Propulsion system for cartridge ammunition

10989505 · 2021-04-27

Assignee

Inventors

Cpc classification

International classification

Abstract

A fragment-free propulsion of a cartridge-type ammunition, including a propellant casing and a high-pressure chamber, wherein the high-pressure chamber accommodates a propellant powder and, in the bottom region, a primer, having at least one overflow bore. To avoid fragments, a membrane, which separates the high-pressure chamber and a low-pressure chamber from one another and which does not tear to connect the high-pressure chamber to the low-pressure chamber when pressure is built up but instead is bent, is embedded in the high-pressure chamber. For this purpose, the high-pressure chamber additionally has a cap, the membrane, and a body. The membrane is embedded in the body and is secured by the cap. In addition, the membrane covers a gap that is formed by an outer diameter of the cap and an inner diameter of the body, and into which the membrane is bent when pressure is built up.

Claims

1. A propulsion of a cartridge-type ammunition, comprising: a propellant casing; and a high-pressure chamber, the high-pressure chamber comprising: a propellant powder; a primer in a bottom region; at least one overflow bore; a cap; a membrane; and a body, wherein the membrane is embedded in the body and secured by the cap, and wherein the membrane covers a second gap formed by an outer diameter of the cap and an inner diameter of the body.

2. The propulsion according to claim 1, wherein the body has overflow bores that are covered by the membrane.

3. The propulsion according to claim 1, wherein a connection is introduced into the body between the overflow bores and the membrane.

4. The propulsion according to claim 1, wherein the membrane rests against a shoulder in the body.

5. The propulsion according to claim 1, wherein at least one connection, which is an annular groove, is present between the at least one overflow bore with the second.

6. The propulsion according to claim 5, wherein the connection is formed by recesses in the cap and body.

7. A cartridge-type ammunition comprising: a propulsion according to claim 1; and a projectile.

8. The cartridge-type ammunition according to claim 7, wherein a mechanical connection between the projectile and the propulsion is created by the body of the high-pressure chamber.

9. The cartridge-type ammunition according to claim 8, wherein the body is connected in the upper region to a projection on the projectile base of the projectile.

10. The cartridge-type ammunition according to claim 8, wherein the connection between the body and the projectile base is a threaded connection.

11. The cartridge-type ammunition according to claim 7, further comprising a delay element or a tracer arranged in the projectile base and a flash-over bore arranged in the high-pressure chamber that extends to the projectile base.

12. The cartridge-type ammunition according to claim 11, wherein a stepped bore, which ensures shearing off of the membrane located below the flash-over bore in the interior region of the stepped bore when pressure is applied, is located in front of the flash-over bore.

13. The cartridge-type ammunition according to claim 11, wherein the flash-over bore and the stepped bore are integrated into the cap of the high-pressure chamber.

Description

BRIEF DESCRIPTION OF THE DRAWINGS

(1) The present invention will become more fully understood from the detailed description given hereinbelow and the accompanying drawings which are given by way of illustration only, and thus, are not limitive of the present invention, and wherein:

(2) FIG. 1 shows a cartridge-type ammunition according to the invention in a partial sectional representation;

(3) FIG. 2 is an enlarged representation of the high-pressure chamber from FIG. 1;

(4) FIG. 3 is a representation of the high-pressure chamber with open membrane;

(5) FIG. 4 is a propulsion with a tracer and flash-over bore; and

(6) FIG. 5 shows the propulsion with tracer from FIG. 4 with open flash-over bore.

DETAILED DESCRIPTION

(7) FIG. 1 shows a cartridge-type ammunition 1, formed of a projectile 2 and a propulsion 3. The propulsion 3 includes a propellant casing 4 and a high-pressure chamber 5. This high-pressure chamber 5 includes a cap 6, a membrane 7, a body 8, as well as a propellant powder 9, and a primer 10. The body 8 is hollow in design. The propellant powder 9 is located in a subarea of the body 8.

(8) The membrane 7 can be embedded symmetrically in the body 8. The membrane 7 covers a gap 11 in this case. The gap 11 is formed by the outer diameter of the cap 6 and the inner diameter of the body 8. The size of the gap 11 can thus be set through the choice of the two diameters.

(9) The high-pressure chamber 5 from FIG. 1 is shown in an enlarged view in FIG. 2. The membrane 7 seals overflow bores 12, at least one, which are functionally connected to the gap 11 via at least one connection 13, for example a circumferential annular groove. The membrane 7 is pressed against a shoulder 14 in the body 8 and secured thereto only by a cap 6. The overflow bores 12 are sealed with regard to the high-pressure chamber 5 by this membrane 7.

(10) Even though the overflow bores 12 in this embodiment are placed in the body 8 such that they are oriented at right angles to the membrane 7, other orientations are also possible for connecting the high-pressure chamber 5 to a low-pressure chamber 15 of the ammunition 1. Hence, the overflow bores 12 can also be oriented to face at an angle upwards or downwards into the low-pressure chamber 15.

(11) A mechanical connection 16 between the projectile 2 and propulsion 3 is created by the body 8 of the high-pressure chamber 5, wherein the body 8 is connected in the upper region 17 to a projectile base 18 of the projectile 2. The connection 16 between the body 8 and the projectile base 18 can be a threaded connection. For this purpose, the body 8 has an external thread in the region of the mechanical connection 16, and the projectile base 18 has an internal thread. Alternatives are possible. The body 8 carries the cap 6 in the upper region 17. This cap is secured in the body 8 in the upper region 17 of the body 8.

(12) When the ammunition 1 is fired, the propellant powder 9 is ignited by the primer 10. When a predetermined or set propellant gas pressure is reached, the membrane 7 is pressed upward into the free gap 11 in the direction of the overflow bores 12 (FIG. 3). The required opening pressure can be set by design means through the dimensioning of the thickness and strength of the membrane 7 in combination with the surface that is subjected to pressure of the annular gap 11 between the body 8 and cap 6. The overflow bores 12 are exposed at this time. From the high-pressure chamber 5, the propellant gases arrive in the low pressure chamber 15 through the annular gap 11 and the overflow bores 12, and exert a force on the projectile base 18 by which the projectile 1 is driven out of the barrel of a weapon that is not shown in detail. The function of the membrane 7 ensures that no fragments, which could remain behind in the weapon as particles, etc., leave the high-pressure chamber 5.

(13) In some ammunition variants or cartridge variants, a delay element or a tracer 19 may be provided in the projectile base 18. In order to be able to ignite this, an additional flash-over bore 20 is introduced axially, preferably in the cap 6 (FIG. 4). This central bore 20 makes it possible for the gas pressure from the high-pressure chamber 5 to be directed onto the delay element or onto the tracer 19, thereby igniting the delay element or the tracer 19. The flash-over bore 20 is sealed by the membrane 7, which shears off when pressure is built up.

(14) So that the flash-over bore 20 is opened simultaneously with the lateral overflow bores 12, a stepped bore 21 is located in front of the flash-over bore 20 (FIG. 5). The diameters of the two bores 20, 21 should be dimensioned such that the same opening pressure is set for shearing-off of the membrane 7 in the interior of the bore 21 as for the deflection of the membrane 7 in the outer region. The gas pressure pushes the sheared-off area of the membrane 7 to the end of the bore 21, where it is centrally perforated. In the end, a ring of the membrane 7 remains in the propulsion. The particle with the diameter of the flash-over bore 20 that is produced by the perforation is fired out of the high-pressure chamber 5, but burns up while still within the propulsion 3 on account of the high temperatures of the propellant powder gases. The propulsion 3 is fragment-free in this case as well, and reliable ignition of the delay elements or tracers 19 is ensured. Through the combination of external bending and shearing-off in the interior region, the propulsion 3 can reliably carry out both functions—projectile acceleration and ignition of a tracer/a delay element.

(15) The proposed structural design of the propulsion 3 of the ammunition 1 permits simple manufacture of the propulsion 3. Hence, in a single production step the membrane 7 can be punched out of a sheet metal strip (not shown in detail) and virtually pressed into the body 8. In a subsequent production step the cap 6 is pressed into the body 8, and can then be fastened into the body 8 due to its shaping, preferably by snapping in.

(16) The invention being thus described, it will be obvious that the same may be varied in many ways. Such variations are not to be regarded as a departure from the spirit and scope of the invention, and all such modifications as would be obvious to one skilled in the art are to be included within the scope of the following claims.