SABOT OF THE PUSH-PULL TYPE HAVING MUTUALLY SEPARATE PARTS FOR THE PUSH AND PULL FUNCTION
20220205767 · 2022-06-30
Assignee
Inventors
Cpc classification
F42B14/061
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02A40/25
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F42B14/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
To reduce the mass of a sabot having a pull and a push function, it is proposed that the sabot comprise mutually separate sabot parts, wherein at least one sabot part is configured such that it performs the pull function and at least one sabot part is configured such that it performs the push function. The sabot parts are nested. This can be implemented in the form of cylindrical nesting or in the form of tangential nesting. In the case of the cylindrical nesting, the outer sabot part encloses the inner sabot part along an interface. In the case of the tangential nesting, the sabot parts are divided into sabot subsegments. The latter are nested in alternating fashion in the tangential direction such that a pull-sabot subsegment and a push-sabot subsegment are nested in alternating fashion in the circumferential direction. To provide sufficient sealing, the sabot subsegments overlap one another.
Claims
1. A sabot comprising: a push and a pull function; and mutually separate sabot parts, wherein at least one sabot part performs the pull function, and wherein at least another sabot part performs the push function.
2. The sabot according to claim 1, wherein the sabot parts are nested.
3. The sabot according to claim 1, wherein the sabot comprises at least two sabot parts.
4. The sabot according to claim 2, further comprising a cylindrical nesting.
5. The sabot according to claim 1, wherein at least one sabot part having a pull function forms an inner sabot and at least one sabot part having a push function forms an outer sabot.
6. The sabot according to claim 1, wherein the sabot parts have mutually separated surfaces on which propellant gases can act.
7. The sabot according to claim 6, wherein the surfaces merge with each other in such a way that a common surface of the sabot is formed.
8. The sabot according to claim 1, wherein the sabot parts include sabot subsegments.
9. The sabot according to claim 8, wherein a push-sabot subsegment and a pull-sabot subsegment are nested in alternating fashion in the tangential direction.
10. The sabot according to claim 8, wherein, three sabot subsegments have a pull function and three sabot subsegments have a push function.
11. The sabot according to claim 8, wherein each sabot subsegment has its own surface on which propellant gases act.
12. The sabot according to claim 1, wherein there is no positive connection between the sabot parts.
13. A projectile comprising a sabot according to claim 1.
14. Ammunition comprising a projectile and a sabot according to claim 1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0033] 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:
[0034]
[0035]
[0036]
[0037]
DETAILED DESCRIPTION
[0038]
[0039] The sabot 20 includes sabot parts 5, 6, at least two. The sabot parts 5, 6 are not one-piece but mutually separated. They are nested within each other. The partial sabot part 5 forms an inner sabot and the partial sabot part 6 an outer sabot. Here, the inner sabot 5 performs the pull function and the outer sabot 6 the push function of the (entire) sabot 20. Due to this design structure, the sabot parts 5, 6 can, for example, made of different materials.
[0040] An interface 24 of the two sabot parts 5, 6 is preferably cylindrical. A radial gap 25 in the area of the interface 24 between the inner 5 and the outer sabot part 6 is preferably chosen to be small.
[0041] The sabot parts 5, 6 have mutually independent (separate) surfaces 21, 22, on which the propellant gases act and from which the driving force to be transmitted to the projectile 2 results. The surfaces 21, 22 preferably merge into each other in such a way that a common, preferably smooth, surface 23 of the sabot 20 is formed. The surfaces 21, 22 of the sabot subsegments 5, 6 form a (centrally) cut off (single-shell) hyperboloid. However, alternative forms are also possible.
[0042] There is no exchange of forces between the two sabot parts 5, 6, with the exception of low friction forces. As a result, the load capacity of both sabot parts 5, 6 can be fully exploited independent of each other.
[0043] Between the two sabot parts 5, 6 and the projectile 2 there is in each case a positive connection 8, 9, but is possible in the form of a thread, as often applied in practice. On the other hand, there is no positive connection between the sabot parts 5 and 6, i.e., there is no form fit between the sabot parts 5, 6.
[0044] By means of a propellant pressure 4 acting behind the projectile 2, the projectile 2 is accelerated in a known manner in the direction of fire, in the representation according to
[0045] A further embodiment is shown in
[0046] In a preferred embodiment, these sabot parts 14′, 15′ in turn are composed of several sabot subsegments 14, 15. The sabot subsegments 14, 15 are located in the space between the projectile 10 and the weapon tube 11. The sabot subsegments 14 perform the pull function and the sabot subsegments 15 perform the push function of the sabot 30.
[0047] Preferably, a push-sabot segment and a pull-sabot segment 14, 15 are nested in alternating fashion in the tangential direction, so that a pull-sabot subsegment 14 always follows a push-sabot subsegment 15 in alternating fashion in the circumferential direction.
[0048] The number and segment widths of the pull-sabot subsegments 14 and the push-sabot subsegments 15 are freely selectable. The selection of the respective segment angles determines the load distribution between the two function groups (sum of the pull-sabot subsegments 14 or sum of the push-sabot subsegments 15). As a result, the (entire) sabot 31 formed by the sabot subsegments 14, 15 can be individually adapted to the tasks or demands placed on it.
[0049] In the preferred version, three sabot subsegments 14, 15 of 120° each are provided. In total, the sabot 30 thus comprises three pull-sabot subsegments 14 and three push-sabot subsegments 15.
[0050]
[0051] Between the two sabot subsegments 14, 15 and the projectile 10 there is a positive connection 18, for example via a thread. For a sufficient sealing of the sabot subsegments 14, 15 an overlap 17 of the sabot subsegments 14, 15 is necessary. This overlap 17 should be large enough for the sealing to be guaranteed.
[0052] Each sabot subsegment 14, 15 has its own surface 31, 32, on which the propellant gases 16 act, resulting in the driving force to be transmitted to the projectile 10. The propellant pressure 16 acts on the left side of the respective sabot parts 14′, 15′, whereby the projectile 2 in this representation is accelerated to the right. The propellant pressure 16 acts on the surface 31 of the sabot subsegments 14 and on the surface 32 of the sabot subsegments 15.
[0053] In the push-sabot subsegments 15, these surfaces 32 are straight and preferably smooth. The surfaces 31 of the pull-sabot subsegments 14 can be compared with a (centrally) cut off (single-shell) hyperboloid. However, alternative forms are also possible.
[0054] 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.