Resiliently mounted armor panel
10408577 ยท 2019-09-10
Assignee
Inventors
Cpc classification
F41H5/023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41H5/0428
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41H7/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41H5/0457
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41H5/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41H5/0421
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F41H7/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41H5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41H5/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41H5/013
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An armor assembly having an armor panel, a base plate, and a resilient member coupled between the armor panel and the base plate is disclosed. An impact blast or projectile will strike the armor assembly and deflect the armor panel and the resilient member. The resilient member and armor panel absorb sufficient energy from the impact blast or projectile to prevent harm to underlying structures. The resilient member can be a spring or a solid member having a desired spring coefficient to protect against a certain impact load.
Claims
1. A resilient armor assembly, comprising: an armor panel; a base; a resilient member disposed between the armor panel and the base, wherein the resilient member has a spring coefficient sufficiently high to resiliently deform and absorb energy from a projectile or blast, and wherein the armor panel is free to move toward and away from the base as the resilient member compresses and expands; and wherein the resilient member comprises a coil spring and an elastomeric material, the elastomeric material being disposed at least within the coil spring, the coil spring defining a central axis, wherein the resilient member further comprises a guide member positioned within the coil spring, the guide member having a surface that extends along a direction parallel to the central axis of the spring, the elastomeric material contacting the surface of the guide member.
2. The resilient armor assembly of claim 1 wherein the resilient member comprises a plurality of discrete resilient members spaced apart over the armor panel.
3. The resilient armor assembly of claim 1 wherein the central axis of the coil spring is oriented generally normal to the armor panel.
4. The resilient armor assembly of claim 1, wherein the guide member is configured to permit the spring to move axially along the central axis.
5. The resilient armor assembly of claim 1 wherein the coil spring has a conical shape.
6. The resilient armor assembly of claim 5 wherein the thickness and pitch of the coil spring permits the spring to deform to a height substantially equal to the thickness of the wire.
7. The resilient armor assembly of claim 1 wherein the base plate comprises part of an installation or vehicle to which the armor panel is coupled.
8. The resilient armor assembly of claim 1 wherein the armor panel is nearer to a source of an expected impact or projectile than the base, such that the impact or projectile reaches the armor panel before reaching the resilient member or the base.
9. The resilient armor assembly of claim 1 wherein the base includes a base plate, and wherein the base plate is nearer to a source of an expected impact or projectile than the resilient member or the armor panel such that the impact or projectile would contact the base plate before contacting the resilient member or the armor panel.
10. The resilient armor assembly of claim 1 wherein the resilient member is made from one or more of urethane foam, silicone, steel, stainless steel, titanium, carbon fiber, ceramic, urethane, fiberglass.
11. The resilient armor assembly of claim 1 wherein the armor panel and base plate are made of ceramic reinforced carbon fiber, ceramic composite, carbon fiber, fiberglass, para-aramid fibers, aramid fibers, steel, stainless steel, a composite grid, and stainless and aluminum alloys.
12. The resilient armor assembly of claim 1, wherein the guide member has a first guide component and a second guide component, wherein the first guide component is coupled to the armor panel and the second guide component is coupled to the base plate, and wherein the first and second guide component engage together to permit the armor panel and base plate to move toward and away from one another along an axis generally normal to the surface of the armor panel and base plate.
13. The resilient armor assembly of claim 12 wherein the first guide component is a cylindrical shaft and the second guide component is a hollow cylindrical shaft configured to receive the first guide component.
14. The resilient armor assembly of claim 12 wherein the coil spring encircles the guide member.
15. The resilient armor assembly of claim 1 wherein the resilient member has a spring coefficient of approximately between 50 and 800 pounds per inch.
16. The resilient armor assembly of claim 1 wherein the resilient member covers between about 10-50% of the surface area for a given portion of the armor panel.
17. A resilient armor assembly comprising: a base plate; a resilient member coupled to the base plate, the resilient member comprising a spring and an elastomer, the elastomer being disposed at least within the spring; an armor panel coupled to the resilient member, wherein the resilient member is positioned between the base plate and the armor panel, wherein the armor panel and the resilient member are configured to absorb energy from an incoming projectile or blast impact; and a guide member between the armor panel and base plate, wherein the guide member permits movement of the armor panel toward the base plate in a direction generally normal to the armor panel and resists movement of the armor panel relative to the base plate in a direction generally parallel with a surface of the armor panel, wherein the spring defines a central axis, the guide member being positioned within the spring and having a surface that extends along a direction parallel to the central axis of the spring, the elastomeric material contacting the surface of the guide member.
18. The resilient armor assembly of claim 17 wherein the spring comprises a coil spring.
19. The resilient armor assembly of claim 18, wherein the guide member is positioned concentrically with the coil spring.
20. The resilient armor assembly of claim 17 wherein the armor panel is positioned nearer to a source of the incoming projectile or blast impact than the resilient member, such that the incoming projectile or blast impact energy would contact the armor panel and cause the resilient member to compress.
21. The resilient armor assembly of claim 17 wherein the base plate is positioned nearer to a source of the incoming projectile or blast impact than the armor panel, such that the incoming projectile or blast impact, after penetrating the base plate, impacts the armor panel and causes the resilient member to tension.
22. The resilient armor assembly of claim 17 wherein the resilient member has a spring coefficient of approximately between 50 and 800 pounds per inch.
23. A resilient armor assembly, comprising: an armor panel; a base; a resilient member disposed between the armor panel and the base, wherein the resilient member has a spring coefficient sufficiently high to resiliently deform and absorb energy from a projectile or blast, and wherein the armor panel is free to move toward and away from the base as the resilient member compresses and expands; and wherein the resilient member comprises both a coil spring and an elastomeric material together, the elastomeric material being disposed at least within the coil spring, the coil spring defining a central axis, wherein the resilient member further comprises a guide member positioned within the coil spring, the guide member having a surface that extends along a direction parallel to the central axis of the spring, the elastomeric material contacting the surface of the guide member.
24. The resilient armor assembly of claim 23, wherein the elastomeric material comprises a cylindrical member.
25. The resilient armor assembly of claim 24, wherein the elastomeric material comprises a cylindrical member with a grooved outer surface.
26. The resilient armor assembly of claim 23, wherein the elastomeric material comprises a solid layer extending between the armor panel and the base such that both of the solid layer and the coil spring connect to both of the armor panel and the base.
27. The resilient armor assembly of claim 26, wherein the coil spring is embedded within the solid layer.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Preferred and alternative embodiments of the present invention are described in detail below with reference to the following drawings. These depict particular embodiments of the invention and are not intended to limit the scope of the invention as set forth in the claims. All of the drawings are schematics rather than precise representations and are not drawn to scale.
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
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(13) In some embodiments the individual resilient members 130 include a coil spring 132 and a guide member 134 positioned within the coil spring 132. The coil spring 132 can have a spring coefficient sufficient to absorb energy from an incoming projectile such as a bullet or a blast impact. The combined resiliency of the armor panel 120 and the resilient members 130 withstands the impact of the projectile or blast. A portion of the energy is absorbed by the armor panel 120, another portion is absorbed by the resilient members 130, and yet another portion of the energy can be absorbed by the base plate 110. In some embodiments the assembly 100 is designed such that, at a given impact load, the impact will be fully absorbed by the armor panel 120 and the resilient members 130. The resilient members 130 allow the assembly 100 to weigh less and still withstand a significant impact. Conversely, the assembly 100 can weigh the same as a conventional armor and yet withstand a greater impact due to the capability of absorbing energy through the resilient members 130.
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(16) The embodiment shown in
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(20) When impacted, the guide member 134 deflects by a travel distance 144, which is determined by the dimensions of the guide member 134 and by the spring coefficient of the coil spring 132. In some embodiments, the spring coefficient is approximately 230 lbs/inch and the travel distance is approximately 1.3 inches. The travel distance can also be defined in proportion to other parameters of the assembly, such as the length of the resilient member 130 or the impact load.
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(24) The armor assemblies disclosed herein achieve a desired level of protection at a significantly lower weight threshold. Alternatively, for a given weight limit, the armor assemblies of the present disclosure offer a greater degree of protection from impact blasts and other threats.
(25) It should be understood that the present disclosure is not limited to the embodiments disclosed herein as such embodiments may vary somewhat. It is also to be understood that the terminology employed herein is used for the purpose of describing particular embodiments only and is not intended to be limiting in scope and that limitations are only provided by the appended claims and equivalents thereof.