EP4437300A1 - Penetrator, verwendung eines penetrators, geschoss und patronierte munition - Google Patents
Penetrator, verwendung eines penetrators, geschoss und patronierte munitionInfo
- Publication number
- EP4437300A1 EP4437300A1 EP22821418.5A EP22821418A EP4437300A1 EP 4437300 A1 EP4437300 A1 EP 4437300A1 EP 22821418 A EP22821418 A EP 22821418A EP 4437300 A1 EP4437300 A1 EP 4437300A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- penetrator
- bore
- cylinder blocks
- extension
- recess
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Granted
Links
Classifications
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F42—AMMUNITION; BLASTING
- F42B—EXPLOSIVE CHARGES, e.g. FOR BLASTING, FIREWORKS, AMMUNITION
- F42B12/00—Projectiles, missiles or mines characterised by the warhead, the intended effect, or the material
- F42B12/02—Projectiles, missiles or mines characterised by the warhead, the intended effect, or the material characterised by the warhead or the intended effect
- F42B12/04—Projectiles, missiles or mines characterised by the warhead, the intended effect, or the material characterised by the warhead or the intended effect of armour-piercing type
- F42B12/06—Projectiles, missiles or mines characterised by the warhead, the intended effect, or the material characterised by the warhead or the intended effect of armour-piercing type with hard or heavy core; Kinetic energy penetrators
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F42—AMMUNITION; BLASTING
- F42B—EXPLOSIVE CHARGES, e.g. FOR BLASTING, FIREWORKS, AMMUNITION
- F42B12/00—Projectiles, missiles or mines characterised by the warhead, the intended effect, or the material
- F42B12/72—Projectiles, missiles or mines characterised by the warhead, the intended effect, or the material characterised by the material
- F42B12/74—Projectiles, missiles or mines characterised by the warhead, the intended effect, or the material characterised by the material of the core or solid body
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F42—AMMUNITION; BLASTING
- F42B—EXPLOSIVE CHARGES, e.g. FOR BLASTING, FIREWORKS, AMMUNITION
- F42B14/00—Projectiles or missiles characterised by arrangements for guiding or sealing them inside barrels, or for lubricating or cleaning barrels
- F42B14/06—Sub-calibre projectiles having sabots; Sabots therefor
Definitions
- the invention relates to a penetrator for a projectile, in particular a sub-caliber kinetic energy projectile.
- the penetrator features a terminal ballistic body for engaging an armored target, specifically a tank.
- the invention further relates to the use of such a penetrator to combat an armored target, in particular a tank.
- the invention relates to a projectile with a sabot and such a penetrator.
- the invention relates to a Cartridge ammunition comprising a cartridge case and such a projectile.
- a penetrator can be used to create a sub-calibre kinetic energy projectile that achieves its effect through kinetic energy.
- Such projectiles are usually fired directly at a target from tanks or artillery weapons with large-caliber barrel weapons.
- a penetrator of the type mentioned at the outset is known from DE 10 2019 121 984 A1.
- This penetrator has an outer body with a hollow cross section and a core arranged therein. This allows a penetrator to be formed with a high degree of bending stiffness, without the weight of the penetrator, for example the design DM53 or DM63 of the applicant, must be increased.
- this penetrator is not yet sufficiently suitable for being equipped with electrical properties. Therefore there is potential for optimization.
- the invention is based on the object of specifying a penetrator which is improved in comparison thereto. It is particularly desirable to be able to quickly and efficiently form a channel on the penetrator for electrical or to pass electronic line through the penetrator.
- the invention solves this problem with a penetrator having the features of claim 1 .
- the penetrator is set up and/or intended for a projectile, in particular a sub-caliber kinetic energy projectile.
- the penetrator has a terminal ballistic body or Penetrator body to engage an armored target on .
- a bore is formed in the body, in particular in the form of a deep hole, which extends completely or over most of the length of the body, specifically along or parallel to the central longitudinal axis of the body.
- One or more precisely fitting inserts are placed in the bore.
- the insert part or inserts each have a passage extending along the central longitudinal axis or parallel to the central longitudinal axis of the insert part for the passage of an electrical or electronic line.
- the line can be arranged directly (line arranged directly in the passage) or indirectly in the passage (another element is arranged in the passage, through which the line is routed).
- This configuration enables simple production of a comparatively thin continuous channel (passage) for an electrical or electronic line in a penetrator, even when the penetrator or Body made of high-strength tungsten heavy metal (WSM).
- WSM high-strength tungsten heavy metal
- This favors the provision of a modern penetrator (“smart penetrator”) that can be equipped with electrical properties.
- the line By arranging the line in the passage of the insert, the line is largely protected from environmental influences. Therewith is the risk that the line e.g. to be destroyed by powder in environmental tests is largely reduced.
- problems such as would occur directly in the penetrator when producing a long, comparatively thin bore (wear, accuracy) can be avoided.
- the properties of the penetrator can be adjusted by one or more insert parts (multi-functional basic penetrator).
- the line already mentioned above can be a signal line.
- the line can be designed as a cable and, for example. one or more strands, each with insulation, and an optional sheath surrounding the strands in their entirety.
- the penetrator or the body can be made of high-strength tungsten heavy metal (WSM). Regardless of the penetrator can have a length of, for example. Have 100 to 1000 millimeters.
- WSM high-strength tungsten heavy metal
- the bore formed in the body can have a diameter of more than 4 millimeters, but preferably significantly more than 10 millimeters.
- the outer wall remaining on the body after the bore has been formed has a remaining wall thickness of at least 1 millimeter.
- the insert part can be designed as an inner tube extending over the entire length of the bore. This contributes to an embodiment of the penetrator with a small number of components.
- the inner tube is in the body or The penetrator body is arranged, with the outer circumference of the inner tube resting against the inner circumference of the bore of the body.
- the inner tube can be in the form of a drawn tube, with the passage also being formed by “drawing”.
- the inner tube can in particular be made of steel. In comparison to the penetrator body, the inner tube can have a comparatively high expansion capacity.
- a further bore can preferably follow the bore.
- the further bore has a smaller diameter than the first bore (bore for accommodating the at least one insert), the bore and the further bore together forming a channel which completely penetrates the body.
- the first bore which accommodates the insert part or parts, is designed as a blind hole.
- the bottom of the blind hole thus forms a stop for the insert or parts. This makes it easier to position the insert parts in the bore.
- the inserts are protected from falling out towards the bottom of the hole.
- this is a "partially enlarged bore", in which case the insert part or parts can be or are arranged in the "enlarged part" (first bore).
- the electrical or electronic line can be arranged, which through the other hole and through the or. the passages in the insert zers extends.
- At least two cylinder blocks can be provided as insert parts, which are in the bore of the body or.
- Penetrator body are arranged adjacent to each other.
- the cylinder blocks abut and the passageways of the cylinder blocks are aligned.
- the aligned passages thus form a channel section for the electric or electronic line. Due to the comparatively short cylinder blocks compared to the length of the penetrator body, a passage for guiding the electrical or electronic line can be formed in these in a simple manner, for example. by drilling (each passage is designed as a bore).
- the cylinder blocks can each be designed as a vertical circular cylinder with a central passage for guiding the electric or electronic line.
- the cylinder blocks can each have a length of 5 to 50 millimeters.
- the cylinder blocks can preferably each be made of the same material. In this way, identical mechanical behavior of the cylinder blocks can be achieved in practice.
- the procurement of materials for the cylinder blocks can be simplified (only one material required) and the installation of the Cylinder blocks are simplified (the order of the cylinder blocks may be irrelevant).
- the cylinder blocks can each have the same height (same cylinder block thickness) along their central longitudinal direction. This also contributes to the consistent mechanical behavior of the cylinder blocks. Identically dimensioned cylinder blocks also simplify their manufacture.
- the cylinder blocks can each be made from a different material. This allows the mechanical behavior of the cylinder blocks to be varied through the targeted choice of material, e.g. by inserting cylinder blocks made of different materials along the bore or along the penetrator body.
- the cylinder blocks can each have a different height along their central longitudinal direction.
- the mechanical behavior of the cylinder blocks can be specifically varied by adjusting the height.
- the cylinder blocks may be made of the same material as the body of the penetrator or of a different material.
- a design made of the same material favors a comparatively uniform mechanical behavior of the cylinder blocks with the penetrator body.
- material procurement is simplified.
- the terminal ballistic Behavior of the penetrator are influenced, for example. by a splinter effect when the cylinder blocks are made of a material with a lower density than the penetrator body.
- a suitable threaded pin can be introduced into the passages of the cylinder blocks, the threaded pin penetrating through the cylinder blocks and having a hollow cross-section (perpendicular to the longitudinal axis of the threaded pin).
- the cylinder blocks can be centered with the threaded pin. This allows the terminal ballistic performance to be increased.
- the electrical or electronic line can be routed in the hollow cross-section (hollow interior space, each end open) of the threaded pin. The line is thus not arranged directly in the passage, but indirectly, namely by arrangement in the threaded pin ft, which in turn is in or. the passages of the cylinder blocks is arranged.
- the passages of the cylinder blocks through which the threaded pin penetrates can each have an internal thread corresponding to the external thread of the threaded pin.
- a first of the cylinder blocks can have a front-side extension at one end and a second of the cylinder blocks on the end facing the first cylinder block a front-side extension corresponding to the extension Have recess, wherein the extension is introduced into the recess or engages ft.
- This allows the cylinder blocks to be centered, which means that the final ballistic performance can be increased.
- all cylinder blocks located in the bore of the penetrator body shall be provided with an extension and/or a recess. A more extensive centering can thus be achieved, so that the final ballistic performance can be increased again.
- the first of the cylinder blocks and the second of the cylinder blocks can each have a front-facing extension at one end and a front-side recess corresponding to the extension at the other end.
- the first cylinder block and the second cylinder block each have an extension and a recess.
- the first and second cylinder blocks can be of identical design, so that production is simplified.
- all cylinder blocks arranged in the bore of the penetrator body each have an extension at one end and a recess corresponding to the attachment at the other end.
- the cylinder blocks arranged at the end in the bore can each optionally have only one extension or only one recess, so that a flat termination occurs at the end in each case.
- the extension and the recess can each be designed in the shape of a circular disk or cone.
- the extension and the recess can each have the shape of a circular disk or a cone.
- the extension can protrude centrally on the end face of the cylinder block, the outer diameter of the extension being smaller than the outer diameter of the cylinder block.
- the extension can likewise protrude centrally on the end face of the cylinder block, with the cone contour tapering conically starting from the outer circumference of the cylinder block towards the free end.
- the recess is designed to correspond to the (conical) extension, so that the extension can be fitted into the recess.
- the extension can be designed as a front-side profile, with the recess being designed as a front-side counter-profile corresponding to the profile.
- This can also be used to center cylinder blocks, with which the final ballistic performance can be increased. The resulting processing effort or the weakening of the material on the cylinder blocks is comparatively small.
- the profiling can, for example have concentric grooves, wherein the counter-profiling can have corresponding concentric grooves.
- the bore can have an internal thread, with at least one of the cylinder blocks (on its outer circumference or its lateral surface) having an external thread corresponding to the internal thread.
- the internal thread of the bore of the penetrator body can be continuous. There may be several or All cylinder blocks have an external thread in the bore.
- the object mentioned at the outset is also achieved by using a penetrator with one or more of the above aspects for attacking an armored target, in particular a tank.
- a penetrator with one or more of the above aspects for attacking an armored target, in particular a tank.
- the measures discussed in connection with the penetrator and/or the measures explained below can be used for further development.
- the object mentioned at the outset is also achieved by a projectile comprising a sabot, a tail unit and a penetrator with one or more of the above aspects.
- a projectile comprising a sabot, a tail unit and a penetrator with one or more of the above aspects.
- the measures discussed in connection with the penetrator and/or the measures explained below can be used for further development.
- the object mentioned at the outset is also achieved by cartridge-loaded ammunition comprising a projectile as described above and a cartridge case.
- the measures discussed in connection with the penetrator and/or the measures explained below can be used for further development.
- the electrical or electronic line can be routed from the base of the cartridge case to the tip of the cartridge case. This allows the penetrator or the cartridged ammunition can be equipped with electrical or electronic properties.
- the line is to be shared or Cylinder blocks trained passages and possibly. passed through the other hole in the cylinder block.
- the line can be designed as described above.
- Fig. l an embodiment of a penetrator in a schematic side view
- Fig. 2a-c an embodiment of the penetrator from FIG. 1 in partial sectional views after forming the bore (FIG. 2a), inserting the insert parts (FIG. 2b) and inserting the electrical or electronic line (FIG. 2c);
- FIG. 3 shows a possible embodiment of the penetrator from FIG. 1 with centering by means of a set screw in a partial sectional view;
- Fig. 4 shows a possible embodiment of the penetrator from FIG. 1 with centering by means of profiles or threads in a partial sectional view;
- Fig. 5 an embodiment of the penetrator from Figure 1 with a centering on circular disc-shaped extensions or. Recesses in a partial sectional view;
- Fig. 6 an embodiment of the penetrator from Figure 1 with a centering on conical extensions or. Recesses in a partial sectional view;
- FIG. 7 shows an embodiment of the penetrator from FIG. 1 with a centering via an inner tube piercing in the bore in a partial sectional view.
- FIG. 1 shows a schematic side view of a penetrator which is denoted overall by the reference numeral 10 .
- the penetrator 10 is designed for a projectile 100 with a tail unit 102 .
- the penetrator 10 further has a terminal ballistic body or Penetrator body 12 for combating an armored target (not shown).
- the central longitudinal axis of the body 12 is denoted by the reference numeral 14 .
- a bore 16 is formed in the body 12, which in the example extends along the central longitudinal axis 14 of the body 12, specifically over the majority of the length of the body 14 (cf. FIG. 2a).
- the bore 16 is formed by means of a drilling tool 18 (shown only schematically).
- the bore 16 can extend over the entire length of the body 12, ie penetrate it completely (indicated by dashed lines 20).
- At least one precisely fitting insert part 22 is introduced into the bore 16 (cf. Fig. 2b), which in the example has a passage 24 extending along the central longitudinal axis 14' of the insert part 22 for the passage of an electrical or electronic line 26 (cf. Fig. 2c ) .
- inserts 22 are introduced into the bore 16 (cf. FIGS. 2b and 2c).
- the line 26 is in the example directly through the passages 24 of Insert parts 22 out and can be designed as described above.
- the bore 16 only extends over the majority of the length of the body 12 (cf. FIGS. 2a to 2c).
- the bore 16 is followed by a further bore 28 which has a smaller diameter than the bore 16 .
- the bore 16 and the further bore 28 together form a channel (with sections of different diameters) which completely penetrates the body 12 (cf. FIG. 2a). Since in the example the line 26 extends through the passages 24 of the insert parts 22 and through the additional bore 28 , the diameter of the additional bore 28 is dimensioned such that the line 26 can be passed through the additional bore.
- cylinder blocks 30 are provided as insert parts 22, which are arranged one after the other in the bore 16, the cylinder blocks 30 abutting one another and the passages 24 of the cylinder blocks 30 being aligned with one another.
- the passageways 24 form a channel portion that aligns with the further bore 28 so that the conduit 26 can be passed through the body 12 therein.
- the cylinder blocks 30 are each made of the same material and each have the same height along their central longitudinal direction 14 ′. As already explained above, it is also conceivable that the Cylinder blocks are made of different materials and/or have different heights along their central longitudinal direction 14'. It was also previously discussed that the cylinder blocks 30 may be formed from the same material as the body 12 of the penetrator 10 or from a different material.
- FIG. 3 shows an embodiment of the penetrator 10 which largely corresponds to the embodiment described with reference to FIGS. To avoid repetition, reference is therefore made to the explanations given there.
- the cylinder blocks 30 arranged in the bore 16 are centered.
- a suitable threaded pin 32 is introduced into the passages 24 of the cylinder blocks 30 .
- the grub screw 32 penetrates the cylinder blocks 30 and has a hollow cross-section (perpendicular to the longitudinal axis of the grub screw 32 ) with a hollow interior 33 .
- the hollow interior 33 extends completely through the threaded pin 32, the threaded pin 32 being open at each end.
- the line 26 is routed through the hollow interior 33 and through the further bore 28 . The line 26 is thus located indirectly in the passages 24 of the cylinder blocks 30 since it is received in the setscrew 32 .
- FIG. 4 shows a further embodiment of the penetrator 10, which largely corresponds to that with reference to the figures 1 and 2 corresponds to the embodiment described. To avoid repetition, reference is therefore made to the explanations given there.
- a first cylinder block 30' has an extension 36 protruding on the front side at one end 34 and a second cylinder block 30'' has at the end 38 facing the first cylinder block 30' a frontal recess 40 corresponding to the extension 36 , the extension 36 being introduced into the recess 40 (shown only schematically).
- the extension 36 is designed as an end profile.
- the recess 40 is designed as a counter-profiling on the face side, which corresponds to the profiling.
- Profiling and counter-profiling can be designed as described above.
- the bore 16 can have an internal thread 17 , with at least one of the cylinder blocks 30 ′′′′ having an external thread 31 corresponding to the internal thread 17 .
- FIG. 5 shows a further embodiment of the penetrator 10 which largely corresponds to the embodiment described with reference to FIGS. To avoid repetition, reference is therefore made to the explanations given there.
- a first cylinder block 30' has an extension 36 protruding from the front side at one end 34 and a second cylinder block 30'' at that end facing the first cylinder block 30' End 38 has a frontal recess 40 corresponding to the extension 36 , the extension 36 being introduced into the recess 40 .
- first cylinder block 30′ and the second cylinder block 30′′ each have a front-side protruding extension 36 at one end 34 and a front-side recess 40 corresponding to the extension 36 at the other end 38 (in Fig. 5 for reasons of clarity only once provided with reference numbers).
- the extension 36 and the recess 40 are each formed in the shape of a circular disk.
- the extension 36 protrudes centrally on the end face of the cylinder block 30', 30'', the outer diameter of the extension 36 being smaller than the outer diameter of the cylinder block 30', 30''.
- the recess 40 is designed to correspond to the (disk-shaped) extension 36 so that the extension 36 can be inserted into the recess 40 to fit.
- the cylinder blocks 30 arranged at the edge in the bore 16 can optionally have no recess at the respective end of the bore 16 (cylinder block 30 in Fig. 5 in the Bore 16 on the far left) or no extension (cylinder block 30 in Figure 5 in bore 16 on the far right).
- FIG. 6 shows a further embodiment of the penetrator 10, which largely corresponds to the embodiment described with reference to FIGS. To avoid repetition, reference is therefore made to the explanations given there.
- a first cylinder block 30' has an extension 36 protruding from the front side at one end 34 and a second cylinder block 30'' at that end facing the first cylinder block 30' End 38 has a frontal recess 40 corresponding to the extension 36 , the extension 36 being introduced into the recess 40 .
- first cylinder block 30' and the second cylinder block 30'' have at one end 34 an extension 36 protruding from the front and at the other end 38 a recess 40 on the front corresponding to the extension 36 (for reasons of clarity only provided with a reference number once ) .
- the extension 36 and the recess 40 are each formed conically.
- the extension 36 protrudes centrally on the end face of the cylinder block 30 ', 30' ', with the cone contour 37 starting from
- Extension 36 tapered towards.
- the recess 40 is designed to correspond to the conical extension 36 , so that the extension 36 can be fitted into the recess 40 .
- the cylinder blocks 30 arranged at the edges in the bore 16 can optionally have no recess (cylinder block 30 in Fig. 6 in the bore 16 on the far left) or no extension (cylinder block 30 in Fig. 6 in the bore 16 on the far right) at the respective end of the bore 40 ) exhibit .
- FIG. 7 shows an embodiment of the penetrator 10 with only one insert part 22 .
- the penetrator 10 further has a terminal ballistic body or Penetrator body 12 for combating an armored target (not shown).
- the central longitudinal axis of the body 12 is denoted by the reference numeral 14 .
- a bore 16 is formed in the body 12 and in the example extends along the central longitudinal axis 14 of the body 12 , specifically over the majority of the length of the body 14 .
- the bore 16 is formed by means of a drilling tool (not shown).
- the bore 16 can extend over the entire length of the body 12, ie penetrate it completely (indicated by dashed lines 20).
- a precisely fitting insert part 22 is introduced into the bore 16 , which in the example extends along the central longitudinal axis 14 ′ of the insert part 22 Has passage 24 for carrying out an electrical or electronic line 26 .
- the insert part 22 is designed as an inner tube 50 extending over the entire length of the bore.
- the inner tube 50 is arranged in the body 12 , the inner tube 50 abutting with its outer circumference 52 against the inner circumference 19 of the bore 16 of the body 12 .
- the inner tube can in particular be made of steel.
- the bore 16 only extends over the majority of the length of the body 12 .
- the bore 16 is followed by a further bore 28 which has a smaller diameter than the bore 16 .
- the further bore 28 and the passage 24 of the insert part 22 are aligned with one another.
- the line 26 is routed through the passage 24 and the further bore 28 .
Landscapes
- Engineering & Computer Science (AREA)
- General Engineering & Computer Science (AREA)
- Chemical & Material Sciences (AREA)
- Combustion & Propulsion (AREA)
- Physics & Mathematics (AREA)
- Thermal Sciences (AREA)
- Insulating Bodies (AREA)
- Connection Of Plates (AREA)
- Particle Accelerators (AREA)
- Cylinder Crankcases Of Internal Combustion Engines (AREA)
Abstract
Description
Claims
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| DE102021130961.1A DE102021130961A1 (de) | 2021-11-25 | 2021-11-25 | Penetrator, Verwendung eines Penetrators, Geschoss und patronierte Munition |
| PCT/EP2022/082675 WO2023094333A1 (de) | 2021-11-25 | 2022-11-21 | Penetrator, verwendung eines penetrators, geschoss und patronierte munition |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| EP4437300A1 true EP4437300A1 (de) | 2024-10-02 |
| EP4437300B1 EP4437300B1 (de) | 2025-12-31 |
Family
ID=84462851
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP22821418.5A Active EP4437300B1 (de) | 2021-11-25 | 2022-11-21 | Penetrator, verwendung eines penetrators, geschoss und patronierte munition |
Country Status (6)
| Country | Link |
|---|---|
| US (1) | US12422233B2 (de) |
| EP (1) | EP4437300B1 (de) |
| JP (1) | JP2024541526A (de) |
| KR (1) | KR20240110001A (de) |
| DE (1) | DE102021130961A1 (de) |
| WO (1) | WO2023094333A1 (de) |
Family Cites Families (15)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| DE3209593A1 (de) | 1982-03-17 | 1983-09-29 | Rheinmetall GmbH, 4000 Düsseldorf | Unterkalibriges panzerbrechendes wuchtgeschoss (penetrator) |
| DE3314752A1 (de) * | 1983-04-23 | 1984-10-31 | Rheinmetall GmbH, 4000 Düsseldorf | Spitzenkoerper fuer ein wuchtgeschoss |
| FR2601763B1 (fr) | 1983-09-08 | 1992-06-05 | France Etat Armement | Projectile sous-calibre de type fleche pour blindages actifs |
| US4823703A (en) * | 1987-08-11 | 1989-04-25 | The Titan Corporation | Armor penetrating and self-lubricating projectile |
| DE3919172C2 (de) | 1989-06-12 | 1997-03-20 | Deutsch Franz Forsch Inst | Pfeil-Wuchtgeschoß |
| US6378435B1 (en) * | 1995-04-03 | 2002-04-30 | General Dynamics Decision Systems, Inc. | Variable target transition detection capability and method therefor |
| US7503261B2 (en) | 2004-01-30 | 2009-03-17 | Oerlikon Cantraves Pyrotec Ag | Universal KE projectile, in particular for medium caliber munitions |
| US7197982B2 (en) * | 2004-06-09 | 2007-04-03 | Alliant Techsystems Inc. | Method for detection of media layer by a penetrating weapon and related apparatus and systems |
| WO2006136185A1 (de) * | 2005-06-21 | 2006-12-28 | Geke Technologie Gmbh | Geschoss oder gefechtskopf |
| DE102013014665B3 (de) | 2013-08-29 | 2014-04-30 | Bundesrepublik Deutschland, vertreten durch das BMVg, vertreten durch das Bundesamt für Ausrüstung, Informationstechnik und Nutzung der Bundeswehr | Sprenggeschoss und dessen Herstellungsverfahren |
| US9810513B2 (en) * | 2014-08-04 | 2017-11-07 | Raytheon Company | Munition modification kit and method of modifying munition |
| DE102015117018A1 (de) | 2015-10-06 | 2017-04-06 | Rheinmetall Waffe Munition Gmbh | Penetrator sowie unterkalibriges Geschoss |
| US9909848B2 (en) | 2015-11-16 | 2018-03-06 | Raytheon Company | Munition having penetrator casing with fuel-oxidizer mixture therein |
| US11609073B2 (en) | 2019-03-21 | 2023-03-21 | Corvid Technologies LLC | Munitions and methods for operating same |
| DE102019121984A1 (de) | 2019-08-15 | 2021-02-18 | Rheinmetall Waffe Munition Gmbh | Penetrator, Verwendung eines Penetrators und Geschoss |
-
2021
- 2021-11-25 DE DE102021130961.1A patent/DE102021130961A1/de active Pending
-
2022
- 2022-11-21 WO PCT/EP2022/082675 patent/WO2023094333A1/de not_active Ceased
- 2022-11-21 JP JP2024531396A patent/JP2024541526A/ja active Pending
- 2022-11-21 EP EP22821418.5A patent/EP4437300B1/de active Active
- 2022-11-21 KR KR1020247017241A patent/KR20240110001A/ko active Pending
-
2024
- 2024-05-23 US US18/672,303 patent/US12422233B2/en active Active
Also Published As
| Publication number | Publication date |
|---|---|
| US20240328765A1 (en) | 2024-10-03 |
| US12422233B2 (en) | 2025-09-23 |
| DE102021130961A1 (de) | 2023-05-25 |
| KR20240110001A (ko) | 2024-07-12 |
| JP2024541526A (ja) | 2024-11-08 |
| WO2023094333A1 (de) | 2023-06-01 |
| EP4437300B1 (de) | 2025-12-31 |
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