EXPLOSIVE ASSEMBLY SYSTEMS INCLUDING A LINEAR SHAPED CHARGE END PRIME CAP APPARATUS AND RELATED METHODS
20170122710 ยท 2017-05-04
Inventors
- Eric Scheid (Bloomington, IN, US)
- Dan Thomas (Southern Pines, NC, US)
- Brad Moan (Greenwood, IN, US)
- Tom Gailey (Spring Lake, NC, US)
Cpc classification
F42B3/087
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F42B3/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F42D1/043
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F42B1/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F42B3/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F42B3/087
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F42B1/028
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F42D1/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Generally, embodiments of the invention can include a linear shaped charge (LSC) end cap coupling structure adapted for holding an initiator structure adapted to initiate a booster explosive material, the booster explosive material, and the LSC in abutting contact with each other. One embodiment includes a rubber body formed with cavities adapted to receive the LSC, booster, and initiator structure (e.g., detonation cord). One internal cavity can be formed with a plurality of flexible protrusions or fins which are oriented towards a center axis of the preferred embodiment of three cavities configured to impart an interference fit with the initiator structure. Methods related to the invention are also provided.
Claims
1. An explosive assembly including a coupling structure comprising: a body formed from an elastomeric material comprising a shaft end section and an opposing neck protrusion section, wherein said shaft end section and neck protrusion section are formed respectively with a first and second aperture that open into a first and second cavity section within said body, said first and second cavity sections open into each other and are formed surrounding a common center axis, wherein said first cavity section is formed with an interior cavity wall having a larger distance from said common center axis than said second cavity section's distance from said common center axis; wherein said shaft end section is formed with an interference fit adapted to receive and retain a linear shaped charge (LSC) up to a first force; wherein said second cavity section within said neck protrusion section is formed comprising a plurality of spaced apart protrusions or fins that extend a first distance away from said second cavity section's wall towards said common center axis, wherein said plurality of spaced apart protrusions or fins are adapted or formed to displace, securely grip, and retain a detonation cord inserted into said second cavity through said neck protrusion up to a second force; wherein said neck protrusion section comprises a plurality of external stiffening sections adapted to increase structural rigidity of said neck protrusion formed on an exterior wall of said neck protrusion section and coupled to a portion of said shaft end section that extends away from said neck protrusion section.
2. An explosive assembly as in claim 1, wherein said plurality of spaced apart protrusions or fins extend into said second cavity less than half of a distance defined by a radius from said center of said second cavity to said second cavity section's wall.
3. An explosive assembly as in claim 1, wherein said second aperture into said second cavity is formed having an angled bevel surrounding said second aperture wherein said angled bevel is formed to facilitate insertion of said detonation cord.
4. An explosive assembly as in claim 1, wherein said first cavity is adapted to receive an explosive sheet booster and hold said explosive sheet booster in contact with said LSC upon insertion of said LSC into said shaft end section, said explosive assembly further formed to hold said detonation cord in contact with a user installed booster on an opposing side of said explosive sheet booster from said LSC.
5. An explosive assembly as in claim 4, further comprising said LSC, said explosive sheet booster, said user installed booster, and said detonation cord.
6. An explosive assembly structure comprising: an initiator structure adapted to initiate a booster explosive material; said booster explosive material; a linear shaped charge; and a body comprising an elastomeric material formed with a first and second body portion wherein said second body portion extends away from said first body portion and is formed with stiffening structures coupled to a side of said first body portion and coupled with said second body portion's external surface; wherein said body comprises a first, second, and third cavity, wherein said first cavity is formed to insertably receive said linear shaped charge with a flexible interference fit, wherein said second cavity is formed to insertably receive said booster explosive material, wherein said third cavity is formed to insertably receive a first explosive structure, said first, second and third cavities formed to retain said initiator structure in contact with said booster explosive material and retain said linear shaped charge with an opposing side of said booster explosive material; wherein said first cavity is smaller than said second cavity, said second cavity is smaller than said third cavity, wherein said third cavity is formed with a plurality of flexible protrusions configured to impart an interference fit with said initiator structure, wherein said first, second, and third cavities are formed respectively with a common center axis, wherein one side of each of said first and third cavities respectively contain a first and second external opening in said body on opposing sides of said body, wherein said third cavity's external opening is formed with a beveled or internally tapering edge surrounding a wall section of said third cavity wherein said plurality of flexible protrusions extend from, wherein said first cavity is formed.
7. An explosive assembly as in claim 6, wherein said elastomeric material comprises rubber.
8. A method of assembling and using an explosive assembly comprising: providing an explosive assembly structure comprising: an initiator structure adapted to initiate a booster explosive material; said booster explosive material; a linear shaped charge; and a body comprising an elastomeric material formed with a first and second body portion wherein said second body portion extends away from said first body portion and is formed with stiffening structures coupled to a side of said first body portion and coupled with said second body portion's external surface; wherein said body comprises a first, second, and third cavity, wherein said first cavity is formed to insertably receive said linear shaped charge with a flexible interference fit, wherein said second cavity is formed to insertably receive said booster explosive material, wherein said third cavity is formed to insertably receive a first explosive structure, said first, second and third cavities formed to retain said initiator structure in contact with said booster explosive material and retain said linear shaped charge with an opposing side of said booster explosive material; wherein said first cavity is smaller than said second cavity, said second cavity is smaller than said third cavity, wherein said third cavity is formed with a plurality of flexible protrusions configured to impart an interference fit with said initiator structure, wherein said first, second, and third cavities are formed respectively with a common center axis, wherein one side of each of said first and third cavities respectively define a first and second external opening in said body on opposing sides of said body, wherein said third cavity's external opening is formed with a beveled or internally tapering edge surrounding a wall section of said third cavity wherein said plurality of flexible protrusions extend from, wherein said first cavity is formed; positioning said explosive assembly in proximity to a target; and detonating said explosive assembly by actuating a detonation cord.
9. A method as in claim 8, wherein said elastomeric material comprises rubber.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0010] The detailed description of the drawings particularly refers to the accompanying figures in which:
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DETAILED DESCRIPTION OF THE DRAWINGS
[0020] The embodiments of the invention described herein are not intended to be exhaustive or to limit the invention to precise forms disclosed. Rather, the embodiments selected for description have been chosen to enable one skilled in the art to practice the invention.
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[0030] Methods of use can also include providing an exemplary V-Prime 1 such as described above, including detonation cord 5, booster sheet explosive 19, and LSC 3 inserted into the V-Prime 1 in physical contact. Next, the V-Prime 1 assembly with detonator cord 5, booster sheet explosive 19, and LSC 3 are positioned relative to a target surface. Next, the detonation cord 5 is actuated so as to detonate the booster sheet explosive 19 and LSC 3. Methods of manufacturing can include forming the V-Prime 1 with internal cavities dimensioned to receive and retain the LSC 3, booster sheet explosive 19, and detonation cord 5 coupling the LSC 3, booster sheet explosive 19 as described herein.
[0031] Although the invention has been described in detail with reference to certain preferred embodiments, variations and modifications exist within the spirit and scope of the invention as described and defined in the following claims.