MULTIPLE SHAPED CHARGE JET (SCJ) WARHEAD
20250383186 ยท 2025-12-18
Inventors
- Coulton T. Sadler (Tucson, AZ, US)
- Brian J. Lukow (Tucson, AZ, US)
- Christopher M. Turner (Oro Valley, AZ, US)
- Michael R. Johnson (Tucson, AZ, US)
Cpc classification
F42B12/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F42B12/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F42B1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
In a MSCJ warhead detonation of the main charge is controlled to provide elevated pressure at multiple locations on the back surface of the liner to cut the liner and to form and propel forward a plurality of SCJs. An initiation system is configured for multi-point initiation of a plurality of booster charges to detonate the main charge to produce a plurality of detonation waves that constructively interfere at multiple locations on the back surface of the liner to form pressure hot spots that cut the liner and to form and propel forward a plurality of SCJs. In different embodiments, the elevated pressures are between 110% and 200% of the detonation pressure at the front of an individual detonation wave. The liner may, for example, include a plurality of recesses such as shallow dimples or deeper conical structures in which case the boosters are aligned to the center of the recessed structures.
Claims
1. A warhead having a height H1 along an axis and a diameter D1, comprising: a main charge; a liner on a top surface of the main charge; a plurality of booster charges spaced apart on a bottom surface of the main charge; and an initiation system configured for multi-point initiation of the plurality of booster charges to detonate the main charge to produce a plurality of detonation waves; wherein the liner is positioned within a defined range from the plurality of booster charges equal to a height H2 of the main charge along the axis in which 0.3<=H1/D1<=0.6 such that pairs of directly adjacent detonation waves constructively interfere to form elevated pressures at multiple locations on the back surface of the liner to cut the liner and to form and propel forward a plurality of shaped charge jets (SCJs).
2. (canceled)
3. (canceled)
4. The warhead of claim 1, wherein the elevated pressures at the multiple locations is at least 110% a detonation pressure at the front of the detonation waves between the locations.
5. The warhead of claim 4, wherein the elevated pressures at the multiple locations is up to 200% of the detonation pressure.
6. The warhead of claim 1, wherein the liner includes a plurality of recesses, wherein the plurality of booster charges are aligned to the centers of the recesses such that each recess is cut and formed into a SCJ.
7. (canceled)
8. The warhead of claim 1, wherein each SCJ has a tip velocity of 4-10 km/s and a penetration depth of 7-10 a diameter of the corresponding recess.
9. The warhead of claim 6, wherein each recess has an apex angle of less than 180.
10. The warhead of claim 6, wherein each recess is a dimple having an apex angle of 120-170.
11. The warhead of claim 6, wherein each recess is a conical structure having an apex angle 40-120.
12. The warhead of claim 6, wherein each recess has a recess diameter D2 across the axis, wherein 0.5<=H2/D2<=1.5.
13. (canceled)
14. The warhead of claim 1, wherein the initiation system comprises: an inert housing including a single point initiation site and a plurality of tracks that connect the single point initiation site to the plurality of booster charges; explosive material in the plurality of tracks; and a detonator at the single point initiation site, wherein initiation of the detonator produces detonation waves that travel through the explosive material in the tracks to initiate the plurality of booster charges.
15. The warhead of claim 14, wherein the plurality of tracks are equal length to facilitate simultaneous initiation of the plurality of booster charges.
16. A warhead having a height H1 along an axis and a diameter D1, said warhead comprising: a main charge having a height H2; a liner on a top surface of the main charge, said liner having a plurality of recesses each having a diameter D2 and an apex angle less than 180; a plurality of booster charges spaced apart on a bottom surface of the main charge and aligned to centers of the plurality of recesses; and an initiation system configured for multi-point initiation of the plurality of booster charges to detonate the main charge produce a plurality of detonation waves; wherein the liner is position within a defined range H2 from the plurality of booster charges in which 0.3<=H1/D1<=0.6 and 0.5<=H2/D2<=1.5 such that pairs of directly adjacent detonation waves constructively interfere to form elevated pressures at multiple locations on the back surface of the liner at the edges of the recesses to cut the liner and to form the recesses into a plurality of shaped charge jets (SCJs) that are propelled forward.
17. The warhead of claim 16, wherein the elevated pressures at the multiple locations between 110% and 200% of a detonation pressure at the front of the detonation waves between the multiple locations.
18. The warhead of claim 16, wherein each recess is a dimple having an apex angle of 120-170 or a conical structure having an apex angle of at most 40-120.
19. A warhead having a height H1 along an axis and a diameter D1, comprising: a main charge; a liner on a top surface of the main charge, said liner having a plurality of recesses; a plurality of booster charges spaced apart on a bottom surface of the main charge and aligned to centers of the plurality of recesses; and an initiation system including an inert housing having a single point initiation site and a plurality of tracks that connect the single point initiation site to the plurality of booster charges, explosive material in the plurality of tracks and a detonator at the single point initiation site, wherein initiation of the detonator produces detonation waves that travel through the explosive material in the tracks to initiate the plurality of booster charges to detonate the main charge and produce a plurality of detonation waves; wherein the liner is positioned at a defined range from the plurality of booster charges equal to a height H2 of the main charge along the axis in which 0.3<=H1/D1<=0.6 such that pairs of directly adjacent detonation waves constructively interfere to form elevated pressures at multiple locations on the back surface of the liner at a pressure between 110% and 200% of a detonation pressure of a single detonation wave to cut the liner and to form and propel forward a plurality of shaped charge jets (SCJs).
20. The warhead of claim 18, wherein each recess is a dimple having an apex angle of 120-170 or a conical structure having an apex angle of at most 40-120.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0014]
[0015]
[0016]
[0017]
DETAILED DESCRIPTION
[0018] The present disclosure provides a multiple SCJ (MSCJ) warhead in which detonation of the main charge is controlled to provide elevated pressure at multiple locations on the back surface of the liner to cut the liner and to form and propel forward a plurality of SCJs.
[0019] Referring now to
[0020] Pairs of directly adjacent detonation waves produce the multiple locations in a non-planar wave within a defined distance range from the plurality of booster charges. The liner is positioned within that range. Short of that range adjacent detonation waves do not interfere sufficiently to form the elevated pressure location and beyond that range interference of the plurality of detonation waves forms a planar wave. Within this range, the warhead (liner, main charge, boosters and initiation system) has a height H1 along the axis and a diameter D1 across the axis, wherein 0.3<=H1/D1<=0.6. By comparison, typical single SCJs form a planar wave have a ratio >1. Each SCJ has a tip velocity of 4-10 km/s and a penetration depth of 7-10 the diameter of the corresponding recess. The main charge has a height H2 along the axis and a recess diameter D2 across the axis, wherein 0.5<=H2/D2<=1.5.
[0021] The plurality of booster charges may be indirectly detonated from a single point detonator or directly detonated by a plurality of individual detonators. The booster charges may be detonated simultaneously or in a timing pattern to control the formation of individual SCJs and the pattern of SCJs.
[0022] Referring now to
[0023] Referring now to
[0024] By comparison, single SCJ warheads that use a planar wave to form the liner into a SCJ typically have conical structures with an apex angle of approximately 60. Structures with apex angles greater than 60 will not properly form into the metal jet.
[0025] The elevated pressures not only cut the liner but form each recess into a metal jet. Because the pressure levels on the edge of each recess are at least 110% of the front of the detonation wave, much shallower recesses can be formed into a SCJ. This increases the design space for the recesses in the liner and the formation of the SCJs.
[0026] Referring now to
[0027] Referring now to
[0028] In comparison to existing single SCJs that produce a planar detonation wave to form the SCJ, the current design requires a main charge with less height H2, hence less volume to form the elevated pressure hot spots. Furthermore, formation of the hot spots to cut the individual dimples or conical structures produces SCJs that are better and more uniformly formed than a single planar detonation wave. Lastly, the current design produces multiple SCJs in a single warhead.
[0029] While several illustrative embodiments of the disclosure have been shown and described, numerous variations and alternate embodiments will occur to those skilled in the art. Such variations and alternate embodiments are contemplated, and can be made without departing from the spirit and scope of the disclosure as defined in the appended claims.