MULTI-CURVE STEEL BODY ARMOR AND METHOD OF MANUFACTURING SAME
20210404772 · 2021-12-30
Inventors
Cpc classification
B21D5/02
PERFORMING OPERATIONS; TRANSPORTING
F41H5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41H5/023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41H5/045
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F41H5/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B21D5/02
PERFORMING OPERATIONS; TRANSPORTING
F41H1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A steel armor plate and method of manufacturing is described. The armor plate has three curves, a first curve about an axis that parallels the length of the armor plate, and two additional curves about axes that parallel the width of the armor plate. A die for manufacturing said plate is described, the die being formed of a stack of metal plates, each plate having a curve that substantially matches the first curve, the stack of plates being arranged in a step-down-then-step-up fashion to form a concavity that approximates one of the two additional curves.
Claims
1. A ram-and-die arrangement for imparting bends to a ballistic resistant armor plate, the arrangement comprising: a die comprising a first and second end plates each having a concave edge with a first radius of curvature and a plurality of interior support plates between the first and second end plates, each of the interior support plates also having a concave edge with a radius of curvature, each of the support plates having a center height, where the center heights of the support plates are arranged in a step-down, step-up fashion with respect to center heights of the end plates; a ram having a convex curved edge, and a stopper disposed adjacent to one of the end plates of the die, wherein, the ram, die and stopper are arranged such that a curved armor plate having a convex front side and a concave back side, may be placed over the die and against the stopper such that its convex front side is supported by the concave edges of the first and second end plates, and is positioned such that a predetermined location on the plate is below the convex edge of the ram.
2. The arrangement of claim 1, wherein the radii of curvature of the concave edges of the support plates is the same.
3. The arrangement of claim 2, wherein the radii of curvature of the concave edges of the support plates is the same as the first radius of curvature.
4. The arrangement of claim 1, wherein the first radius of curvature matches a radius of curvature associated with the convex front side of the armor plate.
5. The arrangement of claim 1, wherein the convex edge of the ram has a radius of curvature, which matches the first radius of curvature.
6. The arrangement of claim 1, wherein the predetermined location is coincident with a concave edge of a support plate that is maximally vertically offset with respect to the concave edge of one of the end plates as compared to the other support plates.
7. The arrangement of claim 1, wherein the ram and the stopper are arranged such that, when an armor plate is placed against the stopper, the ram is positioned to contact the armor plate at a location between 1/4th and 1/3 along a central axis running the length of an inserted armor plate.
8. The arrangement of claim 1, wherein the center heights of the interior support plates, together, define a symmetrical, concave up shape having a vertex.
9. The arrangement of claim 8, wherein the concave edge of the ram is arranged over the vertex.
10. The arrangement of claim 8, wherein the concave edge of the ram is arranged to be offset from the vertex.
11. The arrangement of claim 1, wherein the center heights of the interior support plates, together, define an asymmetrical, concave up shape.
12. A method of fabricating an armor plate, the method comprising: providing a die comprising a first and second end plates each having a concave edge with a first radius of curvature and a plurality of interior support plates between the first and second end plates, each of the interior support plates also having a concave edge with a radius of curvature, each of the support plates having a center height, where the center heights of the support plates are arranged in a step-down, step-up fashion with respect to center heights of the end plates; providing a ram having a convex curved edge; placing an armor plate having a convex front side and a concave back side over the die, such that the convex front side is supported by the concave edges of at least one of the first and second end plates; and contacting the armor plate with the ram and bending the armor plate at a position along the armor plate between the first and second end plates.
13. The method of claim 12, wherein the armor plate is supported by one or more of the concave edges of the interior support plates as it is being bent.
14. The method of claim 12, further including providing a stopper disposed adjacent to one of the end plates of the die and placing the armor plate against the stopper.
15. The method of claim 14, wherein, the ram, die, stopper and armor plate are arranged such that when an armor plate is placed against the stopper, the ram is positioned to contact the armor plate at a location between ¼th and ⅓ along a central axis running the length of an inserted armor plate.
16. The method of claim 12, wherein the center heights of the interior support plates, together, define a symmetrical, concave up shape having a vertex.
17. The method of claim 16, wherein the concave edge of the ram is arranged over the vertex.
18. The arrangement of claim 16, wherein the concave edge of the ram is arranged to be offset from the vertex.
19. The arrangement of claim 12, wherein the center heights of the interior support plates, together, define an asymmetrical, concave up shape.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0018] The invention will be more fully understood by referring to the following Detailed Description of Specific Embodiments in conjunction with the Drawings, of which:
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
DETAILED DESCRIPTION OF SPECIFIC EMBODIMENTS
[0029] References throughout this specification to “one embodiment,” “an embodiment,” “a related embodiment,” or similar language mean that a particular feature, structure, or characteristic described in connection with the referred to “embodiment” is included in at least one embodiment of the present invention. Thus, appearances of the phrases “in one embodiment,” “in an embodiment,” and similar language throughout this specification may, but do not necessarily, all refer to the same embodiment. It is to be understood that no portion of disclosure, taken on its own and in possible connection with a figure, is intended to provide a complete description of all features of the invention.
[0030] In addition, the following disclosure may describe features of the invention with reference to corresponding drawings, in which like numbers represent the same or similar elements wherever possible. In the drawings, the depicted structural elements are generally not to scale, and certain components are enlarged relative to the other components for purposes of emphasis and understanding. It is to be understood that no single drawing is intended to support a complete description of all features of the invention. In other words, a given drawing is generally descriptive of only some, and generally not all, features of the invention. A given drawing and an associated portion of the disclosure containing a description referencing such drawing do not, generally, contain all elements of a particular view or all features that can be presented is this view, for purposes of simplifying the given drawing and discussion, and to direct the discussion to particular elements that are featured in this drawing. A skilled artisan will recognize that the invention may possibly be practiced without one or more of the specific features, elements, components, structures, details, or characteristics, or with the use of other methods, components, materials, and so forth. Therefore, although a particular detail of an embodiment of the invention may not be necessarily shown in each and every drawing describing such embodiment, the presence of this detail in the drawing may be implied unless the context of the description requires otherwise. In other instances, well known structures, details, materials, or operations may be not shown in a given drawing or described in detail to avoid obscuring aspects of an embodiment of the invention that are being discussed.
[0031] The invention as recited in claims appended to this disclosure is intended to be assessed in light of the disclosure as a whole.
[0032] In accordance with preferred embodiments of the present invention, methods and apparatus are disclosed for forming a hardened steel trauma plate such that it comprises at least three curves so that it more naturally conforms to the shape of the human torso.
[0033]
[0034] In the embodiment of
[0035] In certain embodiments, the armor plate 100 has a faceted tombstone shape (i.e., a rectangle with cut or rounded corners) including shoulder cutouts at the end 110 of the armor plate 100. In the embodiment of
[0036] More specifically, in certain embodiments, the triple-curved armor plate 100 comprises a trapezoidal portion 160, which includes first end 110 as a shorter base, and an integral rectangular portion 170 extending to opposing second end 120. Further, in some embodiments, the trapezoidal portion 160 is an isosceles trapezoid having two base angles 164 and 166 that are equal in measure. Moreover, in some embodiments, altitude 162, which is the distance at right angle from one base, to the other base of the trapezoidal portion 160, is between about ⅓ to ½ of a length 172 of the rectangular portion 170. As described herein, “about” is used to capture the inherent measure errors. In other embodiments, altitude 162 of trapezoidal portion 160 is about equal to length 172 in measure to ensure better arm and shoulder movements and comfort when a user wears the triple-curved armor plate.
[0037] Referring now to
[0038] Referring to
[0039] Referring to
[0040] In the embodiment of
[0041] The bends about second 220 and third 230 axes create angled upper 270 and lower 275 portions of plate 100. The angle of these upper and lower 270, 275 portions make with approximate central planar portion 265 is approximately 5 degrees, measured along the vertical centerline of plate 110, i.e., along a projection of axis 210. Off of the projection of axis 210, the bends about axes 220, 230 interact with the vertical bend about axis 210 to create a compound angle in angled upper 270 and angled lower 275 portions with respect to approximate planar center portion 265.
[0042] In the embodiment of
[0043] In certain embodiments, first radius of curvature 212 is greater than second radius of curvature 222 or third radius of curvature 232. Further, second radius of curvature 222 substantially equals to third radius of curvature 232. As described herein, “substantially” means that the two radii of curvature differ from each other within 5% of the length of the radius. More specifically, a curvature defined by second radius of curvature 222 substantially matches another curvature defined by third radius of curvature 232.
[0044] In certain embodiments, a curvature defined by radius of curvature 222 or 232 forms about a 5 degree angle with respect to a tangent line 224 (
[0045] In embodiments where plate 100 is an 8×10″ plate, the top and bottom bends along axes 220 and 230 are placed about 2.5″ from the top and bottom edges 110, 120 of plate 100. For 10×12″ and 10×14″, the top and bottom bends are placed about 3.25″ from the top and bottom edges of the plate 100.
[0046] In certain embodiments, armor plate 100 is formed from AR500 steel, which has a thickness of about 0.25″, but armor plate 100 can also be formed from any other ballistic resistant steel in any thickness capable of defeating a designed for threat. As described herein, “about” is used to capture the internal measure errors. In certain embodiments, ballistic resistant steel having Brinell hardnesses of between about 400 and about 600 is acceptable depending on the application. In certain embodiments, the AR500 steel has a Brinell hardness of between about 495 and about 515, and particularly between about 505 and about 515 is preferred. In other embodiments, plate 100 is formed of AR550 steel having a Brinell hardness of between 545 and 560. In yet other embodiments, plate 100 is formed of AR650 steel having a Brinell hardness of between 570 and 670. In embodiments using AR550 steel, the thickness of the steel portion of plate 100 is again about 0.25″. In embodiments using AR650 steel, which allows for a reduced steel thicknesses to be used, plate 100 has a thickness of about 3/16″.
[0047] In the embodiment of
[0048]
[0049] In the embodiment of
[0050] The embodiment of
[0051] In the embodiment of
[0052]
[0053] A method of manufacturing a triple-curved armor plate 100 using ram-and-die arrangement 500 pictured in
[0054] The curved plate with first radius of curvature 212 is placed over die 510 one end at a time with concave back surface facing up toward ram 520 and the convex front surface engaged and supported by the curved surfaces of endplates 705, 710, which have the same radius of curvature 212. The end of curved plate 100 is engaged by a metal stopper 540 (
[0055] A first end, for example, end 110 of the curved plate 100 with first radius of curvature 212 is inserted into die 510 and ram 520 presses down on the curved plate to form second radius of curvature 222 along second axis 220 at longer base 168 of trapezoidal portion 160 (
[0056] Both the radius of the transverse bend and the position of the transverse bend are adjustable by varying the position of the stopper 540, the lateral position of the ram 520 with respect to end plates 705, 710, the plunge distance 720 and the number of support plates 715a-g between the end plates. In the embodiment of
[0057] After the first transverse bend of radius 222 is imparted, the ram returns to its up position, and plate 100 is reversed and the process is repeated. The opposing second end 120 of the curved plate is inserted into die 510 and ram 520 presses down on the curved plate to form third radius of curvature 232 along third axis 230 between bottom ¼th and ⅓rd of rectangular portion 170 (
[0058] During each of the transverse bending steps described above, the down facing convex surface of plate 100 is supported by the concave up facing curved edges of endplates 705 and 710 of die 510. In one embodiment, the curvature of the concave upward facing edges of plates 705, 710 (512) is substantially the same as the curvature 212 of the plate 100, and is the same as the convex curvature of the ram. The effect of this is that the curvature 212 of the bend of the plate along the vertical axis is preserved while the first and second transverse bends are imparted to the plate.
[0059] The method further comprises coating the triple-curved armor plate 100 with spalling resistant polyurea elastomer based material. In certain embodiments, the polyurea elastomer coating is applied only to front surface 150. In certain embodiments, the polyurea elastomer coating is applied to both front surface 150 and rear surface 240. In certain embodiments, the polyurea elastomer coating comprises a thickness of about 0.25″ on the front surface 150.
[0060] In certain embodiments, the polyurea elastomer based coating is applied to the planer member before any of the bending steps. In further embodiments, the polyurea elastomer bases coating is applied after all the bending steps. In yet further embodiments, the polyurea elastomer based coating can be applied after the planar member is bent to form radius of curvature 212 along axis 210.
[0061] While the preferred embodiments of the present invention have been illustrated in detail, it should be apparent that modifications and adaptations to those embodiments may occur to one skilled in the art without departing from the scope of the present invention.