Claims
- 1. A heat-resistant explosive device to facilitate controlled explosive detonation in a hot surrounding environment, comprising:
a heat-resistant explosive casing; and explosive material encased within, thereby insulated and prevented from overheating by, said heat-resistant explosive casing.
- 2. The device of claim 1, further comprising:
a detonator well sufficiently removed from an outside surface of said explosive device and said explosive casing to provide suitable heat insulation to a detonator cap placed within said detonator well.
- 3. The device of claim 1, said heat-resistant explosive casing comprising at least one layer of at least one heat insulating material selected from the heat insulator group consisting of:
treated and untreated: silica cloth; aluminized silica cloth; silicone coated silica cloth; fiberglass cloth; silicone impregnated fiberglass fabric; vermiculite coated fiberglass; neoprene coated fiberglass; ceramic cloth; and knitted silica glass.
- 4. The device of claim 1, further comprising a traditional explosive casing encasing said explosive material, wherein said traditional explosive casing and said explosive material therein is encased within said heat-resistant explosive casing.
- 5. The device of claim 1, said explosive material comprising a pliable explosive emoltion.
- 6. The device of claim 1, further comprising a high-heat resistant insulator for sealing a detonator cap within a detonator well of the heat-resistant explosive casing and explosive material combination, thereby providing heat insulation to said detonator cap.
- 7. The device of claim 6, said high-heat resistant insulator comprising a high heat-resistant tape.
- 8. The device of claim 1, further comprising a high-heat resistant material insulating at least one of any wires connected to said device.
- 9. The device of claim 8, said high-heat resistant material comprising at least one heat insulating material selected from the heat insulator group consisting of:
high heat-resistant tape; treated and untreated: silica cloth; silica tubing; aluminized silica cloth; silicone coated silica cloth; fiberglass cloth; fiberglass tubing; silicone impregnated fiberglass fabric; vermiculite coated fiberglass; silicone coated fiberglass; silicone tubing; neoprene coated fiberglass; ceramic cloth; and knitted silica glass.
- 10. The device of claim 1, further comprising:
cooling means for cooling the heat-resistant explosive casing and explosive material combination prior to its use in said hot surrounding environment.
- 11. The device of claim 1, further comprising:
an explosive positioning system with the heat-resistant explosive casing and explosive material combination affixed thereto, enabling a force applied to said explosive positioning system to freely move the heat-resistant explosive casing and explosive material combination to any desired location within said hot surrounding environment and particularly into a desired position for detonation, while said heat-resistant explosive casing insulates and prevents said explosive material from overheating.
- 12. The device of claim 1, further comprising:
detonating means for detonating at will said explosive material.
- 13. The device of claim 1, further comprising:
a coolant-delivery apparatus delivering a coolant to, and cooling, the heat-resistant explosive casing and explosive material combination.
- 14. The device of claim 1, further comprising:
at least one layer of at least one heat insulating material surrounding at least part of the heat-resistant explosive casing and explosive material combination, thereby further insulating and preventing said explosive material from overheating.
- 15. The device of claim 1, further comprising:
a detonator well sufficiently removed from an outside surface of said explosive device and said explosive casing to provide suitable heat insulation to a detonator cap placed within said detonator well; a high-heat resistant insulator comprising a high heat-resistant tape for sealing a detonator cap within said detonator well, thereby providing additional heat insulation to said detonator cap; a traditional explosive casing encasing said explosive material, wherein said traditional explosive casing and said explosive material therein is encased within said heat-resistant explosive casing; a high-heat resistant material comprising at least one heat insulating material selected from the heat insulator group consisting of: high heat-resistant tape; treated and untreated: silica cloth; silica tubing; aluminized silica cloth; silicone coated silica cloth; fiberglass cloth; fiberglass tubing; silicone impregnated fiberglass fabric; vermiculite coated fiberglass; silicone coated fiberglass; silicone tubing; neoprene coated fiberglass; ceramic cloth; and knitted silica glass, insulating at least one of any wires connected to said device; cooling means for cooling the heat-resistant explosive casing and explosive material combination prior to its use in said hot surrounding environment; an explosive positioning system with the heat-resistant explosive casing and explosive material combination affixed thereto, enabling a force applied to said explosive positioning system to freely move the heat-resistant explosive casing and explosive material combination to any desired location within said hot surrounding environment and particularly into a desired position for detonation, while said heat-resistant explosive casing insulates and prevents said explosive material from overheating; detonating means for detonating at will said explosive material; a coolant-delivery apparatus delivering a coolant to, and cooling, the heat-resistant explosive casing and explosive material combination; and at least one layer of at least one heat insulating material surrounding at least part of the heat-resistant explosive casing and explosive material combination, thereby further insulating and preventing said explosive material from overheating; wherein:
said heat-resistant explosive casing comprises at least one layer of at least one heat insulating material selected from the heat insulator group consisting of:
treated and untreated: silica cloth; aluminized silica cloth; silicone coated silica cloth; fiberglass cloth; silicone impregnated fiberglass fabric; vermiculite coated fiberglass; neoprene coated fiberglass; ceramic cloth; and knitted silica glass; and said explosive material comprises a pliable explosive emoltion.
- 16. A method for facilitating controlled explosive detonation in a hot surrounding environment, comprising the steps of providing a heat-resistant explosive device by:
encasing an explosive material within a heat-resistant explosive casing, and thereby insulating and preventing said explosive material from overheating.
- 17. The method of claim 16, comprising the further steps of:
providing a detonator well of said heat-resistant explosive device sufficiently removed from an outside surface of said explosive device and said explosive casing; and placing a detonator cap within said detonator well, thereby suitably insulating and preventing said detonator cap from overheating.
- 18. The method of claim 16, comprising the further step of providing at least one layer of said heat-resistant explosive casing from at least one heat insulating material selected from the heat insulator group consisting of:
treated and untreated: silica cloth; aluminized silica cloth; silicone coated silica cloth; fiberglass cloth; silicone impregnated fiberglass fabric; vermiculite coated fiberglass; neoprene coated fiberglass; ceramic cloth; and knitted silica glass.
- 19. The method of claim 16, comprising the further steps of:
encasing said explosive material in a traditional explosive casing; and encasing said traditional explosive casing and said explosive material therein within said heat-resistant explosive casing.
- 20. The method of claim 16, said explosive material comprising a pliable explosive emoltion.
- 21. The method of claim 16, further comprising the step of:
sealing a detonator cap within a detonator well of the heat-resistant explosive casing and explosive material combination, using a high-heat resistant insulator, thereby providing heat insulation to said detonator cap.
- 22. The method of claim 21, said high-heat resistant insulator comprising a high heat-resistant tape.
- 23. The method of claim 16, further comprising the step of:
insulating at least one of any wires connected to said heat-resistant explosive device using a high-heat resistant material.
- 24. The method of claim 23, comprising the further step of providing said high-heat resistant material from at least one heat insulating material selected from the heat insulator group consisting of:
high heat-resistant tape; treated and untreated: silica cloth; silica tubing; aluminized silica cloth; silicone coated silica cloth; fiberglass cloth; fiberglass tubing; silicone impregnated fiberglass fabric; vermiculite coated fiberglass; silicone coated fiberglass; silicone tubing; neoprene coated fiberglass; ceramic cloth; and knitted silica glass.
- 25. The method of claim 16, further comprising the step of:
cooling the heat-resistant explosive casing and explosive material combination prior to its use in said hot surrounding environment.
- 26. The method of claim 16, further comprising the steps of:
affixing an explosive positioning system to the heat-resistant explosive casing and explosive material combination; applying a force to said explosive positioning system to freely move the heat-resistant explosive casing and explosive material combination to any desired location within said hot surrounding environment and particularly into a desired position for detonation, while said heat-resistant explosive casing insulates and prevents said explosive material from overheating.
- 27. The method of claim 16, further comprising the step of:
detonating at will said explosive material.
- 28. The method of claim 16, further comprising the step of:
delivering a coolant to, and cooling, the heat-resistant explosive casing and explosive material combination.
- 29. The method of claim 16, further comprising the step of:
surrounding at least part of the heat-resistant explosive casing and explosive material combination using at least one layer of at least one heat insulating material, thereby further insulating and preventing said explosive material from overheating.
- 30. The method of claim 16, further comprising the steps of:
providing a detonator well of said heat-resistant explosive device sufficiently removed from an outside surface of said explosive device and said explosive casing; placing a detonator cap within said detonator well, thereby suitably insulating and preventing said detonator cap from overheating; sealing said detonator cap within said detonator well, using a high-heat resistant insulator comprising a high heat-resistant tape, thereby providing additional heat insulation to said detonator cap; providing at least one layer of said heat-resistant explosive casing from at least one heat insulating material selected from the heat insulator group consisting of: treated and untreated: silica cloth; aluminized silica cloth; silicone coated silica cloth; fiberglass cloth; silicone impregnated fiberglass fabric; vermiculite coated fiberglass; neoprene coated fiberglass; ceramic cloth; and knitted silica glass; encasing said explosive material in a traditional explosive casing; encasing said traditional explosive casing and said explosive material therein within said heat-resistant explosive casing; insulating at least one of any wires connected to said heat-resistant explosive device using a high-heat resistant material comprising at least one heat insulating material selected from the heat insulator group consisting of: high heat-resistant tape; treated and untreated: silica cloth; silica tubing; aluminized silica cloth; silicone coated silica cloth; fiberglass cloth; fiberglass tubing; silicone impregnated fiberglass fabric; vermiculite coated fiberglass; silicone coated fiberglass; silicone tubing; neoprene coated fiberglass; ceramic cloth; and knitted silica glass; cooling the heat-resistant explosive casing and explosive material combination prior to its use in said hot surrounding environment; affixing an explosive positioning system to the heat-resistant explosive casing and explosive material combination; applying a force to said explosive positioning system to freely move the heat-resistant explosive casing and explosive material combination to any desired location within said hot surrounding environment and particularly into a desired position for detonation, while said heat-resistant explosive casing insulates and prevents said explosive material from overheating; detonating at will said explosive material; delivering a coolant to, and cooling, the heat-resistant explosive casing and explosive material combination; and surrounding at least part of the heat-resistant explosive casing and explosive material combination using at least one layer of at least one heat insulating material, thereby further insulating and preventing said explosive material from overheating; wherein:
said explosive material comprises a pliable explosive emoltion.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation of pending application Ser. No. 09/769,845 filed Jan. 25, 2001 which is hereby incorporated by reference; which is in turn a divisional of application Ser. No. 09/394,377 filed Sep. 10, 1999, now U.S. Pat. No. 6,321,690 issued Nov. 27, 2001; which is in turn a continuation-in-part of pending application Ser. No. 09/341,395 filed Jan. 14, 1998; which is in turn is a continuation of application Ser. No. 08/786,096 filed Jan. 17,1997, now U.S. Pat. No. 5,769,034 issued Jun. 23, 1998.
Divisions (1)
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09394377 |
Sep 1999 |
US |
Child |
09769845 |
Jan 2001 |
US |
Continuations (2)
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09769845 |
Jan 2001 |
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May 2002 |
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08786096 |
Jan 1997 |
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09341395 |
Jul 1999 |
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Continuation in Parts (1)
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09341395 |
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09394377 |
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