Claims
- 1. A penetrator for impacting a target, said penetrator having a leading end, a trailing end, and a longitudinal axis extending between said leading end and said trailing end, said penetrator comprising:
- a plurality of penetrator segments positioned in axial alignment with each other along the longitudinal axis of said penetrator to form a stack, each of said penetrator segments having a nose portion and a rear portion, said plurality of penetrator segments including a leading penetrator segment, at least one intermediate penetrator segment, and a trailing penetrator segment;
- said leading penetrator segment being positioned at the leading end of said penetrator, the rear portion of said leading penetrator segment having a rearwardly opening cavity therein, the rearwardly opening cavity being shaped to receive a nose portion of a forwardmost one of said at least one intermediate penetrator segment;
- the rear portion of each of said at least one intermediate penetrator segment having a rearwardly opening cavity therein, the rearwardly opening cavity of each of said at least one intermediate penetrator segment being shaped to receive a nose portion of an immediately rearwardly positioned penetrator segment, the rear portion of each of said at least one intermediate penetrator segment having a plurality of fins pivotally mounted thereon, each of the fins having a stowed position and a deployed position, the nose portion of each of said at least one intermediate penetrator segment being positioned within the rearwardly opening cavity of an immediately preceding penetrator segment; and
- said trailing penetrator segment being positioned such that said at least one intermediate penetrator segment is located between said leading penetrator segment and said trailing penetrator segment, the nose portion of said trailing penetrator segment being positioned in the rearwardly opening cavity of a rearmost one of said at least one intermediate penetrator segment such that the nose portion of said trailing penetrator segment engages an element associated with each of said fins of the rearmost one of said at least one intermediate penetrator segment to thereby prevent the fins of the rearmost one of said at least one intermediate penetrator segment from pivoting from their stowed positions to their deployed positions, the rear portion of said trailing penetrator segment having a tail portion, said trailing penetrator segment having an explosive element contained therein;
- whereby upon initiation of deployment of said penetrator, aerodynamic drag against the tail portion of said trailing penetrator segment decreases the velocity of said trailing penetrator segment, thereby causing said trailing penetrator segment to withdraw from the rearwardly opening cavity of the rearmost one of said at least one intermediate penetrator segment, whereupon the fins of the rearmost one of said at least one intermediate penetrator segment pivot from their stowed positions to their deployed positions; whereupon aerodynamic drag against the thus deployed fins of the rearmost one of said at least one intermediate penetrator segment decreases the velocity of the rearmost one of said at least one intermediate penetrator segment; and when the fins of the forwardmost one of said at least one intermediate penetrator segment are in their deployed positions, aerodynamic drag against the fins of the forwardmost one of said at least one intermediate penetrator segment decreases the velocity of the forwardmost one of said at least one intermediate penetrator segment, thereby causing said forwardmost one of said at least one intermediate penetrator segment to withdraw from the rearwardly opening cavity of the leading penetrator segment; whereupon said plurality of penetrator segments have aerodynamically separated from each other and each penetrator segment can separately impact the target in sequence and the explosive element contained within said trailing penetrator segment can explode.
- 2. A penetrator in accordance with claim 1, wherein each of said fins has a stabilizing portion and a deployment preventing arm, said stabilizing portion and said deployment preventing arm being positioned about a pivot, such that when the nose portion of a rear penetrator segment of a pair of immediately adjacent penetrator segments is positioned in the rearwardly opening cavity of a front penetrator segment of the respective pair of immediately adjacent penetrator segments, the nose portion of the rear penetrator segment of the respective pair contacts the deployment preventing arms of the fins of the front penetrator segment of the respective pair so as to prevent the fins of the front penetrator segment of the respective pair from pivoting from their stowed positions to their deployed positions; and such that when the nose portion of the rear penetrator segment of the respective pair withdraws from the rearwardly opening cavity of the front penetrator segment of the respective pair, the nose portion of the rear penetrator segment of the respective pair disengages from contacting the deployment preventing arms of the fins of the front penetrator segment of the respective pair, thereby permitting the fins of the front penetrator segment of the respective pair to pivot from their stowed positions to their deployed positions, whereupon aerodynamic drag against the stabilizing portions of the fins of the front penetrator segment of the respective pair can decrease the velocity of the front penetrator segment of the respective pair.
- 3. A penetrator in accordance with claim 1, wherein the nose portion of each of said plurality of penetrator segments has a tapered shape.
- 4. A penetrator in accordance with claim 3, wherein the rearwardly opening cavity of each of said at least one intermediate penetrator segment and of said leading penetrator segment has a tapered shape so as to be complementary to the nose portion of the immediately rearwardly positioned penetrator segment.
- 5. A penetrator in accordance with claim 1, wherein said penetrator further comprises:
- a releasable securing member extending along the longitudinal axis of said penetrator, said securing member securing said plurality of penetrator segments in axial alignment with each other in a stacked configuration until a predetermined time after launching of said penetrator; and
- a release mechanism for releasing said securing member at a predetermined time after launching of said penetrator;
- whereby said plurality of penetrator segments are secured in axial alignment with each other in a stacked configuration until said release mechanism releases said securing member, thereby permitting said plurality of penetrator segments to aerodynamically separate.
- 6. A penetrator in accordance with claim 1, wherein the target has an exterior surface, and wherein each penetrator segment impacts the exterior surface of the target to thereby create a cavity in the exterior surface of the target so that the explosive element can explode in the cavity in the exterior surface of the target.
- 7. A penetrator in accordance with claim 1, wherein the target has an exterior surface and an interior, and wherein each penetrator segment impacts the exterior surface of the target to thereby create a passageway in the exterior surface to the interior of the target so that the explosive element can explode in the interior of the target.
- 8. A penetrator in accordance with claim 1, wherein the impact of said trailing penetrator segment with the target causes the explosive element contained within said trailing penetrator segment to explode.
- 9. A penetrator in accordance with claim 1, wherein when the fins of said at least one intermediate penetrator segment are in their stowed positions, each fin of said at least one intermediate penetrator segment has an aerodynamic surface which is exposed to air flow, wherein air flow across the aerodynamic surfaces of the fins of said at least one intermediate penetrator segment subsequent to launching of said penetrator causes the fins of said at least one intermediate penetrator segment to open to their deployed positions.
- 10. A penetrator in accordance with claim 1, wherein the rear portion of each of said at least one intermediate penetrator segment has at least four fins.
- 11. A penetrator in accordance with claim 1, wherein the fins of each one of said at least one intermediate penetrator segment are mounted around the circumference of the rear portion of the respective intermediate penetrator segment, each fin being pivotally mounted to the rear portion of the respective intermediate penetrator segment by at least one pivot pin, each of said at least one pivot pin being in a plane that is generally perpendicular to the longitudinal axis of said penetrator.
- 12. A penetrator in accordance with claim 1, wherein said penetrator has at least four penetrator segments.
- 13. A penetrator in accordance with claim 1, wherein said penetrator has at least eight penetrator segments.
- 14. A penetrator in accordance with claim 1, wherein the rear portion of each of said at least one intermediate penetrator segment has a diameter that is less than the maximum diameter of the nose portion of the respective intermediate penetrator segment, whereby when the fins of the respective intermediate penetrator segment are in their stowed positions, they do not protrude radially outwardly beyond the maximum diameter of the nose portion of the respective intermediate penetrator segment.
- 15. A penetrator in accordance with claim 1, wherein each of the fins of said at least one intermediate penetrator segment has a longitudinal axis, whereby when the fins of said at least one intermediate penetrator segment are in their stowed positions, the longitudinal axis of each of the fins of said at least one intermediate penetrator segment is generally parallel to the longitudinal axis of said penetrator, and when the fins of said at least one intermediate penetrator segment are in their deployed positions, the longitudinal axis of each of the thus deployed fins of said at least one intermediate penetrator segment is at an angle to the longitudinal axis of said penetrator.
- 16. A penetrator for impacting a target, said penetrator having a leading end, a trailing end, and a longitudinal axis extending between said leading end and said trailing end, said penetrator comprising:
- a plurality of penetrator segments positioned in axial alignment along the longitudinal axis of said penetrator to form a stack, each of said penetrator segments having a tapered nose portion and a generally cylindrical rear portion, said plurality of penetrator segments including a leading penetrator segment, at least one intermediate penetrator segment, and a trailing penetrator segment;
- said leading penetrator segment being positioned at the leading end of said penetrator, the rear portion of said leading penetrator segment having a rearwardly opening cavity therein, the rearwardly opening cavity being tapered in shape and shaped to receive a nose portion of a forwardmost one of said at least one intermediate penetrator segment;
- the rear portion of each of said at least one intermediate penetrator segment having a rearwardly opening cavity therein, the rearwardly opening cavity of each of said at least one intermediate penetrator segment being tapered in shape and shaped to receive a nose portion of an immediately rearwardly positioned penetrator segment, the nose portion of each of said at least one intermediate penetrator segment being positioned within the rearwardly opening cavity of an immediately preceding penetrator segment, each of said at least one intermediate penetrator segment having a plurality of fins pivotally mounted around the circumference of the rear portion of the respective intermediate penetrator segment, each of said fins being pivotally mounted by a pivot pin positioned through a pinhole in the fin and supported by two bosses positioned adjacent to opposing sides of the fin, said pivot pin and said pinhole being in a plane that is perpendicular to the longitudinal axis of said penetrator; each of said fins having a longitudinal axis, a stabilizing portion, and a deployment preventing arm; said stabilizing portion and said deployment preventing arm being located about the pivot pin positioned through the respective fin, each of said fins having a stowed position wherein the longitudinal axis of the respective fin is generally parallel to the longitudinal axis of said penetrator, and a deployed position wherein the longitudinal axis of the thus deployed respective fin is at an angle to the longitudinal axis of said penetrator;
- whereby when the nose portion of a rear penetrator segment of a pair of immediately adjacent penetrator segments is positioned within the rearwardly opening cavity of a front penetrator segment of the respective pair of immediately adjacent penetrator segments, the nose portion of the rear penetrator segment of the respective pair contacts the deployment preventing arms of the fins of the front penetrator segment of the respective pair, thereby preventing the fins of the front penetrator segment of the respective pair from pivoting from their stowed positions to their deployed positions, and whereby when the nose portion of the rear penetrator segment of the respective pair is not positioned in the rearwardly opening cavity of the front penetrator segment of the respective pair, the nose portion of the rear penetrator segment of the respective pair does not contact the deployment preventing arms of the fins of the front penetrator segment of the respective pair, thereby permitting the fins of the front penetrator segment of the respective pair to pivot from their stowed positions to their deployed positions;
- said trailing penetrator segment being positioned such that said at least one intermediate penetrator segment is located between said leading penetrator segment and said trailing penetrator segment, the nose portion of said trailing penetrator segment being positioned in the rearwardly opening cavity of a rearmost one of said at least one intermediate penetrator segment, the nose portion of said trailing penetrator segment contacting the deployment preventing arms of the fins of the rearmost one of said at least one intermediate penetrator segment, thereby preventing the fins of the rearmost one of said at least one intermediate penetrator segment from pivoting from their stowed positions to their deployed positions the rear portion of said trailing penetrator segment having an enlarged tail portion, said trailing penetrator segment having an explosive element contained therein;
- a releasable securing member extending along the longitudinal axis of said penetrator, said securing member securing said plurality of penetrator segments in axial alignment with each other in a stacked configuration until a predetermined time after launching of said penetrator; and
- a release mechanism for releasing said securing member at a predetermined time after launching of said penetrator, whereby said plurality of penetrator segments are secured in axial alignment in a stacked configuration until said release mechanism releases said securing member;
- whereby upon launching said penetrator and after said release mechanism releases said securing member, aerodynamic drag against the enlarged tail portion of said trailing penetrator segment decreases the velocity of said trailing penetrator segment, thereby causing said trailing penetrator segment to withdraw from the rearwardly opening cavity of the rearmost one of said at least one intermediate penetrator segment, thereby permitting the fins of the rearmost one of said at least one intermediate penetrator segment to pivot from their stowed positions to their deployed positions; whereupon aerodynamic drag against the thus deployed fins of the rearmost one of said at least one intermediate penetrator segment decreases the velocity of the rearmost one of said at least one intermediate penetrator segment; and upon deployment of the fins of the forwardmost one of said at least one intermediate penetrator segment, aerodynamic drag against the thus deployed fins of the forwardmost one of said at least one intermediate penetrator segment decreases the velocity of the forwardmost one of said at least one intermediate penetrator segment, thereby causing the nose portion of the forwardmost one of said at least one intermediate penetrator segment to withdraw from the rearwardly opening cavity of the leading penetrator segment; whereupon said plurality of penetrator segments have aerodynamically separated from each other and each penetrator segment can separately impact the target in sequence and without being adversely affected by the impact of any preceding penetrator segments and the explosive element contained within said trailing penetrator segment can explode.
- 17. A penetrator in accordance with claim 16, wherein the target has an exterior surface, and wherein each penetrator segment impacts the exterior surface of the target to thereby create a cavity in the exterior surface of the target so that the explosive element can explode in the cavity in the exterior surface of the target.
- 18. A penetrator in accordance with claim 16, wherein the target has an exterior surface and an interior, and wherein each penetrator segment impacts the exterior surface of the target to thereby create a passageway in the exterior surface to the interior of the target so that the explosive element can explode in the interior of the target.
- 19. A penetrator in accordance with claim 16, wherein the impact of said trailing penetrator segment with the target causes the explosive element contained within said trailing penetrator segment to explode.
- 20. A penetrator for impacting a target, said penetrator having a leading end, a trailing end and a longitudinal axis extending between said leading end and said trailing end, said penetrator comprising:
- a first penetrator segment positioned in axial alignment with the longitudinal axis of said penetrator, said first penetrator segment having a tail portion and a nose portion, said first penetrator segment having an explosive element contained therein; and
- a second penetrator segment positioned in axial alignment with said first penetrator segment, said second penetrator segment being immediately adjacent to and preceding said first penetrator segment, said second penetrator segment having a rearwardly opening cavity shaped to receive the nose portion of said first penetrator segment, said second penetrator segment further having a plurality of fins pivotally mounted thereon, each of said fins having a stowed position and a deployed position, the nose portion of said first penetrator segment being initially positioned in the rearwardly opening cavity of said second penetrator segment such that the nose portion of said first penetrator segment engages an element associated with each of said fins of said second penetrator segment to thereby prevent the fins of said second penetrator segment from pivoting from their stowed positions to their deployed positions;
- whereby upon initiation of deployment of said penetrator, aerodynamic drag against the tail portion of said first penetrator segment causes the velocity of said first penetrator segment to decrease with respect to the velocity of said second penetrator segment, whereupon the nose of said first penetrator segment withdraws from the rearwardly opening cavity of said second penetrator segment, whereupon the fins of said second penetrator segment pivot from their stowed positions to their deployed positions, whereupon said first and second penetrator segments have separated from each other and each of said first and second penetrator segments can separately impact the target in sequence and the explosive element contained within said first penetrator segment can explode.
- 21. A penetrator in accordance with claim 20, wherein each of the fins of said second penetrator segment has a stabilizing portion and a deployment preventing arm, said stabilizing portion and said deployment preventing arm positioned about a pivot; whereby when the nose portion of said first penetrator segment is positioned in the rearwardly opening cavity of said second penetrator segment, the nose portion of said first penetrator segment contacts the deployment preventing arms of the fins of said second penetrator segment, thereby preventing the fins of the second penetrator segment from pivoting from their stowed positions to their deployed positions; and whereby when the nose portion of said first penetrator segment withdraws from the rearwardly opening cavity of said second penetrator segment, the nose portion of said first penetrator segment no longer contacts the deployment preventing arms of the fins of said second penetrator segment, thereby permitting the fins of said second penetrator segment to pivot from their stowed positions to their deployed positions.
- 22. A penetrator in accordance with claim 20, wherein the nose portion of said first penetrator segment has a tapered shape.
- 23. A penetrator in accordance with claim 22, wherein the rearwardly opening cavity of said second penetrator segment has a tapered shape so as to be complementary to the nose portion of said first penetrator segment.
- 24. A penetrator in accordance with claim 20, wherein said penetrator further comprises:
- a releasable securing member extending along the longitudinal axis of said penetrator, said securing member securing said first and second penetrator segments in axial alignment with each other and adjacent to each other until a predetermined time after launching of said penetrator; and
- a release mechanism for releasing said securing member at a predetermined time after launching of said penetrator;
- whereby said first and second penetrator segments are secured in axial alignment with each other and adjacent to each other until said release mechanism releases said securing member, thereby permitting said first and second penetrator segments to aerodynamically separate.
- 25. A penetrator in accordance with claim 20, wherein the target has an exterior surface, and wherein said first and second penetrator segments impact the exterior surface of the target to thereby create a cavity in the exterior surface of the target so that the explosive element can explode in the cavity in the exterior surface of the target.
- 26. A penetrator in accordance with claim 20, wherein the target has an exterior surface and an interior, and wherein said first penetrator segment impacts the exterior surface of the target to thereby create a passageway in the exterior surface to the interior of the target so that said first penetrator segment impacts the interior of the target and the explosive element can explode in the interior of the target.
- 27. A penetrator in accordance with claim 20, wherein the impact of said first penetrator segment with the target causes the explosive element contained within said first penetrator segment to explode.
- 28. A penetrator in accordance with claim 20, wherein said second penetrator segment has at least four fins.
- 29. A penetrator in accordance with claim 20, wherein said second penetrator segment has a tapered nose portion and a cylindrical rear portion, with the fins of said second penetrator segment being mounted around the circumference of the rear portion of said second penetrator segment, with each fin being pivotally mounted to the second penetrator segment by at least one pivot pin, each of said at least one pivot pin being in a plane that is generally perpendicular to the longitudinal axis of said penetrator.
- 30. A penetrator in accordance with claim 29, wherein the diameter of the rear portion of said second penetrator segment is smaller than the maximum diameter of said nose portion of said second penetrator segment, whereby when the fins of said second penetrator segment are in their stowed positions, the fins do not protrude radially outwardly beyond the maximum diameter of the nose portion of said second penetrator segment.
- 31. A penetrator in accordance with claim 20, wherein each of the fins of said second penetrator segment has a longitudinal axis, whereby when the fins of said second penetrator segment are in their stowed positions, the longitudinal axis of each fin of said second penetrator segment is generally parallel to the longitudinal axis of said penetrator, and when the fins of said second penetrator segment are in their deployed positions, the longitudinal axis of each of the thus deployed fins of said second penetrator segment is at an angle to the longitudinal axis of said penetrator segment.
- 32. A penetrator for impacting a target, said penetrator having a leading end, a trailing end, and a longitudinal axis extending between said leading end and said trailing end, said penetrator comprising:
- a plurality of penetrator segments positioned in axial alignment with each other along the longitudinal axis of said penetrator to form a stack, one or more of said penetrator segments containing an explosive element, each of said penetrator segments having a nose portion and a rear portion, said plurality of penetrator segments including a leading penetrator segment, at least one intermediate penetrator segment, and a trailing penetrator segment;
- said leading penetrator segment being positioned at the leading end of said penetrator, the rear portion of said leading penetrator segment having a rearwardly opening cavity therein, the rearwardly opening cavity being shaped to receive a nose portion of a forwardmost one of said at least one intermediate penetrator segment;
- the rear portion of each of said at least one intermediate penetrator segment having a rearwardly opening cavity therein, the rearwardly opening cavity of each of said at least one intermediate penetrator segment being shaped to receive a nose portion of an immediately rearwardly positioned penetrator segment, the rear portion of each of said at least one intermediate penetrator segment having a plurality of fins pivotally mounted thereon, each of the fins having a stowed position and a deployed position, the nose portion of each of said at least one intermediate penetrator segment being positioned within the rearwardly opening cavity of an immediately preceding penetrator segment; and
- said trailing penetrator segment being positioned such that said at least one intermediate penetrator segment is located between said leading penetrator segment and said trailing penetrator segment, the nose portion of said trailing penetrator segment being positioned in the rearwardly opening cavity of a rearmost one of said at least one intermediate penetrator segment such that the nose portion of said trailing penetrator segment engages an element associated with each of the fins of said at least one intermediate penetrator segment to thereby prevent the fins of the rearmost one of said at least one intermediate penetrator segment from pivoting from their stowed positions to their deployed positions, the rear portion of said trailing penetrator segment having a tail portion;
- whereby upon initiation of deployment of said penetrator, aerodynamic drag against the tail portion of said trailing penetrator segment decreases the velocity of said trailing penetrator segment, thereby causing said trailing penetrator segment to withdraw from the rearwardly opening cavity of the rearmost one of said at least one intermediate penetrator segment, whereupon the fins of the rearmost one of said at least one intermediate penetrator segment can pivot from their stowed positions to their deployed positions; whereupon aerodynamic drag against the thus deployed fins of the rearmost one of said at least one intermediate penetrator segment decreases the velocity of the rearmost one of said at least one intermediate penetrator segment; and when the fins of the forwardmost one of said at least one intermediate penetrator segment are in their deployed positions, aerodynamic drag against the fins of the forwardmost one of said at least one intermediate penetrator segment decreases the velocity of the forwardmost one of said at least one intermediate penetrator segment, thereby causing said forwardmost one of said at least one intermediate penetrator segment to withdraw from the rearwardly opening cavity of the leading penetrator segment; whereupon said plurality of penetrator segments have aerodynamically separated from each other and each penetrator segment can separately impact the target in sequence and the explosive element contained within one or more of said penetrator segments can explode.
- 33. A penetrator in accordance with claim 32, wherein each of said fins has a stabilizing portion and a deployment preventing arm, said stabilizing portion and said deployment preventing arm being positioned about a pivot, such that when the nose portion of a rear penetrator segment of a pair of immediately adjacent penetrator segments is positioned in the rearwardly opening cavity of a front penetrator segment of the respective pair of immediately adjacent penetrator segments, the nose portion of the rear penetrator segment of the respective pair contacts the deployment preventing arms of the fins of the front penetrator segment of the respective pair so as to prevent the fins of the front penetrator segment of the respective pair from pivoting from their stowed positions to their deployed positions; and such that when the nose portion of the rear penetrator segment of the respective pair withdraws from the rearwardly opening cavity of the front penetrator segment of the respective pair, the nose portion of the rear penetrator segment of the respective pair disengages from contacting the deployment preventing arms of the fins of the front penetrator segment of the respective pair, thereby permitting the fins of the front penetrator segment of the respective pair to pivot from their stowed positions to their deployed positions, whereupon aerodynamic drag against the stabilizing portions of the fins of the front penetrator segment of the respective pair can decrease the velocity of the front penetrator segment of the respective pair.
- 34. A penetrator in accordance with claim 32, wherein the nose portion of each of said plurality of penetrator segments has a tapered shape.
- 35. A penetrator in accordance with claim 34, wherein the rearwardly opening cavity of each of said at least one intermediate penetrator segment and of said leading penetrator segment has a tapered shape so as to be complementary to the nose portion of the immediately rearwardly positioned penetrator segment.
- 36. A penetrator in accordance with claim 32, wherein said penetrator further comprises:
- a releasable securing member extending along the longitudinal axis of said penetrator, said securing member securing said plurality of penetrator segments in axial alignment with each other in a stacked configuration until a predetermined time after launching of said penetrator, and
- a release mechanism for releasing said securing member at a predetermined time after launching of said penetrator;
- whereby said plurality of penetrator segments are secured in axial alignment with each other in a stacked configuration until said release mechanism releases said securing member, thereby permitting said plurality of penetrator segments to aerodynamically separate.
- 37. A penetrator in accordance with claim 32, wherein when the fins of said at least one intermediate penetrator segment are in their stowed positions, each fin of said at least one intermediate penetrator segment has an aerodynamic surface which is exposed to air flow, wherein air flow across the aerodynamic surfaces of the fins of said at least one intermediate penetrator segment subsequent to launching of said penetrator causes the fins of said at least one intermediate penetrator segment to open to their deployed positions.
- 38. A penetrator in accordance with claim 32, wherein the rear portion of each of said at least one intermediate penetrator segment has at least four fins.
- 39. A penetrator in accordance with claim 32, wherein the fins of each one of said at least one intermediate penetrator segment are mounted around the circumference of the rear portion of the respective intermediate penetrator segment, each fin being pivotally mounted to the rear portion of the respective intermediate penetrator segment by at least one pivot pin, each of said at least one pivot pin being in a plane that is generally perpendicular to the longitudinal axis of said penetrator.
- 40. A penetrator in accordance with claim 32, wherein said penetrator has at least four penetrator segments.
- 41. A penetrator in accordance with claim 32, wherein said penetrator has at least eight penetrator segments.
- 42. A penetrator in accordance with claim 32, wherein the rear portion of each of said at least one intermediate penetrator segment has a diameter that is less than the maximum diameter of the nose portion of the respective intermediate penetrator segment, whereby when the fins of the respective intermediate penetrator segment are in their stowed positions, they do not protrude radially outwardly beyond the maximum diameter of the nose portion of the respective intermediate penetrator segment.
- 43. A penetrator in accordance with claim 32, wherein each of the fins of said at least one intermediate penetrator segment has a longitudinal axis, whereby when the fins of said at least one intermediate penetrator segment are in their stowed positions, the longitudinal axis of each of the fins of said at least one intermediate penetrator segment is generally parallel to the longitudinal axis of said penetrator, and when the fins of said at least one intermediate penetrator segment are in their deployed positions, the longitudinal axis of each of the thus deployed fins of said at least one intermediate penetrator segment is at an angle to the longitudinal axis of said penetrator.
- 44. A penetrator in accordance with claim 32, wherein said trailing penetrator segment contains an explosive element.
- 45. A penetrator in accordance with claim 44, wherein the target has an exterior surface, and wherein each penetrator segment impacts the exterior surface of the target to thereby create a cavity in the exterior surface of the target so that the explosive element contained in said trailing penetrator segment can explode in the cavity in the exterior surface of the target.
- 46. A penetrator in accordance with claim 44, wherein the target has an exterior surface and an interior, and wherein each penetrator segment impacts the exterior surface of the target to thereby create a passageway in the exterior surface to the interior of the target so that the explosive element contained in said trailing penetrator segment can explode in the interior of the target.
- 47. A penetrator in accordance with claim 44, wherein the impact of said trailing penetrator segment with the target causes the explosive element contained within said trailing penetrator segment to explode.
- 48. A penetrator in accordance with claim 44, wherein said trailing penetrator segment contains a time-to-go fuse for initiating the explosion of said explosive element contained with said trailing penetrator segment.
- 49. A penetrator in accordance with claim 32, wherein said leading penetrator segment contains an explosive element.
- 50. A penetrator in accordance with claim 49, wherein the impact of said leading penetrator segment with the target causes the explosive element contained within said leading penetrator segment to explode.
- 51. A penetrator in accordance with claim 49, wherein said leading penetrator segment contains a time-to-go fuse for initiating the explosion of said explosive element contained in said leading penetrator segment.
- 52. A penetrator in accordance with claim 32, wherein at least one of said at least one intermediate penetrator segment contains an explosive element.
- 53. A penetrator in accordance with claim 52, wherein the impact of said at least one intermediate penetrator segment with the target causes the explosive element contained in at least one of said at least one intermediate penetrator segment to explode.
- 54. A penetrator in accordance with claim 52, wherein the at least one of said at least one intermediate penetrator segment that contains an explosive element also contains a time-to-go fuse for initiating the explosion of said explosive element.
- 55. A penetrator for impacting a target, said penetrator having a leading end, a trailing end, and a longitudinal axis extending between said leading end and said trailing end, said penetrator comprising:
- a plurality of penetrator segments positioned in axial alignment along the longitudinal axis of said penetrator to form a stack, one or more of said penetrator segments containing an explosive element, each of said penetrator segments having a tapered nose portion and a generally cylindrical rear portion, said plurality of penetrator segments including a leading penetrator segment, at least one intermediate penetrator segment, and a trailing penetrator segment;
- said leading penetrator segment being positioned at the leading end of said penetrator, the rear portion of said leading penetrator segment having a rearwardly opening cavity therein, the rearwardly opening cavity being tapered in shape and shaped to receive a nose portion of a forwardmost one of said at least one intermediate penetrator segment;
- the rear portion of each of said at least one intermediate penetrator segment having a rearwardly opening cavity therein, the rearwardly opening cavity of each of said at least one intermediate penetrator segment being tapered in shape and shaped to receive a nose portion of an immediately rearwardly positioned penetrator segment, the nose portion of each of said at least one intermediate penetrator segment being positioned within the rearwardly opening cavity of an immediately preceding penetrator segment, each of said at least one intermediate penetrator segment having a plurality of fins pivotally mounted around the circumference of the rear portion of the respective intermediate penetrator segment, each of said fins being pivotally mounted by a pivot pin positioned through a pinhole in the fin and supported by two bosses positioned adjacent to opposing sides of the fin, said pivot pin and said pinhole being in a plane that is perpendicular to the longitudinal axis of said penetrator; each of said fins having a longitudinal axis, a stabilizing portion, and a deployment preventing arm; said stabilizing portion and said deployment preventing arm being located about the pivot pin positioned through the respective fin, each of said fins having a stowed position wherein the longitudinal axis of the respective fin is generally parallel to the longitudinal axis of said penetrator, and a deployed position wherein the longitudinal axis of the thus deployed respective fin is at an angle to the longitudinal axis of said penetrator;
- whereby when the nose portion of a rear penetrator segment of a pair of immediately adjacent penetrator segments is positioned within the rearwardly opening cavity of a front penetrator segment of the respective pair of immediately adjacent penetrator segments, the nose portion of the rear penetrator segment of the respective pair contacts the deployment preventing arms of the fins of the front penetrator segment of the respective pair, thereby preventing the fins of the front penetrator segment of the respective pair from pivoting from their stowed positions to their deployed positions, and whereby when the nose portion of the rear penetrator segment of the respective pair is not positioned in the rearwardly opening cavity of the front penetrator segment of the respective pair, the nose portion of the rear penetrator segment of the respective pair does not contact the deployment preventing arms of the fins of the front penetrator segment of the respective pair, thereby permitting the fins of the front penetrator segment of the respective pair to pivot from their stowed positions to their deployed positions;
- said trailing penetrator segment being positioned such that said at least one intermediate penetrator segment is located between said leading penetrator segment and said trailing penetrator segment, the nose portion of said trailing penetrator segment being positioned in the rearwardly opening cavity of a rearmost one of said at least one intermediate penetrator segment, the nose portion of said trailing penetrator segment contacting the deployment preventing arms of the fins of the rearmost one of said at least one intermediate penetrator segment, thereby preventing the fins of the rearmost one of said at least one intermediate penetrator segment from pivoting from their stowed positions to their deployed positions, the rear portion of said trailing penetrator segment having an enlarged tail portion;
- a releasable securing member extending along the longitudinal axis of said penetrator, said securing member securing said plurality of penetrator segments in axial alignment with each other in a stacked configuration until a predetermined time after launching of said penetrator; and
- a release mechanism for releasing said securing member at a predetermined time after launching of said penetrator, whereby said plurality of penetrator segments are secured in axial alignment in a stacked configuration until said release mechanism releases said securing member;
- whereby upon launching said penetrator and after said release mechanism releases said securing member, aerodynamic drag against the enlarged tail portion of said trailing penetrator segment decreases the velocity of said trailing penetrator segment, thereby causing said trailing penetrator segment to withdraw from the rearwardly opening cavity of the rearmost one of said at least one intermediate penetrator segment, thereby permitting the fins of the rearmost one of said at least one intermediate penetrator segment to pivot from their stowed positions to their deployed positions; whereupon aerodynamic drag against the thus deployed fins of the rearmost one of said at least one intermediate penetrator segment decreases the velocity of the rearmost one of said at least one intermediate penetrator segment; and upon deployment of the fins of the forwardmost one of said at least one intermediate penetrator segment, aerodynamic drag against the thus deployed fins of the forwardmost one of said at least one intermediate penetrator segment decreases the velocity of the forwardmost one of said at least one intermediate penetrator segment, thereby causing the nose portion of the forwardmost one of said at least one intermediate penetrator segment to withdraw from the rearwardly opening cavity of the leading penetrator segment; whereupon said plurality of penetrator segments have aerodynamically separated from each other and each penetrator segment can separately impact the target in sequence and without being adversely affected by the impact of any preceding penetrator segments and the explosive element contained within one or more of said penetrator segments can explode.
- 56. A penetrator in accordance with claim 55, wherein said trailing penetrator segment contains an explosive element.
- 57. A penetrator in accordance with claim 56, wherein the target has an exterior surface, and wherein each penetrator segment impacts the exterior surface of the target to thereby create a cavity in the exterior surface of the target so that the explosive element contained in said trailing penetrator segment can explode in the cavity in the exterior surface of the target.
- 58. A penetrator in accordance with claim 56, wherein the target has an exterior surface and an interior, and wherein each penetrator segment impacts the exterior surface of the target to thereby create a passageway in the exterior surface to the interior of the target so that the explosive element contained in said trailing penetrator segment can explode in the interior of the target.
- 59. A penetrator in accordance with claim 56, wherein the impact of said trailing penetrator segment with the target causes the explosive element contained within said trailing penetrator segment to explode.
- 60. A penetrator in accordance with claim 56, wherein said trailing penetrator segment contains a time-to-go fuse for initiating the explosion of said explosive element contained in said trailing penetrator segment.
- 61. A penetrator in accordance with claim 55, wherein said leading penetrator segment contains an explosive element.
- 62. A penetrator in accordance with claim 61, wherein the impact of said leading penetrator segment with the target causes the explosive element contained within said leading penetrator segment to explode.
- 63. A penetrator in accordance with claim 61, wherein said leading penetrator segment contains a time-to-go fuse for initiating the explosion of said explosive element contained in said leading penetrator segment.
- 64. A penetrator in accordance with claim 55, wherein at least one of said at least one intermediate penetrator segment contains an explosive element.
- 65. A penetrator in accordance with claim 64, wherein the impact of said at least one intermediate penetrator segment with the target causes the explosive element contained in at least one of said at least one intermediate penetrator segment to explode.
- 66. A penetrator in accordance with claim 64, wherein said at least one intermediate penetrator segment that contains an explosive element also contains a time-to-go fuse for initiating the explosion of said explosive element.
- 67. A penetrator for impacting a target, said penetrator having a leading end, a trailing end and a longitudinal axis extending between said leading end and said trailing end, said penetrator comprising:
- a first penetrator segment positioned in axial alignment with the longitudinal axis of said penetrator, said first penetrator segment having a tail portion and a nose portion; and
- a second penetrator segment positioned in axial alignment with said first penetrator segment, said second penetrator segment having an explosive element contained therein, said second penetrator segment being immediately adjacent to and preceding said first penetrator segment, said second penetrator segment having a rearwardly opening cavity shaped to receive the nose portion of said first penetrator segment, said second penetrator segment further having a plurality of fins pivotally mounted thereon, each of said fins having a stowed position and a deployed position, the nose portion of said first penetrator segment being initially positioned in the rearwardly opening cavity of said second penetrator segment such that the nose portion of said first penetrator segment engages an element associated with each of the fins of said second penetrator segment to thereby prevent the fins of said second penetrator segment from pivoting from their stowed positions to their deployed positions;
- whereby upon initiation of deployment of said penetrator, aerodynamic drag against the tail portion of said first penetrator segment causes the velocity of said first penetrator segment to decrease with respect to the velocity of said second penetrator segment, whereupon the nose portion of said first penetrator segment withdraws from the rearwardly opening cavity of said second penetrator segment, thereby permitting the fins of said second penetrator segment to pivot from their stowed positions to their deployed positions, whereupon said first and second penetrator segments have separated from each other and each of said first and second penetrator segments can separately impact the target in sequence and the explosive element contained within said second penetrator segment can explode.
- 68. A penetrator in accordance with claim 67, wherein each of the fins of said second penetrator segment has a stabilizing portion and a deployment preventing arm, said stabilizing portion and said deployment preventing arm positioned about a pivot; whereby when the nose portion of said first penetrator segment is positioned in the rearwardly opening cavity of said second penetrator segment, the nose portion of said first penetrator segment contacts the deployment preventing arms of the fins of said second penetrator segment, thereby preventing the fins of the second penetrator segment from pivoting from their stowed positions to their deployed positions; and whereby when the nose portion of said first penetrator segment withdraws from the rearwardly opening cavity of said second penetrator segment, the nose portion of said first penetrator segment no longer contacts the deployment preventing arms of the fins of said second penetrator segment, thereby permitting the fins of said second penetrator segment to pivot from their stowed positions to their deployed positions.
- 69. A penetrator in accordance with claim 68, wherein the nose portion of said first penetrator segment has a tapered shape.
- 70. A penetrator in accordance with claim 69, wherein the rearwardly opening cavity of said second penetrator segment has a tapered shape so as to be complementary to the nose portion of said first penetrator segment.
- 71. A penetrator in accordance with claim 67, wherein said penetrator further comprises:
- a releasable securing member extending along the longitudinal axis of said penetrator, said securing member securing said first and second penetrator segments in axial alignment with each other and adjacent to each other until a predetermined time after launching of said penetrator; and
- a release mechanism for releasing said securing member at a predetermined time after launching of said penetrator;
- whereby said first and second penetrator segments are secured in axial alignment with each other and adjacent to each other until said release mechanism releases said securing member, thereby permitting said first and second penetrator segments to aerodynamically separate.
- 72. A penetrator in accordance with claim 67, wherein the impact of said second penetrator segment with the target causes the explosive element contained within said second penetrator segment to explode.
- 73. A penetrator in accordance with claim 67, wherein said second penetrator segment contains a time-to-go fuse for initiating the explosion of said explosive element contained in said second penetrator segment.
- 74. A penetrator in accordance with claim 67, wherein said second penetrator segment has at least four fins.
- 75. A penetrator in accordance with claim 67, wherein said second penetrator segment has a tapered nose portion and a cylindrical rear portion, with the fins of said second penetrator segment being mounted around the circumference of the rear portion of said second penetrator segment, with each fin being pivotally mounted to the second penetrator segment by at least one pivot pin, each of said at least one pivot pin being in a plane that is generally perpendicular to the longitudinal axis of said penetrator.
- 76. A penetrator in accordance with claim 75, wherein the diameter of the rear portion of said second penetrator segment is smaller than the maximum diameter of said nose portion of said second penetrator segment, whereby when the fins of said second penetrator segment are in their stowed positions, the fins do not protrude radially outwardly beyond the maximum diameter of the nose portion of said second penetrator segment.
- 77. A penetrator in accordance with claim 67, wherein each of the fins of said second penetrator segment has a longitudinal axis, whereby when the fins of said second penetrator segment are in their stowed positions, the longitudinal axis of each fin of said second penetrator segment is generally parallel to the longitudinal axis of said penetrator, and when the fins of said second penetrator segment are in their deployed positions, the longitudinal axis of each of the thus deployed fins of said second penetrator segment is at an angle to the longitudinal axis of said penetrator segment.
- 78. A penetrator in accordance with claim 67, wherein said first penetrator segment has an explosive element contained therein.
- 79. A penetrator in accordance with claim 78, wherein the impact of said first penetrator segment with the target causes the explosive element contained within said first penetrator segment to explode.
- 80. A penetrator in accordance with claim 78, wherein said first penetrator segment contains a time-to-go fuse for initiating the explosion of said explosive element contained with said first penetrator segment.
- 81. A penetrator for impacting a target, said penetrator having a leading end, a trailing end, and a longitudinal axis extending between said leading end and said trailing end, said penetrator comprising:
- a plurality of penetrator segments positioned in axial alignment with each other along the longitudinal axis of said penetrator to form a stack, each of said penetrator segments having a nose portion and a rear portion, said plurality of penetrator segments including a leading penetrator segment, at least one intermediate penetrator segment, and a trailing penetrator segment;
- said leading penetrator segment being positioned at the leading end of said penetrator, the rear portion of said leading penetrator segment having a rearwardly opening cavity therein, the rearwardly opening cavity being shaped to receive a nose portion of a forwardmost one of said at least one intermediate penetrator segment, said leading penetrator segment having an explosive element contained therein;
- the rear portion of each of said at least one intermediate penetrator segment having a rearwardly opening cavity therein, the rearwardly opening cavity of each of said at least one intermediate penetrator segment being shaped to receive a nose portion of an immediately rearwardly positioned penetrator segment, the rear portion of each of said at least one intermediate penetrator segment having a plurality of fins pivotally mounted thereon, each of the fins having a stowed position and a deployed position, the nose portion of each of said at least one intermediate penetrator segment being positioned within the rearwardly opening cavity of an immediately preceding penetrator segment; and
- said trailing penetrator segment being positioned such that said at least one intermediate penetrator segment is located between said leading penetrator segment and said trailing penetrator segment, the nose portion of said trailing penetrator segment being positioned in the rearwardly opening cavity of a rearmost one of said at least one intermediate penetrator segment such that the nose portion of said trailing penetrator segment engages an element associated with each of the fins of said at least one intermediate penetrator segment to thereby prevent the fins of the rearmost one of said at least one intermediate penetrator segment from pivoting from their stowed positions to their deployed positions, the rear portion of said trailing penetrator segment having a tail portion;
- whereby upon initiation of deployment of said penetrator, aerodynamic drag against the tail portion of said trailing penetrator segment decreases the velocity of said trailing penetrator segment, thereby causing said trailing penetrator segment to withdraw from the rearwardly opening cavity of the rearmost one of said at least one intermediate penetrator segment, whereupon the fins of the rearmost one of said at least one intermediate penetrator segment can pivot from their stowed positions to their deployed positions; whereupon aerodynamic drag against the thus deployed fins of the rearmost one of said at least one intermediate penetrator segment decreases the velocity of the rearmost one of said at least one intermediate penetrator segment; and when the fins of the forwardmost one of said at least one intermediate penetrator segment are in their deployed positions, aerodynamic drag against the fins of the forwardmost one of said at least one intermediate penetrator segment decreases the velocity of the forwardmost one of said at least one intermediate penetrator segment, thereby causing said forwardmost one of said at least one intermediate penetrator segment to withdraw from the rearwardly opening cavity of the leading penetrator segment; whereupon said plurality of penetrator segments have aerodynamically separated from each other and each penetrator segment can separately impact the target in sequence and the explosive element contained within said leading penetrator segment can explode.
- 82. A penetrator in accordance with claim 81, wherein each of said fins has a stabilizing portion and a deployment preventing arm, said stabilizing portion and said deployment preventing arm being positioned about a pivot, such that when the nose portion of a rear penetrator segment of a pair of immediately adjacent penetrator segments is positioned in the rearwardly opening cavity of a front penetrator segment of the respective pair of immediately adjacent penetrator segments, the nose portion of the rear penetrator segment of the respective pair contacts the deployment preventing arms of the fins of the front penetrator segment of the respective pair so as to prevent the fins of the front penetrator segment of the respective pair from pivoting from their stowed positions to their deployed positions; and such that when the nose portion of the rear penetrator segment of the respective pair withdraws from the rearwardly opening cavity of the front penetrator segment of the respective pair, the nose portion of the rear penetrator segment of the respective pair disengages from contacting the deployment preventing arms of the fins of the front penetrator segment of the respective pair, thereby permitting the fins of the front penetrator segment of the respective pair to pivot from their stowed positions to their deployed positions, whereupon aerodynamic drag against the stabilizing portions of the fins of the front penetrator segment of the respective pair can decrease the velocity of the front penetrator segment of the respective pair.
- 83. A penetrator in accordance with claim 81, wherein the nose portion of each of said plurality of penetrator segments has a tapered shape.
- 84. A penetrator in accordance with claim 83, wherein the rearwardly opening cavity of each of said at least one intermediate penetrator segment and of said leading penetrator segment has a tapered shape so as to be complementary to the nose portion of the immediately rearwardly positioned penetrator segment.
- 85. A penetrator in accordance with claim 81, wherein said penetrator further comprises:
- a releasable securing member extending along the longitudinal axis of said penetrator, said securing member securing said plurality of penetrator segments in axial alignment with each other in a stacked configuration until a predetermined time after launching of said penetrator; and
- a release mechanism for releasing said securing member at a predetermined time after launching of said penetrator;
- whereby said plurality of penetrator segments are secured in axial alignment with each other in a stacked configuration until said release mechanism releases said securing member, thereby permitting said plurality of penetrator segments to aerodynamically separate.
- 86. A penetrator in accordance with claim 81, wherein the impact of said leading penetrator segment with the target causes the explosive element contained in said leading penetrator segment to explode.
- 87. A penetrator in accordance with claim 81, wherein said leading penetrator segment contains a time-to-go fuse for initiating the explosion of said explosive element contained within said leading penetrator segment.
- 88. A penetrator in accordance with claim 81, wherein when the fins of said at least one intermediate penetrator segment are in their stowed positions, each fin of said at least one intermediate penetrator segment has an aerodynamic surface which is exposed to air flow, wherein air flow across the aerodynamic surfaces of the fins of said at least one intermediate penetrator segment subsequent to launching of said penetrator causes the fins of said at least one intermediate penetrator segment to open to their deployed positions.
- 89. A penetrator in accordance with claim 81, wherein the rear portion of each of said at least one intermediate penetrator segment has at least four fins.
- 90. A penetrator in accordance with claim 81, wherein the fins of each one of said at least one intermediate penetrator segment are mounted around the circumference of the rear portion of the respective intermediate penetrator segment, each fin being pivotally mounted to the rear portion of the respective intermediate penetrator segment by at least one pivot pin, each of said at least one pivot pin being in a plane that is generally perpendicular to the longitudinal axis of said penetrator.
- 91. A penetrator in accordance with claim 81, wherein said penetrator has at least four penetrator segments.
- 92. A penetrator in accordance with claim 81, wherein said penetrator has at least eight penetrator segments.
- 93. A penetrator in accordance with claim 81, wherein the rear portion of each of said at least one intermediate penetrator segment has a diameter that is less than the maximum diameter of the nose portion of the respective intermediate penetrator segment, whereby when the fins of the respective intermediate penetrator segment are in their stowed positions, they do not protrude radially outwardly beyond the maximum diameter of the nose portion of the respective intermediate penetrator segment.
- 94. A penetrator in accordance with claim 81, wherein each of the fins of said at least one intermediate penetrator segment has a longitudinal axis, whereby when the fins of said at least one intermediate penetrator segment are in their stowed positions, the longitudinal axis of each of the fins of said at least one intermediate penetrator segment is generally parallel to the longitudinal axis of said penetrator, and when the fins of said at least one intermediate penetrator segment are in their deployed positions, the longitudinal axis of each of the thus deployed fins of said at least one intermediate penetrator segment is at an angle to the longitudinal axis of said penetrator.
- 95. A penetrator for impacting a target, said penetrator having a leading end, a trailing end, and a longitudinal axis extending between said leading end and said trailing end, said penetrator comprising:
- a plurality of penetrator segments positioned in axial alignment with each other along the longitudinal axis of said penetrator to form a stack, each of said penetrator segments having a nose portion and a rear portion, said plurality of penetrator segments including a leading penetrator segment, at least one intermediate penetrator segment, and a trailing penetrator segment;
- said leading penetrator segment being positioned at the leading end of said penetrator, the rear portion of said leading penetrator segment having a rearwardly opening cavity therein, the rearwardly opening cavity being shaped to receive a nose portion of a forwardmost one of said at least one intermediate penetrator segment;
- the rear portion of each of said at least one intermediate penetrator segment having a rearwardly opening cavity therein, the rearwardly opening cavity of each of said at least one intermediate penetrator segment being shaped to receive a nose portion of an immediately rearwardly positioned penetrator segment, the rear portion of each of said at least one intermediate penetrator segment having a plurality of fins pivotally mounted thereon, each of the fins having a stowed position and a deployed position, the nose portion of each of said at least one intermediate penetrator segment being positioned within the rearwardly opening cavity of an immediately preceding penetrator segment, at least one of said intermediate penetrator segments having an explosive element contained therein; and
- said trailing penetrator segment being positioned such that said at least one intermediate penetrator segment is located between said leading penetrator segment and said trailing penetrator segment, the nose portion of said trailing penetrator segment being positioned in the rearwardly opening cavity of a rearmost one of said at least one intermediate penetrator segment such that the nose portion of said trailing penetrator segment engages an element associated with each of the fins of said at least one intermediate penetrator segment to thereby prevent the fins of the rearmost one of said at least one intermediate penetrator segment from pivoting from their stowed positions to their deployed positions, the rear portion of said trailing penetrator segment having a tail portion;
- whereby upon initiation of deployment of said penetrator, aerodynamic drag against the tail portion of said trailing penetrator segment decreases the velocity of said trailing penetrator segment, thereby causing said trailing penetrator segment to withdraw from the rearwardly opening cavity of the rearmost one of said at least one intermediate penetrator segment, whereupon the fins of the rearmost one of said at least one intermediate penetrator segment can pivot from their stowed positions to their deployed positions; whereupon aerodynamic drag against the thus deployed fins of the rearmost one of said at least one intermediate penetrator segment decreases the velocity of the rearmost one of said at least one intermediate penetrator segment; and when of the fins of the forwardmost one of said at least one intermediate penetrator segment are in their deployed positions, aerodynamic drag against the fins of the forwardmost one of said at least one intermediate penetrator segment decreases the velocity of the forwardmost one of said at least one intermediate penetrator segment, thereby causing said forwardmost one of said at least one intermediate penetrator segment to withdraw from the rearwardly opening cavity of the leading penetrator segment; whereupon said plurality of penetrator segments have aerodynamically separated from each other and each penetrator segment can separately impact the target in sequence and the explosive element contained within at least one of said at least one intermediate penetrator segment can explode.
- 96. A penetrator in accordance with claim 95, wherein each of said fins has a stabilizing portion and a deployment preventing arm, said stabilizing portion and said deployment preventing arm being positioned about a pivot, such that when the nose portion of a rear penetrator segment of a pair of immediately adjacent penetrator segments is positioned in the rearwardly opening cavity of a front penetrator segment of the respective pair of immediately adjacent penetrator segments, the nose portion of the rear penetrator segment of the respective pair contacts the deployment preventing arms of the fins of the front penetrator segment of the respective pair so as to prevent the fins of the front penetrator segment of the respective pair from pivoting from their stowed positions to their deployed positions; and such that when the nose portion of the rear penetrator segment of the respective pair withdraws from the rearwardly opening cavity of the front penetrator segment of the respective pair, the nose portion of the rear penetrator segment of the respective pair disengages from contacting the deployment preventing arms of the fins of the front penetrator segment of the respective pair, thereby permitting the fins of the front penetrator segment of the respective pair to pivot from their stowed positions to their deployed positions, whereupon aerodynamic drag against the stabilizing portions of the fins of the front penetrator segment of the respective pair can decrease the velocity of the front penetrator segment of the respective pair.
- 97. A penetrator in accordance with claim 95, wherein the nose portion of each of said plurality of penetrator segments has a tapered shape.
- 98. A penetrator in accordance with claim 97, wherein the rearwardly opening cavity of each of said at least one intermediate penetrator segment and of said leading penetrator segment has a tapered shape so as to be complementary to the nose portion of the immediately rearwardly positioned penetrator segment.
- 99. A penetrator in accordance with claim 95, wherein said penetrator further comprises:
- a releasable securing member extending along the longitudinal axis of said penetrator, said securing member securing said plurality of penetrator segments in axial alignment with each other in a stacked configuration until a predetermined time after launching of said penetrator; and
- a release mechanism for releasing said securing member at a predetermined time after launching of said penetrator;
- whereby said plurality of penetrator segments are secured in axial alignment with each other in a stacked configuration until said release mechanism releases said securing member, thereby permitting said plurality of penetrator segments to aerodynamically separate.
- 100. A penetrator in accordance with claim 95, wherein the impact of said at least one intermediate penetrator segment with the target causes the explosive element contained in at least one of said at least one intermediate penetrator segment to explode.
- 101. A penetrator in accordance with claim 95, wherein the at least one intermediate penetrator segment that contains said explosive element also contains a time-to-go fuse for initiating the explosion of said explosive element.
- 102. A penetrator in accordance with claim 95, wherein when the fins of said at least one intermediate penetrator segment are in their stowed positions, each fin of said at least one intermediate penetrator segment has an aerodynamic surface which is exposed to air flow, wherein air flow across the aerodynamic surfaces of the fins of said at least one intermediate penetrator segment subsequent to launching of said penetrator causes the fins of said at least one intermediate penetrator segment to open to their deployed positions.
- 103. A penetrator in accordance with claim 95, wherein the rear portion of each of said at least one intermediate penetrator segment has at least four fins.
- 104. A penetrator in accordance with claim 95, wherein the fins of each one of said at least one intermediate penetrator segment are mounted around the circumference of the rear portion of the respective intermediate penetrator segment, each fin being pivotally mounted to the rear portion of the respective intermediate penetrator segment by at least one pivot pin, each of said at least one pivot pin being in a plane that is generally perpendicular to the longitudinal axis of said penetrator.
- 105. A penetrator in accordance with claim 95, wherein said penetrator has at least four penetrator segments.
- 106. A penetrator in accordance with claim 95, wherein said penetrator has at least eight penetrator segments.
- 107. A penetrator in accordance with claim 95, wherein the rear portion of each of said at least one intermediate penetrator segment has a diameter that is less than the maximum diameter of the nose portion of the respective intermediate penetrator segment, whereby when the fins of the respective intermediate penetrator segment are in their stowed positions, they do not protrude radially outwardly beyond the maximum diameter of the nose portion of the respective intermediate penetrator segment.
- 108. A penetrator in accordance with claim 95, wherein each of the fins of said at least one intermediate penetrator segment has a longitudinal axis, whereby when the fins of said at least one intermediate penetrator segment are in their stowed positions, the longitudinal axis of each of the fins of said at least one intermediate penetrator segment is generally parallel to the longitudinal axis of said penetrator, and when the fins of said at least one intermediate penetrator segment are in their deployed positions, the longitudinal axis of each of the thus deployed fins of said at least one intermediate penetrator segment is at an angle to the longitudinal axis of said penetrator.
Parent Case Info
This application is a continuation-in-part of application Ser. No. 08/915,652 filed Aug. 21, 1997, now abandoned.
US Referenced Citations (17)
Foreign Referenced Citations (5)
Number |
Date |
Country |
2535450 |
Apr 1984 |
FRX |
1231139 |
Dec 1966 |
DEX |
3834925 |
Apr 1990 |
DEX |
4007810 |
Sep 1991 |
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4031208 |
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Continuation in Parts (1)
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Number |
Date |
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Parent |
915652 |
Aug 1997 |
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