Device, system, and method for supplying fire suppressing agent to the interior of a container for an extended duration
09901764 ยท 2018-02-27
Assignee
Inventors
Cpc classification
A62C31/22
HUMAN NECESSITIES
International classification
A62C3/00
HUMAN NECESSITIES
A62C31/22
HUMAN NECESSITIES
Abstract
A device for supplying fire suppressing agent to the interior of a container for an extended duration may include a plurality of chambers configured to contain and selectively expel the fire suppressing agent, a puncture mechanism configured to puncture a container, and a manifold in flow communication with the plurality of chambers and the puncture mechanism. The device may further include a controller configured to initiate expulsion of the fire suppressing agent from the chambers in a controlled manner, where the device is configured such that the fire suppressing agent may be first expelled from a first one of the plurality of chambers at a first time, and the fire suppressing agent may be expelled from a second one of the plurality of chambers at a second time that is later than the first time.
Claims
1. A device for supplying fire suppressing agent to the interior of a container for an extended duration, the device comprising: a plurality of chambers configured to contain and selectively expel the fire suppressing agent; a puncture mechanism configured to puncture a container comprising a conveyance tube and a puncture tip associated with the conveyance tube; a manifold in flow communication with the plurality of chambers and the puncture mechanism; and a controller configured to initiate expulsion of the fire suppressing agent from the chambers in a controlled manner, wherein the device is configured such that the fire suppressing agent is expelled from a first one of the plurality of chambers at a first time, wherein the conveyance tube and the puncture tip are configured such that the puncture tip translates relative to the conveyance tube away from the manifold to puncture the container, thereby providing flow communication between the conveyance tube and the interior of the container, wherein the puncture mechanism further comprises a pressure disk coupled to the puncture tip, the pressure disk being configured to transfer force from the fire suppressing agent after expulsion from the chambers to the puncture tip, thereby inducing the puncture tip to translate relative to the conveyance tube away from the manifold, wherein the pressure disk further comprises an emergency pressure release valve, and wherein the device is configured such that the fire suppressing agent is expelled from a second one of the plurality of chambers at a second time later than the first time.
2. The device of claim 1, wherein the conveyance tube further comprises a guide stop configured to limit a maximum distance that the puncture tip translates relative to the conveyance tube.
3. The device of claim 1, wherein the conveyance tube further comprises a locking mechanism configured to secure the puncture tip at a maximum remote position relative to the manifold.
4. The device of claim 1, wherein the pressure disk comprises an aperture and a pressure plug received in the aperture, wherein the pressure plug is configured to release from the aperture upon extension of the puncture tip, thereby placing the manifold in flow communication with the interior of the container.
5. The device of claim 4, wherein the pressure plug is coupled to a pressure plug cable having a length shorter than a maximum distance that the puncture tip translates relative to the conveyance tube, and wherein the pressure plug cable is coupled to the pressure plug and the manifold, such that the pressure plug is configured to separate from the aperture upon extension of the pressure plug cable.
6. The device of claim 1, wherein the emergency pressure release valve comprises a pressure plate, at least one spring coupling the pressure plate to the pressure disk, and at least one port in the pressure disk.
7. The device of claim 1, wherein the emergency pressure release valve is configured to be actuated by electrical pressure transducers.
8. The device of claim 1, wherein each of the chambers includes an initiator configured to initiate expulsion of the fire suppressing agent from the respective chamber.
9. The device of claim 8, wherein the initiators comprise an igniter configured to initiate expansion of the fire suppressing agent in the respective chambers, and wherein the igniter is configured to be controlled by at least one of a computer with software programming, at least one mechanical component, and at least one chemical reaction.
10. The device of claim 1, wherein each of the chambers comprises an orifice and a control plug received in the orifice, wherein the control plug and orifice are configured such that the control plug separates from the orifice when pressure inside the respective chamber is sufficient to separate the control plug from the orifice, thereby providing flow communication between the respective chamber and the manifold.
11. The device of claim 1, wherein at least one of the chambers, the manifold, and the puncture mechanism includes a heat exchanger configured to reduce the temperature of the fire suppressing agent upon expulsion.
12. The device of claim 11, wherein the heat exchanger comprises at least one of a baffle and an array of fins.
13. The device of claim 1, wherein the puncture mechanism comprises a puncture tip disconnect configured to facilitate removal of the puncture tip from the conveyance tube.
14. The device of claim 1, wherein the device comprises from two to ten chambers.
15. The device of claim 14, wherein the chambers are circumferentially arranged about the manifold.
16. The device of claim 14, wherein the controller is configured to initiate expulsion of the fire suppressing agent in a sequential manner from two or more of the plurality of chambers.
17. A system for supplying fire suppressing agent to the interior of a container for an extended duration, the system comprising: a plurality of chambers configured to contain and selectively expel the fire suppressing agent; a puncture mechanism configured to puncture a container comprising a conveyance tube and a puncture tip associated with the conveyance tube; a manifold in flow communication with the plurality of chambers and the puncture mechanism; and a sensor configured to provide signals indicative of a temperature associated with a container to a controller configured to initiate expulsion of the fire suppressing agent from the chambers in a controlled manner, wherein the system is configured such that the fire suppressing agent is expelled from a first one of the plurality of chambers at a first time, wherein the system is configured such that the fire suppressing agent is expelled from a second one of the plurality of chambers at a second time later than the first time, wherein the conveyance tube and the puncture tip are configured such that the puncture tip translates relative to the conveyance tube away from the manifold to puncture the container after expulsion of the fire suppressing agent, thereby providing flow communication between the conveyance tube and the interior of the container, wherein the puncture mechanism further comprises a pressure disk coupled to the puncture tip, the pressure disk being configured to transfer force from the fire suppressing agent after expulsion from the chambers to the puncture tip, thereby inducing the puncture tip to translate relative to the conveyance tube away from the manifold, and wherein the pressure disk further comprises an emergency pressure release valve.
18. The system of claim 17, wherein the sensor comprises at least one of a thermal sensor, a smoke detector, and a thermally sensitive material.
19. The system of claim 17, wherein the controller comprises at least one of a processor, microprocessor, central processing unit, on-board computer, and electronic control modules.
20. The system of claim 17, further comprising an alerting system configured to send signals indicating activation of the system to a location remote from the container.
21. The system of claim 20, wherein the location remote from the container comprises an aircraft cockpit.
22. The system of claim 17, wherein the pressure disk comprises an aperture and a pressure plug received in the aperture, wherein the pressure plug is configured to release from the aperture upon extension of the puncture tip, thereby placing the manifold in flow communication with the interior of the container.
23. A device for supplying fire suppressing agent to the interior of a container for an extended duration, the device comprising: a plurality of chambers configured to contain and selectively expel the fire suppressing agent; a puncture mechanism configured to puncture a container comprising a conveyance tube and a puncture tip associated with the conveyance tube; a manifold in flow communication with the plurality of chambers and the puncture mechanism; and a controller configured to initiate expulsion of the fire suppressing agent from the chambers in a controlled manner, wherein the device is configured such that the fire suppressing agent is expelled from a first one of the plurality of chambers at a first time, wherein the conveyance tube and the puncture tip are configured such that the puncture tip translates relative to the conveyance tube away from the manifold to puncture the container, thereby providing flow communication between the conveyance tube and the interior of the container, wherein the puncture mechanism further comprises a pressure disk coupled to the puncture tip, the pressure disk being configured to transfer force from the fire suppressing agent after expulsion from the chambers to the puncture tip, thereby inducing the puncture tip to translate relative to the conveyance tube away from the manifold, wherein the pressure disk comprises an aperture and a pressure plug received in the aperture, wherein the pressure plug is configured to release from the aperture upon extension of the puncture tip, thereby placing the manifold in flow communication with the interior of the container, and wherein the device is configured such that the fire suppressing agent is expelled from a second one of the plurality of chambers at a second time later than the first time.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF EXEMPLARY EMBODIMENTS
(15) Reference will now be made in detail to exemplary embodiments, which are illustrated in the accompanying drawings. Wherever possible, the same reference numbers will be used throughout the drawings to refer to the same or like parts.
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(18) The fire suppressing agent 32 may include any suitable substance or combination of substances. For example, the fire suppressing agent 32 may include, for example, a pyro-propellant configured to both generate driving pressure and provide a fire extinguishing or fire suppressing gas or aerosol. For example, the fire suppressing agent 32 may include one or more of sodium azide, 5-amino tetrazole, potassium 5-amino tetrazole, guanidine nitrate, potassium chlorate, potassium nitrate, potassium perchlorate, strontium nitrate, copper nitrate (basic), copper oxide (black), ammonium perchlorate, or a LOVA propellant. Other substances having similar characteristics are contemplated for use as the fire suppressing agent 32. Additionally, the fire suppressing agent 32 may employ byproducts of chemical reactions, such as, for example, producing potassium carbonate through a combustion reaction in the form of a finely-dispersed, micro-pulverized aerosol.
(19) In the exemplary embodiment shown in
(20) The sensor 24 may be configured to detect undesirably high temperatures, such as from a fire within a container 18. The sensor 24 may be any suitable fire-detection mechanism, such as a thermal sensor, a smoke detector, or thermally sensitive materials. In some embodiments, the sensor 24 is in communication with the controller 26, for example, via hard-wiring and/or a wireless communication link. In the event that the sensor 24 detects a fire, such as through an elevated temperature reading or by detecting smoke, the sensor 24 is configured to send a signal detectable by the controller 26.
(21) The controller 26 may include one or more processors, microprocessors, central processing units, on-board computers, electronic control modules, and/or any other computing and control devices known to those skilled in the art. The controller 26 may be configured to run one or more software programs or applications stored in a memory location, read from a computer-readable medium, and/or accessed from an external device operatively coupled to the controller 26 by any suitable communications network.
(22) After receiving the signal from the sensor 24, the controller 26 may use any suitable means, such as software programming, mechanical components, or chemical reactions, to initiate operation of the system 22. Initiating operation may be accomplished, for example, via sending an activation signal to an igniter 44 located within a chamber 30 containing the fire suppressing agent 32, for example, as shown in
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(25) In some embodiments, the conveyance tube 36 further includes a locking mechanism (not shown) that locks the puncture tip 38 at its furthest-traveled position, thereby preventing the puncture tip 38 from contacting an object and bouncing back into the conveyance tube 36. The locking mechanism maximizes the likelihood of successful container 18 penetration, minimizing the possible waste of fire suppressing agent 32 during operation of the system 22.
(26) As shown in
(27) In the exemplary embodiment shown in
(28) Pressure may mount within the manifold 40 and/or chamber 30 if the puncture tip 38 does not translate far enough within the conveyance tube 36 to displace the pressure plug 52 from the pressure disk 50 via the pressure plug cable 54. To alleviate such pressure before it causes damage to the manifold 40 and/or chamber 30, the pressure disk 50 may further include an emergency pressure release valve 60.
(29) In the exemplary embodiments shown in
(30) The strength of the springs 64, which dictates the force required for displacement of the pressure plate 62, may be determined, for example, by considering the critical system pressure and a factor of safety, and may be selected to permit the pressure plate 62 to separate from the pressure disk 50 prior to any pressure damage occurring to the manifold 40 or chambers 30. In the exemplary embodiment shown in
(31) In the exemplary embodiments shown in
(32) The system 22 may further include a heat sink 72 configured to cool the fire suppressing agent 32 after ignition and before the fire suppressing agent 32 enters one or more of the manifold 40, puncture mechanism 34, and container 18. The heat sink 72 may be formed from any suitable material in an arrangement with high surface area and high thermal conductivity, such as, for example, a series of baffles or an array of fins. The heat sink 72 may be provided in one or more of the chamber 30, manifold 40, or conveyance tube 36.
(33) Other embodiments of the invention will be apparent to those skilled in the art from consideration of the specification and practice of the invention disclosed herein. It is intended that the specification and examples be considered as exemplary only, with a true scope and spirit of the invention being indicated by the following claims.