal.
16. The reactive armor unit of claim 12, comprising a first surface for placing flush on armor to be protected and having a plurality of lengths of shaped charges, each length of shaped charge being oriented differently with respect to said first surface, said orientations being selected to create a contiguous area of self-defense in front of said unit.
17. The reactive armor unit of claim 1, comprising a shield element in between said first explosion center and said second explosion center, the shield element being positioned to shield said second explosion center from a blast of said first explosion center thereby to isolate explosions of each explosion center.
18. The reactive armor unit of claim 17, having a first surface for orientation parallel to armor being protected, and a first explosion center comprising sheets of steel placed at an acute angle to said first surface, the reactive armor unit further having an outer facing surface following a contour defined by said sheets of steel at said acute angle.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
(1) Some embodiments of the invention are herein described, by way of example only, with reference to the accompanying drawings. With specific reference now to the drawings in detail, it is stressed that the particulars shown are by way of example and for purposes of illustrative discussion of embodiments of the invention. In this regard, the description taken with the drawings makes apparent to those skilled in the art how embodiments of the invention may be practiced. In the drawings:
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DESCRIPTION OF SPECIFIC EMBODIMENTS OF THE INVENTION
(30) The present invention, in some embodiments thereof, relates to active armor and an active armor system and, more particularly, but not exclusively, to reactive armor that is intended to defeat tandem missiles.
(31) Before explaining at least one embodiment of the invention in detail, it is to be understood that the invention is not necessarily limited in its application to the details of construction and the arrangement of the components and/or methods set forth in the following description and/or illustrated in the drawings and/or the Examples. The invention is capable of other embodiments or of being practiced or carried out in various ways.
(32) Referring now to the drawings,
(33) A shield element 16 is located between the first explosion center 12 and the second explosion center 14. The purpose of the shield element is to ensure that two independent blasts are created that operate in different directions and that the two blasts do not seriously interfere with each other.
(34) The first explosion center comprises an assembly 16 made up of a first steel plate 18 followed by a detonator 20. Behind the detonator is a second steel plate 22, a layer of explosive 24 and a third steel plate 26. The assembly is at an acute angle to the horizontal.
(35) Connection 28 connects the detonator to the second explosion center 14. The second explosion center has a rounded charge 30 and is located on a movable element 32 which allows it to be extended in the direction of arrow 34. The extended position may be assumed as the armored vehicle requiring protection enters the battle zone, the arm being retracted at other times. Thus the reactive armor has an active or battle-ready state in which the second explosive center is extended outwards on the movable element and a second, passive, state in which the second explosive center is withdrawn into the reactive armor unit 10. The second explosion 15 center could be extended outwardly horizontally or vertically or in any other direction as desired.
(36) The unit is provided inside a rectangular casing 36 which is placed flush against the armor to be protected.
(37) Reference is now made to
(38) The detonator 20 includes a trigger mechanism for activation by an incoming warhead, and there is additionally provided a delay mechanism to define respective predetermined delays to each of the explosion centers, so that each explosion center 30 detonates at a time calculated to cause maximal disruption to a specific part of an incoming tandem warhead. Thus, one of the delays may ensure that a specific explosion center explodes at the exact moment to cause maximal disruption to pressure wave formation of the secondary detonation of the incoming tandem missile.
(39) The delay mechanism may be based on a set length of explosive cord such as cord 28 in
(40) The use of a set distance, and where necessary a moving arm to reach that distance, may be to ensure that one of the explosion centers is located behind a primary detonation of the incoming tandem missile and in a position suitable for disruption of pressure wave formation of a secondary detonation of the same incoming tandem missile. The distance, together with the shield and the timing, may ensure that the blast disrupting the secondary detonation is not interfered with either by the primary explosion of the active armor, nor by the primary detonation of the incoming tandem missile.
(41) The reactive armor unit is placed flush on the surface of the armor to be protected and has an inside surface which is placed directly in contact with the armor of the tank. The first explosion center 12 is made up of sheets of steel as discussed, and these are placed at an acute angle to the inside surface.
(42) In
(43) In
(44) In
(45) As shown in all of
(46) An opening may be provided at the end of extension 64 to allow an explosion center to be extended outwardly when the necessary distance is larger than can be accommodated by the size of the casing.
(47) As will be discussed in greater detail below, an electrical cord, or a detonation cord or a pipe of explosive or a tube of explosive around telescope sections of an extension arm may be used to connect the two explosion centers and ensure that one explodes with a preset delay after the other.
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(52) Reference is now made to
(53) It is appreciated that two layers are merely exemplary, and any number of layers may be provided, and the gaps in between may be filled with steel or any other metal or composite, for example as shown in
(54) Reference is now made to
(55) As before, the two layers are merely exemplary, and any number of layers may be provided, and the gaps in between may be filled with steel or any other metal or composite, for example as shown in
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(59) The second and subsequent explosion centers may comprise a hemispherical charge 30, which is shown in greater detail in
(60) As shown in
(61) First explosion center 12 may be supported in its angled position by filler 112 which may be for example polystyrene. The blasting cord is connected to blast booster 114 which detonates charge 30. Charge 30 may be encased in metal casing 68. A typical thickness for the casing is 4 mm, for the shield is 10 mm and the second explosion center may be 120 mm in length. The construction for the primary explosion center is typically 300×250 mm and the distance between the first and second explosion centers may be varied.
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(64) The blasting cord is connected to blast booster 114 which detonates charge 30. Charge 30 may be encased in metal casing 68. A typical thickness for the casing is 4 mm, for the shield is 10 mm and the second explosion center may be 120 mm in length. The construction for the primary explosion center is typically 300×250 mm and the distance between the first and second explosion centers may be varied. The construction shown in
(65) Referring now to
(66) Here the shell is shown by way of example to be 4 mm in thickness. The metal used in the liner and that used in the shell may be the same, or, as illustrated, may be different. The liner may for example be copper.
(67) The hemispherical charge of
(68) Referring now to
(69) Reference is now made to
(70) In an embodiment, the shaped charges may explode sequentially in a controlled manner. In an alternative, the shaped charges may be provided with different kinds of explosive that explode at different rates, for example setting up a prolonged effect.
(71) The explosives may be augmented with particles that are ejected into the direction of the incoming missile.
(72) Although the shaped charges are shown as wedges, the shaping could alternatively be rounded, say to form an explosive lens.
(73) Detail 108 shows a perspective view of one of the lengths of shape charge 104. The ERA according to any of the present embodiments may be connected to a radar, or other available sensing system, which may provide advance warning of an incoming projectile and may align the parts of the ERA in a manner that is optimal for the expected strike, and/or activate parts as necessary.
(74) In an embodiment, multiple ERA modules are attached to a given vehicle and the radar or other sensing system may select which of the different modules to operate.
(75) Operation may be prior to or upon impact.
(76) Alternatively, or additionally, individual modules may be connected to their own sensor units. In a further alternative, suitable control may ensure that a sequence of events is initiated using elements from several modules.
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(78) In the present disclosure, the terms “comprises”, “comprising”, “includes”, “including”, “having” and their conjugates mean “including but not limited to”.
(79) The term “consisting of” means “including and limited to”.
(80) As used herein, the singular form “a”, “an” and “the” include plural references unless the context clearly dictates otherwise.
(81) It is appreciated that certain features of the invention, which are, for clarity, described in the context of separate embodiments, may also be provided in combination in a single embodiment. Conversely, various features of the invention, which are, for brevity, described in the context of a single embodiment, may also be provided separately or in any suitable subcombination or as suitable in any other described embodiment of the invention. Certain features described in the context of various embodiments are not to be considered essential features of those embodiments, unless the embodiment is inoperative without those elements.
(82) Although the invention has been described in conjunction with specific embodiments thereof, it is evident that many alternatives, modifications and variations will be apparent to those skilled in the art. Accordingly, it is intended to embrace all such alternatives, modifications and variations that fall within the spirit and broad scope of the appended claims.
(83) All publications, patents and patent applications mentioned in this specification are herein incorporated in their entirety by reference into the specification, to the same extent as if each individual publication, patent or patent application was specifically and individually indicated to be incorporated herein by reference. In addition, citation or identification of any reference in this application shall not be construed as an admission that such reference is available as prior art to the present invention. To the extent that section headings are used, they should not be construed as necessarily limiting.