Projectile with circumferential and/or longitudinal groove
20250354787 ยท 2025-11-20
Inventors
Cpc classification
F42B12/367
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F42B12/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F42B33/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F42B30/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The present invention relates to a projectile, in particular a full metal jacket projectile or partial metal jacket projectile, for ammunition, for example with a caliber of at most 20 mm, in particular of at most 13 mm, comprising an at least partially hollow or solid projectile body with a circumferential and/or longitudinal groove arranged on its inner and/or outer surface, which transitions seamlessly into the adjacent inner and/or outer surfaces of the projectile body and/or has a radius of at least 0.05 mm.
Claims
1. Projectile, in particular full metal jacket or partial metal jacket projectile, for ammunition, for example with a caliber of at most 20 mm, in particular of at most 13 mm, comprising an at least partially hollow or solid projectile body with a circumferential and/or longitudinal groove arranged on its inner and/or outer surface, which transitions seamlessly into the adjacent inner and/or outer surfaces of the projectile body and/or has a radius of at least 0.05 mm.
2. Projectile, in particular according to claim 1, in particular full metal jacket or partial metal jacket projectile, for ammunition for example with a caliber of at most 20 mm, in particular at most 13 mm, comprising an at least partially hollow or solid projectile body with a circumferential groove arranged on its inner and/or outer surface, along which several radial projections extending in the longitudinal direction of the projectile (LG) are arranged at a particularly constant distance from each other, and/or a longitudinal groove, along which several radial projections extending transversely to the longitudinal direction of the projectile (LG) are arranged at a particularly constant distance from each other.
3. Projectile according to claim 2, wherein the radial projections have a width (B) of at most 0.2 mm and/or protrude less than 0.03 mm in the radial direction beyond the inner or outer surface.
4. Tool, in particular grooving tool, for introducing a circumferential and/or longitudinal groove into a projectile blank to produce a projectile designed in particular according to claim 1, comprising an elongated hollow body, in particular a case body, for receiving the projectile blank or for insertion into a cavity of the projectile blank with an inward or outward projecting, in particular circumferential, grooving nose, wherein the hollow body is slit in the longitudinal direction (L) such that, under the action of an external or internal force, the hollow body is particularly elastically deformable, in particular compressible or expandable, so that the grooving nose can press the circumferential and/or longitudinal groove into the projectile blank.
5. Tool according to claim 4, wherein the hollow body has several through-slits extending in the longitudinal direction (L) arranged at a particularly constant distance from each other, and several bending wings each separated by two through-slits.
6. Tool according to claim 5, wherein the through-slits extend from one end of the hollow body over at least 50% of the longitudinal extent of the hollow body to a respective slit base, at the axial height of which a bending joint is fixed, around which an associated bending wing is particularly elastically pivotable.
7. Tool according to claim 6, wherein the grooving nose is arranged in the region of the groove end, wherein in particular the through-slits divide the grooving nose into several segments distributed in the circumferential direction.
8. Tool according to claim 5, wherein the through-slits extend over at least 50% of the longitudinal extent of the hollow body such that an unslitted section is formed at each of the two end sides of the hollow body.
9. Tool according to claim 8, wherein each through-slit opens into two opposite slit bases, at the axial height of which a bending joint is fixed, around which an associated bending wing is particularly elastically pivotable.
10. Tool according to claim 8, wherein each through-slit opens into two opposite slit bases and the grooving nose is arranged in the region of 20% to 80% of a distance, in particular in the region of 40% to 60%, preferably centrally, between the two slit bases.
11. Tool according to claim 6, wherein the bending joints are manufactured in one piece with the associated bending wing, wherein in particular the hollow body is manufactured in one piece and/or wherein the bending joints are designed as film hinges.
12. Tool according to claim 4, wherein the hollow body has a counter bearing at the axial height of the grooving nose, which can be acted upon with a force to deform the hollow body, in particular to preferably elastically pivot the bending wings particularly around the bending joints.
13. System, in particular grooving station, for introducing a circumferential and/or longitudinal groove into a projectile blank to produce a projectile, comprising a tool designed in particular according to claim 4, which has a grooving nose, and a punch-die arrangement for holding the projectile blank, wherein the tool and the punch-die arrangement are coordinated such that the punch-die arrangement can elastically deform, in particular compress or expand, the tool to introduce the circumferential and/or longitudinal groove into the projectile blank.
14. System according to claim 13, wherein the die has a particularly shape-adapted receptacle for the projectile blank and the punch has a driver which is associated with the tool such that during a particularly translational relative movement of the die and the punch, the driver exerts a compressive force on the tool to deform it.
15. System according to claim 13, wherein the punch, in particular the driver, has a conical guide surface over which a continuously increasing compressive force can be generated.
16. Method for introducing a circumferential and/or longitudinal groove into a projectile blank to produce a projectile, wherein a projectile blank is inserted into a system designed according to claim 13, and wherein the projectile blank is locally grooved by an elastic deformation, in particular compression or expansion, of the tool to form the circumferential and/or longitudinal groove.
Description
[0033] The following describes further properties, features, and advantages of the invention by describing preferred embodiments of the invention with reference to the accompanying exemplary drawings, in which:
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[0048] In the following description of exemplary embodiments of the present invention, an inventive projectile is generally designated with reference numeral 1, an inventive tool for introducing a circumferential and/or longitudinal groove into a projectile blank is generally designated with reference numeral 10, and an inventive device for introducing a circumferential and/or longitudinal groove into a projectile blank is generally designated with reference numeral 100.
[0049]
[0050] The projectile 1 can particularly be a full metal jacket or partial metal jacket projectile. The projectile 1 comprises a projectile body 3, which has a cylindrical projectile tail 5 and an ogival projectile nose 7. The projectile body 3 can be solid or have an open cavity in the direction of the projectile tip 9, so that the projectile body 3 is partially hollow. On the outer side 11 of the projectile 1, a circumferential groove 13 is pressed, which has a smaller diameter than the outer side 11 of the projectile 1. The circumferential groove 13 can be provided, for example, as an engagement groove for the case mouth of a case.
[0051] The device 100 for manufacturing the inventive projectile 1 from a projectile blank comprises the following main components: an inventive tool 10 and a punch-die arrangement 15, which interacts with or is coordinated with the inventive tool 10 to introduce the circumferential groove 13 into a projectile blank. The punch-die arrangement 15 comprises a punch 17 and a die 19, which are translatable relative to each other in a pressing direction P.
[0052] In
[0053] The punch 17 is also rotationally shaped in
[0054] The following describes the structure of an inventive tool 10 for introducing a circumferential groove into the outer side 11 of a projectile blank based on the exemplary embodiment in
[0055] The tool 10 comprises an elongated sleeve-shaped hollow body 45, which is made in one piece, for example, from metal. The hollow body 45 is hollow cylindrical and has a hollow body wall 47 with a constant wall thickness, which bounds a cylindrical cavity 49. The wall thickness can be, for example, about 2 mm. At an end face 51 or a groove end 51 of the hollow body 45, a circumferential grooving nose 53 is formed, which protrudes from the hollow body wall 47 into the interior of the hollow body 45. For example, the grooving nose 53 can protrude about 4 mm radially into the interior of the hollow body 45, perpendicular to the longitudinal direction L of the tool 10. In the embodiment in
[0056] The hollow body 45 has several through-slits 57 oriented in the longitudinal direction L. The through-slits 57 extend radially completely through the entire hollow body wall 47 and through the grooving nose 53, dividing it completely into several separate segments 58 in the area of the grooving nose 53 and bending wings 59 in the area of the hollow body wall 47. In other words, the through-slits 57 extend over the entire wall thickness of the hollow body 45 from an outer side of the hollow body 45 to an inner side of the hollow body 45. In the longitudinal direction L, the through-slits 57 extend from the groove end 51 for at least 50% of the longitudinal extension of the hollow body 45 and end in a slit base 61. At the axial height of the slit bases 61, each bending wing 59 has a bending joint 63. Since the hollow body 45 is made in one piece, the bending joints 63 are each formed in one piece with the associated bending wing 59 and are designed as film hinges. When the tool 10 is compressed at the groove end 51 or in the area of the grooving nose 53, the bending wings 59 are each elastically pivotable around their associated bending joint 63. At an end of the hollow body 65 opposite the groove end 51, an unslitted section 67 is provided, with which the tool 10 in
[0057] In the exemplary embodiment in
[0058] To introduce a groove into a projectile blank, the projectile blank is inserted from the groove end 51 of the tool 10 in the longitudinal direction L into the cavity 49 of the hollow body 45 until the point of the projectile blank where the groove is to be introduced is positioned in the longitudinal direction L at the axial height of the grooving nose 53. When force is applied from the outside, the bending wings 59 elastically pivot around the respective bending joint 63 and are elastically deformed or compressed, so that the segments 58 of the grooving nose 53 are compressed radially and approach each other by the width of the through-slits 57. As a result, the segments 58 of the grooving nose 53 press into the projectile blank material and press the desired groove. Thus, with the inventive tool 10, no rotation between the tool 10 and the projectile blank is necessary to groove the projectile blank. Once the external force no longer acts, the bending wings 59 return to their original shape due to the deformation restoring force generated by the elastic deformation, and the finished projectile 1 can be removed from the tool 10.
[0059] For a projectile blank with a cavity in the projectile nose, it can also be provided to introduce a groove on the inside of a wall bounding the cavity of the projectile blank. The inventive tool is then inserted into the cavity of the projectile blank. The grooving nose is arranged on the outer side of the slit hollow body in this embodiment and preferably protrudes outward perpendicular to the longitudinal direction. To press the groove, a force is applied from the inside to the tool, for example, with a conical punch, so that the bending wings elastically expand and introduce an internal groove into the projectile blank on the inner side of the wall.
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[0063] The die 19 essentially corresponds to the die 19 from
[0064] The die 19 stands on a base plate 75 of the device 100 in this embodiment. Additionally, a receptacle 77 with a cylindrical through-bore 79, in which the die 19 and the tool 10 are arranged, is fastened to the base plate 75, for example, with screws. Two steps are provided in the through-bore 79, where the diameter of the through-bore 79 changes abruptly. A first step 81, viewed from the direction of the base plate 75, serves to fix a holder 83 for the die 19 and the tool 10. The holder 83 rests on the projection 69 of the tool 10 and thus presses the tool 10 and the die 19 against the base plate 75. A spring 85 rests on the holder 83, which biases a pressure piece 87 against the pressing direction P. The movement of the pressure piece 87 against the pressing direction P is limited by a second step 89 of the through-bore 79.
[0065] To introduce a circumferential groove 13 into the projectile blank 2, the projectile blank 2 must first be placed in the receptacle 33 of the die 19. For this purpose, a two-part punch 91 is provided, which rests on the top and bottom of the projectile blank and is movable in the pressing direction P relative to the die 19 and the punch 17. When the projectile blank 2 is in the receptacle 33, the punch 17 is moved in the pressing direction P towards the die 19. The punch 17 then presses with the front side 35 against the pressure piece 87 and moves it against the biasing force of the spring 85 in the pressing direction P. As a result, the pressure piece 87 is pushed over the tool 10 and compresses it radially. As explained regarding
[0066] After grooving, the punch 17 is retracted against the pressing direction P, and the spring 85 also pushes the pressure piece 87 away from the tool 10 against the pressing direction P, so that it returns to its original shape. With the help of the punch 91, the finished projectile 1 can then be driven out of the receptacle 33 and removed.
[0067] It can be provided that the pressure piece 87 is driven by a drive (not shown) to perform an eccentric movement during the pressing process. This ensures that the groove is reliably introduced around the entire circumference of the projectile blank.
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[0069] The circumferential groove 13 has a round cross-section in this embodiment. At the transition 93 between the circumferential groove 13 and the outer wall 11 of the projectile 1, a radius of at least 0.05 mm is formed. The transition 93 between the circumferential groove 13 and the outer wall 11 is thus formed without a contour jump and has no edge, as occurs with rolled grooves in the prior art (shown in dashed lines in
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[0072] The features disclosed in the foregoing description, the figures, and the claims can be significant both individually and in any combination for the realization of the invention in its various embodiments.
LIST OF REFERENCE NUMERALS
[0073] 1 Projectile [0074] 10 Tool [0075] 100 Device [0076] 2 Projectile blank [0077] 3 Projectile body [0078] 5 Projectile tail [0079] 7 Projectile nose [0080] 9 Projectile tip [0081] 11 Outer side of the projectile body [0082] 13 Circumferential groove [0083] 14 Longitudinal groove [0084] 15 Punch-die arrangement [0085] 17 Punch [0086] 19 Die [0087] 21 Outer side of the die [0088] 23 Bottom side of the die [0089] 25 Top side of the die [0090] 27 Step [0091] 29 Step [0092] 31 Air gap [0093] 33 Receptacle [0094] 35 Front side of the punch [0095] 37 Cavity [0096] 39 Wall [0097] 41 Conical wall section [0098] 43 Cylindrical wall section [0099] 45 Hollow body [0100] 47 Hollow body wall [0101] 49 Cavity [0102] 51 Groove end [0103] 53 Grooving nose [0104] 55 Rounding [0105] 56 Surface [0106] 57 Through-slit [0107] 58 Segment [0108] 59 Bending wing [0109] 61 Slit base [0110] 63 Bending joint [0111] 65 End of the hollow body [0112] 67 Unslitted section [0113] 69 Step [0114] 71 Support surface [0115] 73 Counter bearing/Ring projection [0116] 75 Base plate [0117] 77 Receptacle [0118] 79 Through-bore [0119] 81 Step [0120] 83 Holder [0121] 85 Spring [0122] 87 Pressure piece [0123] 89 Step [0124] 91 Two-part punch [0125] 93 Groove transition [0126] 95 Radial projection [0127] 97 Step [0128] 99 End of the grooving nose [0129] 101 Conical section [0130] L Longitudinal direction [0131] LG Longitudinal direction of the projectile [0132] P Pressing direction