Vented-at-temperature igniter
09784548 · 2017-10-10
Assignee
Inventors
Cpc classification
F42D1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F42C15/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F42C19/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F42C15/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F42C19/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A vented pyrotechnic device is provided that hermetically seals the pyrotechnic material contained therein under ambient storage conditions, but vents upon exposure to elevated-temperature conditions at or below the outgassing temperature for the pyrotechnic material. The vent passage communicating the chamber containing the pyrotechnic material with the exterior of the device is initially sealed at ambient storage conditions by a temperature-sensitive material. When exposed to a predetermined temperature condition, the temperature-sensitive material undergoes a physical change unblocking the passage and permitting venting of off gases produced by the pyrotechnic material.
Claims
1. A pyrotechnic device comprising: a device body comprising an outer sidewall and an interior chamber that contains an explosive output charge that is sealed within said body, said chamber comprising opposed input and output ends; and a frangible member disposed in covering relationship to said output end; said device comprising a vent passage extending between said chamber and the exterior of said body, said vent passage being sealed with a temperature-sensitive material that, upon heating of said device to a predetermined temperature, unseals said vent passage and permits communication between said chamber and the exterior of said body, wherein said temperature-sensitive material unseals said passage at a temperature lower than the outgassing temperature of said output charge.
2. The device according to claim 1, wherein said temperature-sensitive material hermetically seals said chamber until exposure of said device to said predetermined temperature.
3. The device according to claim 1, wherein said temperature-sensitive material unseals said passage at a temperature of between about 150° F. to about 500° F.
4. The device according to claim 1, wherein said temperature-sensitive material comprises a solder.
5. The device according to claim 1, wherein said frangible member comprises a rupture disc.
6. The device according to claim 5, wherein said vent passage is formed through said rupture disc.
7. The device according to claim 5, wherein said passage includes a path defined between said body and said rupture disc.
8. The device according to claim 1, wherein said passage extends from said chamber through said body.
9. The device according to claim 1, wherein said device further comprises a percussion igniter operable to ignite said explosive output charge.
10. The device according to claim 9, wherein said device further comprises a transfer charge configured to receive energy released by said percussion igniter and ignite said explosive output charge.
11. A pyrotechnic igniter comprising: an igniter body comprising an outer sidewall and an interior chamber containing an explosive output charge that is hermetically sealed within said body, said chamber comprising opposed input and output ends; a rupture disc disposed in covering relationship to said output end and comprising an orifice formed therethrough that defines a passage extending between said chamber and the exterior of said igniter body, said orifice being hermetically sealed with a solid solder material that, upon heating of said igniter to a predetermined temperature, melts thereby unsealing said passage and permitting communication between said chamber and the exterior of said igniter body; and a percussion igniter operable to ignite said explosive output charge.
12. A method of venting a pyrotechnic device containing a pyrotechnic material comprising: providing a pyrotechnic device comprising a device body having an interior chamber that contains an explosive output charge sealed therein, said device including a passage extending between said chamber and the exterior of said body, said passage including a temperature-sensitive material disposed therein blocking communication between said chamber and the exterior of said body, said temperature-sensitive material comprising a solder; and introducing said device into an elevated-temperature environment sufficient to melt said solder and unseal said passage thereby opening communication between said chamber and the exterior of said body through said passage, wherein said elevated-temperature environment is a subterranean wellbore.
13. The method according to claim 12, wherein said elevated-temperature environment causes said output charge to release off gases within said chamber.
14. The method according to claim 13, said method including venting at least a portion of said off gases through said passage and into the exterior environment surrounding said body.
15. The method according to claim 12, wherein the temperature of said elevated-temperature environment is between about 150° F. to about 500° F.
16. The method according to claim 12, wherein said method further comprises detonating said explosive output charge after exposure of said pyrotechnic device to said elevated-temperature environment for at least 2 hours.
17. The method according to claim 12, said explosive charge being hermetically sealed within said chamber prior to being introduced into said elevated-temperature environment.
18. A pyrotechnic device comprising: a device body comprising an outer sidewall and an interior chamber that contains an explosive output charge that is sealed within said body, said chamber comprising opposed input and output ends; and a frangible member disposed in covering relationship to said output end, said device comprising a vent passage extending between said chamber and the exterior of said body, said vent passage being sealed with a temperature-sensitive material that, upon heating of said device to a predetermined temperature, unseals said vent passage and permits communication between said chamber and the exterior of said body, wherein said temperature-sensitive material hermetically seals said chamber until exposure of said device to said predetermined temperature.
19. A pyrotechnic device comprising: a device body comprising an outer sidewall and an interior chamber that contains an explosive output charge that is sealed within said body, said chamber comprising opposed input and output ends; and a frangible member disposed in covering relationship to said output end, said device comprising a vent passage extending between said chamber and the exterior of said body, said vent passage being sealed with a temperature-sensitive material that, upon heating of said device to a predetermined temperature, unseals said vent passage and permits communication between said chamber and the exterior of said body, wherein said temperature-sensitive material unseals said passage at a temperature of between about 150° F. to about 500° F.
20. A pyrotechnic device comprising: a device body comprising an outer sidewall and an interior chamber that contains an explosive output charge that is sealed within said body, said chamber comprising opposed input and output ends; and a frangible member disposed in covering relationship to said output end, said device comprising a vent passage extending between said chamber and the exterior of said body, said vent passage being sealed with a temperature-sensitive material that, upon heating of said device to a predetermined temperature, unseals said vent passage and permits communication between said chamber and the exterior of said body, wherein said temperature-sensitive material comprises a solder.
21. A pyrotechnic device comprising: a device body comprising an outer sidewall and an interior chamber that contains an explosive output charge that is sealed within said body, said chamber comprising opposed input and output ends; and a frangible member disposed in covering relationship to said output end, said device comprising a vent passage extending between said chamber and the exterior of said body, said vent passage being sealed with a temperature-sensitive material that, upon heating of said device to a predetermined temperature, unseals said vent passage and permits communication between said chamber and the exterior of said body, wherein said frangible member comprises a rupture disc, and wherein said vent passage is formed through said rupture disc.
22. A pyrotechnic device comprising: a device body comprising an outer sidewall and an interior chamber that contains an explosive output charge that is sealed within said body, said chamber comprising opposed input and output ends; and a frangible member disposed in covering relationship to said output end, said device comprising a vent passage extending between said chamber and the exterior of said body, said vent passage being sealed with a temperature-sensitive material that, upon heating of said device to a predetermined temperature, unseals said vent passage and permits communication between said chamber and the exterior of said body, wherein said frangible member comprises a rupture disc, and wherein said passage includes a path defined between said body and said rupture disc.
23. A pyrotechnic device comprising: a device body comprising an outer sidewall and an interior chamber that contains an explosive output charge that is sealed within said body, said chamber comprising opposed input and output ends; and a frangible member disposed in covering relationship to said output end, said device comprising a vent passage extending between said chamber and the exterior of said body, said vent passage being sealed with a temperature-sensitive material that, upon heating of said device to a predetermined temperature, unseals said vent passage and permits communication between said chamber and the exterior of said body, wherein said passage extends from said chamber through said body.
24. A method of venting a pyrotechnic device containing a pyrotechnic material comprising: providing a pyrotechnic device comprising a device body having an interior chamber that contains an explosive output charge sealed therein, said device including a passage extending between said chamber and the exterior of said body, said passage including a temperature-sensitive material disposed therein blocking communication between said chamber and the exterior of said body; introducing said device into an elevated-temperature environment sufficient to cause said temperature-sensitive material to unseal said passage thereby opening communication between said chamber and the exterior of said body through said passage; and detonating said explosive output charge after exposure of said pyrotechnic device to said elevated-temperature environment for at least 2 hours.
25. The method of claim 24, wherein said elevated temperature environment is a subterranean wellbore.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
(8) Turning now to
(9) Output section 14 further comprises a frangible member 24, such as a rupture disc, installed over an output end 26 of interior chamber 20. As shown in
(10) It is undesirable for output charge 22 to be exposed to the outside environment during storage of device 10. Therefore, output charge 22 must be sealed within chamber 20, and preferably hermetically sealed, thereby preventing infiltration of external contaminants, such as moisture, into chamber 20 and the pyrotechnic material contained therein. Passage 28 is sealed with a temperature sensitive material 32 that, upon exposure to a predetermined temperature condition, unseals passage 28, preferably by changing phases, and permits communication between chamber 20 and the exterior of the device body 12.
(11) In certain embodiments, material 32 is a low-melting point alloy or eutectic, such as a solder, that creates a mechanically strong hermetic seal to protect the pyrotechnic material contained within device 10 during storage and installation within a downhole tool. In certain embodiments, the material 32 comprises a tin or lead-based solder such as TIX® 54.808 Soft Solder, which comprises approximately 93% tin/4.6% indium/2.3% lead. The solder may be installed within passage 28 using a flux material such as All-State® Duzall® flux. It is within the scope of the present invention for other temperature-sensitive materials to be used to hermetically seal passage 28, such as adhesives or synthetic resin materials. Regardless of the temperature-sensitive material selected, in particular embodiments, the material undergoes a phase change thereby unsealing passage 28 at a temperature that is lower than the outgassing temperature of the pyrotechnic material comprising output charge 22. Most commonly, the phase change that material 32 undergoes to unseal passage 28 is a change from solid to liquid (i.e., melting); however, it is within the scope of the present invention for material 32 to sublime, or change directly from solid to a gas, upon exposure to conditions at or below those that might result in thermal decomposition of the pyrotechnic contained within chamber 20. In particular embodiments, the temperature-sensitive material 32 unseals passage 28 at a temperature of at least 150° F., 175° F., 200° F. or 250° F., but less than 500° F., 450° F., 400° F., or 350° F.
(12) It is noted that frangible member 24 and temperature-sensitive material 32 are distinguishable from laminate composite rupture disc structures, such as those disclosed in U.S. Pat. No. 4,905,722 in which a rupture member having openings formed therein is provided with a plastic sealing member overlying and sealing the openings. In certain embodiments, the temperature-sensitive material not only overlays vent passage 28, but may reside within the passage thereby providing a strong, hermetic seal. Thus, in certain embodiments of the present invention, the use of polymeric or plastic membranes and coatings are avoided as these coverings do not offer a rugged, reliable seal under extreme conditions such as might be encountered in a subterranean wellbore. Moreover, the plastics from which these coverings are made can outgas under the same or even lower temperature conditions as might also result in the outgassing of the pyrotechnic material contained within chamber 20. These off gases, which may be similar in composition to the off gases produced by the thermal decomposition of the pyrotechnic material, would further accelerate the deactivation of the pyrotechnic material.
(13) It is also an important for material 32 to not affect the bursting characteristics of frangible member 24, or at least not affect the bursting characteristics in an unknown or uncontrollable manner. Thus, in certain embodiments, irrespective of whether material 32 has been removed from passage 28 or not, ignition of output charge 22 will cause frangible member 24 to rupture thereby permitting the escape of energy and hot gases through output end 26 in order to ignite a pyrotechnic material disposed downstream from device 10.
(14) Also contained within output section 14 is a transfer sleeve 34 that contains a transfer charge 36. In certain embodiments, transfer charge 36 may comprise silver azide or other appropriate pyrotechnic material. Transfer sleeve 34 includes rupturable components 38, 40 that seal, and preferably hermetically seal, sleeve 34. Transfer sleeve 34 also seals the input end 42 of chamber 20, thereby completing the hermetic sealing of output charge 22 therein.
(15) Percussion igniter 16 comprises a striking surface 44 configured to be contacted with a firing pin, for example, of a firing initiator. Located immediately beneath striking surface 44 is a primer charge 46 that is configured to be ignited by the kinetic energy transferred to it by a firing pin. Primer charge 46 may comprise black powder or any other suitable pyrotechnic material. A transfer member 48 is located adjacent to primer charge 46 and comprises passageways 50 formed therein, which are operable to direct the output of primer charge 46 toward transfer sleeve 34, through a thin separator material 52. The output of primer charge 46 is operable to ignite transfer charge 36, whose output is operable to ignite output charge 22.
(16) In certain embodiments, output section 14 and percussion igniter 16 are fastened or secured together, such as through press fitting, crimping, or other frictional means of engagement.
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(19) Turning to the embodiment of
(20) In other embodiments, the vent passages may simply be defined by a gap disposed between member 74 and body 12. A path for communication of the passage with the exterior of body 12 may be accomplished, for example, by an interruption in the weld seam that secures member 74 to body 12. The temperature-sensitive material 88 may be applied so as to fill in the interrupted segments of the weld seam and provide a hermetic seal for chamber 20.
(21) As noted previously, devices according to the present invention are particularly suited for use in downhole operations where temperatures that exceed the outgassing temperature for the pyrotechnic material contained within the device might be encountered. In particular, the devices according to the present invention permit venting of off gases emitted by the pyrotechnic material under such environmental conditions, but still permit the pyrotechnic material to be hermetically sealed within the device during storage, transportation, and initial downhole deployment.
(22) Accordingly, methods of venting a pyrotechnic device containing a pyrotechnic material according to the present invention comprise providing a pyrotechnic device constructed according to the principles discussed above. In particular, and with exemplary reference to
(23) As device 10 is lowered deeper into the well bore, warmer temperature conditions may be encountered which causes the pyrotechnic material contained within chamber 20 to outgas. Because chamber 20 is no longer hermetically sealed, the off-gases produced by the pyrotechnic material can escape through passage 28 and into the exterior environment surrounding the device 10, rather than remain entrapped within chamber 20 and accelerate further deactivation of the pyrotechnic material.
(24) In certain embodiments, the elevated-temperature conditions encountered in the wellbore can be between about 150° F. to about 500° F., between about 200° F. to about 450° F., or between about 250° F. to about 400° F. The pyrotechnic device 10 may be exposed to these elevated-temperature conditions for a prolonged period of time before the device is actuated and the pyrotechnic material contained therein ignited. In certain embodiments, the device 10 may be exposed to the elevated-temperature conditions for a period of at least 2 hours, at least 10 hours, at least 25 hours, or at least 50 hours before actuation thereof. The venting of the off gases produced by the pyrotechnic material sufficiently slows thermal degradation of the pyrotechnic material so that it will reliably ignite and provide a useable output, even after such prolonged exposure periods.
(25) The foregoing description of devices and methods according to the present invention are understood to be illustrative, and nothing therein should be taken as a limitation upon the overall scope of the invention.