System and method of a ring architecture of a fixed piping system implemented within a safety system of a structure to continuously supply breathable air therewithin
12544601 ยท 2026-02-10
Assignee
Inventors
Cpc classification
F24F7/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F11/89
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A62B15/00
HUMAN NECESSITIES
F24F11/35
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F2120/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A62B9/006
HUMAN NECESSITIES
F24F11/0001
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F13/0227
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
A62B15/00
HUMAN NECESSITIES
A62B9/00
HUMAN NECESSITIES
F24F11/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F11/35
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F13/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A safety system implemented within a structure includes a source of breathable air, and a fixed piping system to supply the breathable air from the source to each interior region of a number of interior regions across the structure. The fixed piping system is implemented in a ringed architecture including a first portion of the fixed piping system proximate the each interior region and a second portion thereof farther away from the each interior region. In accordance with the ringed architecture, the first portion and the second portion are implemented as a continuous ring with respect to the source of the breathable air such that, even during a compromise of a first sub-portion of the first portion, unaffected by the compromise, the breathable air continues to be supplied to a second sub-portion of the first portion by way of the second portion.
Claims
1. A safety system implemented within a structure comprising: a source of breathable air; a fixed piping system to supply the breathable air from the source to each interior region of a plurality of interior regions across the structure, the fixed piping system implemented in a ringed architecture comprising a first portion of the fixed piping system proximate the each interior region of the plurality of interior regions and a second portion of the fixed piping system farther away from the each interior region of the plurality of interior regions relative to the first portion, and, in accordance with the ringed architecture, the first portion and the second portion being implemented as a continuous ring with respect to the source of the breathable air such that, during a compromise of a first sub-portion of the first portion of the fixed piping system relevant to at least one interior region of the plurality of interior regions unaffected by the compromise, the breathable air continues to be supplied to a second sub-portion of the first portion of the fixed piping system by way of the second portion of the fixed piping system; and a hardware controller to control an indicator light corresponding to the first sub-portion that is affected by the compromise, responsive to a signal indicating the compromise at the first sub-portion.
2. The safety system of claim 1, further comprising the hardware controller to detect an event related to the compromise one of: solely and in conjunction with a data processing device communicatively coupled thereto.
3. The safety system of claim 2, wherein, in response to the detection, the at least one of: the hardware controller and the data processing device cuts off the breathable air to the first sub-portion of the first portion of the fixed piping system.
4. The safety system of claim 1, wherein the fixed piping system is implemented along a plurality of interior walls of the structure.
5. The safety system of claim 1, comprising the safety system being implemented within one of: a shopping mall, a hypermart, an extended shopping facility, a storage center, a fulfillment center, a warehouse, a tunnel, a marine craft and a mine serving as the structure.
6. The safety system of claim 3, wherein the at least one of: the hardware controller and the data processing device cuts off the breathable air to the first sub-portion based on controlling at least one valve associated with the first sub-portion of the first portion of the fixed piping system.
7. The safety system of claim 6, wherein at least one of: each of the at least one valve is proximate a fill station that provides access to the breathable air, the fixed piping system is implemented within a fire-rated enclosure; the ringed architecture of the fixed piping system involves a mesh configuration of the fixed piping system, and the mesh configuration involves the first portion and the second portion forming the continuous ring along with a shell ring formed proximate the first portion and the second portion.
8. A safety system implemented within a structure comprising: a source of breathable air; a fixed piping system to supply the breathable air from the source to each interior region of a plurality of interior regions of the structure, the fixed piping system implemented in a ringed architecture comprising a first portion of the fixed piping system proximate the each interior region of the plurality of interior regions and a second portion of the fixed piping system farther away from the each interior region of the plurality of interior regions, and, in accordance with the ringed architecture, the first portion and the second portion being implemented as a continuous ring with respect to the source of the breathable air such that, even during a compromise of a first sub-portion of the first portion of the fixed piping system relevant to at least one interior region of the plurality of interior regions proximate thereto, unaffected by the compromise, the breathable air continues to be supplied to a second sub-portion of the first portion of the fixed piping system by way of the second portion of the fixed piping system; and a hardware controller in conjunction with a data processing device communicatively coupled thereto, to detect an event related to the compromise and control an indicator light corresponding to the first sub-portion that is affected by the compromise, responsive to a signal indicating the compromise at the first sub-portion.
9. The safety system of claim 8, wherein, in response to the detection, the at least one of: the hardware controller and the data processing device cuts off the breathable air to the first sub-portion of the first portion of the fixed piping system.
10. The safety system of claim 8, wherein the fixed piping system is implemented along a plurality of interior walls of the structure.
11. The safety system of claim 8, comprising the safety system being implemented within one of: a shopping mall, a hypermart, an extended shopping facility, a storage center, a fulfillment center, a warehouse, a tunnel, a marine craft and a mine serving as the structure.
12. The safety system of claim 9, wherein the at least one of: the hardware controller and the data processing device cuts off the breathable air to the first sub-portion based on controlling at least one valve associated with the first sub-portion of the first portion of the fixed piping system.
13. The safety system of claim 12, wherein at least one of: each of the at least one valve is proximate a fill station that provides access to the breathable air, the fixed piping system is implemented within a fire-rated enclosure, the ringed architecture of the fixed piping system involves a mesh configuration of the fixed piping system, and the mesh configuration involves the first portion and the second portion forming the continuous ring along with a shell ring formed proximate the first portion and the second portion.
14. A method of a safety system implemented within a structure comprising: supplying breathable air from a source to each interior region of a plurality of interior regions of the structure through a fixed piping system; implementing the fixed piping system in a ringed architecture comprising a first portion of the fixed piping system proximate the each interior region of the plurality of interior regions and a second portion of the fixed piping system farther away from the each interior region of the plurality of interior regions; in accordance with the ringed architecture, forming a continuous ring involving both the first portion and the second portion with respect to the source of the breathable air such that, even during a compromise of a first sub-portion of the first portion of the fixed piping system relevant to at least one interior region of the plurality of interior regions proximate thereto, unaffected by the compromise, the breathable air continues to be supplied to a second sub-portion of the first portion of the fixed piping system by way of the second portion of the fixed piping system; and controlling, using a hardware controller, an indicator light corresponding to the first sub-portion that is affected by the compromise, responsive to a signal indicating the compromise at the first sub-portion.
15. The method of claim 14, further comprising detecting, through at least one of: the hardware controller and a data processing device communicatively coupled thereto, an event related to the compromise.
16. The method of claim 15, comprising, in response to the detection, cutting off the breathable air to the first sub-portion of the first portion of the fixed piping system through the at least one of: the hardware controller and the data processing device.
17. The method of claim 14, comprising implementing the fixed piping system along a plurality of interior walls of the structure.
18. The method of claim 14, comprising implementing the safety system within one of: a shopping mall, a hypermart, an extended shopping facility, a storage center, a fulfillment center, a warehouse, a tunnel, a marine craft and a mine serving as the structure.
19. The method of claim 15, comprising, using the at least one of: the hardware controller and the data processing device, cutting off the breathable air to the first sub-portion based on controlling at least one valve associated with the first sub-portion of the first portion of the fixed piping system.
20. The method of claim 19, comprising at least one of: each of the at least one valve being proximate a fill station that provides access to the breathable air; the fixed piping system being implemented within a fire-rated enclosure; the ringed architecture of the fixed piping system comprising a mesh configuration of the fixed piping system; and the mesh configuration comprising the first portion and the second portion forming the continuous ring along with a shell ring formed proximate the first portion and the second portion.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The embodiments of this invention are illustrated by way of example and not limitation in the figures of the accompanying drawings, in which like references indicate similar elements and in which:
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(10) Other features of the present embodiments will be apparent from the accompanying drawings and from the detailed description that follows.
DETAILED DESCRIPTION
(11) Example embodiments, as described below, may be used to provide systems and/or a method of a ring architecture of a fixed piping system implemented within a safety system of a structure to continuously supply breathable air therewithin. Although the present embodiments have been described with reference to specific example embodiments, it will be evident that various modifications and changes may be made to these embodiments without departing from the broader spirit and scope of the various embodiments.
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(13) In one or more embodiments, fixed piping system 104 of safety system 150 may include permanent air conduits installed within structure 101 serving as a constant source of replenishment of breathable air. In one or more embodiments, fixed piping system 104 may be regarded as being analogous to a water piping system within structure 101 or another structure analogous thereto for the sake of imaginative convenience. In one or more embodiments, ringed air piping architecture 106 of fixed piping system 104 may include pipes (e.g., constituted out of stainless steel tubing) that distribute breathable air to a number of air fill stations 122.sub.1-P within structure 101.
(14) In one or more embodiments, safety system 150 may be a Firefighter Air Replenishment System (FARS) associated with structure 101. In one or more embodiments, safety system 150 may enable firefighters entering structure 101 in times of fire-related emergencies to gain access to breathable (e.g., human breathable) air within structure 101 without the need of bringing in additional air bottles/cylinders deep thereinto, or to refill depleted air bottles/cylinders that are brought into structure 101. In one or more embodiments, safety system 150 may include one or more compressed air source(s) 116 (e.g., air tanks) in an air storage system 118 to supply breathable air to each interior region 102 (e.g., bay) of structure 101.
(15) In one or more embodiments, fixed piping system 104 may include a number of linked/interlinked air pipe segments (e.g., a first sub-portion 112, a second sub-portion 114, etc.; to be discussed below) running across the number of interior regions 102 (e.g., bays) of structure 101 and forming a continuous ringed architecture (e.g., ringed air piping architecture 106) to supply breathable air. In one or more embodiments, ends of each linked air pipe segment (e.g., first sub-portion 112) of fixed piping system 104 may be interconnected with adjacent linked air pipe segments (e.g., second sub-portion 114, etc.) thereof. As shown in
(16) In one or more embodiments, the continuous ring/ring architecture formed by the linked air pipe segments and the linked first portion 108 and the second portion 110 may enable multidirectional flow of breathable air through ringed air piping architecture 106; in one or more embodiments, this may also build redundancy into safety system 150, as will be seen below. In one or more embodiments, each interior region 102 may include an air fill station 122.sub.1-P coupled to fixed piping system 104 to provide a sufficient supply of breathable air. In one or more embodiments, each segment of fixed piping system 104 may be isolated and/or disconnected from compressed air sources 116/air storage system 118 through operation of a valve 120.sub.1-P (e.g., an isolation valve) located adjacent to air fill station 122.sub.1-P. As discussed above, in one or more embodiments, structure 101 may be divided into a number of parts (e.g., the number of interior regions 102) for storage, production, and/or manufacturing of commodities. In one or more embodiments, structure 101 may implement a racking system based on optimization of space/area therewithin that is constituted by the number of interior regions 102.
(17) In one or more embodiments, valves 120.sub.1-P located at interior regions 102 may be operable to isolate a particular air fill station 122.sub.1-P through a control panel 134 located in structure 101 in case of a maintenance requirement and/or an emergency situation such as a fire, an accident, an explosion, a leak, a chemical attack, etc. Also, in one or more embodiments, control panel 134 may control operation of valves 120.sub.1-P to isolate and/or disconnect a particular air fill station 122.sub.1-P for maintenance and/or emergency situations including but not limited to air leakage, a pipe/pipe segment burst and/or failure. In one or more embodiments, control panel 134 (an example hardware controller) may be communicatively coupled to one or more data processing device(s) (e.g., data processing device 128 such as a mobile phone; other forms of data processing device 128 are within the scope of the exemplary embodiments discussed herein) through a computer network 132 (e.g., a Local Area Network (LAN), a Wide Area Network (WAN), a short-range network, a cloud computing network and/or a distributed computing network). Thus, in one or more embodiments, event detection associated with a compromise within fixed piping system 104 may be possible through both control panel 134 and data processing device 128.
(18) As shown in
(19) In one or more embodiments, an air monitoring system 124 may be installed as part of safety system 150 to automatically track and monitor a parameter (e.g., pressure) and/or a quality (e.g., indicated by a moisture level, a carbon monoxide level) of breathable air within safety system 150.
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(21) It should be noted that the arrows indicating flow of breathable air may be one-sided or double-sided depending on the implementation of valves 120.sub.1-P. For example, valves 120.sub.1-P may be implemented with non-return/check valves, in which case the arrows may be unidirectional.
(22) In one or more embodiments, control panel 134 may include an array of sensors (not shown) and circuitry to activate specific valves 120.sub.1-P and/or to isolate specific air fill stations 122.sub.1-P from a rest of safety system 150. As shown in
(23) In one or more embodiments, control panel 134 may indicate that both bay 282 and bay 284 are connected through ringed air piping architecture 106. The open 202 indicator light may be an illuminating device commonly used to signify (e.g., through blinking) that switch 204 (e.g., isolation switch) is in an OFF state. The OFF state of switch 204 may indicate that valve 120.sub.1-P on that particular interior region 102 (e.g., region 1 212, region 2 214, region 3 216 etc.) is open, according to one implementation.
(24) The closed 206 indicator light may be an illuminating device commonly used to signify (e.g., through blinking) that switch 204 is in an ON state. The ON state of switch 204 may indicate that valve 120.sub.1-P is closed and a corresponding fill station 122.sub.1-P is isolated, according to one implementation. This may be implemented even for control of multiple valves 120.sub.1-P and multiple fill stations 122.sub.1-P. As will be seen below, in one or more embodiments, the closure of an appropriate valve 120.sub.1-P may cut off supply of breathable air to first sub-portion 112. The fault 208 indicator light may be an illuminating device commonly used to signify (e.g., through blinking) the occurrence of a faulty condition within fixed piping system 104/air fill station 122.sub.1-P that requires immediate attention. In one or more example implementations, while actual statuses of valves 120.sub.1-P may be reflected through, say, limit switches (not shown), control of switch 204 may control electrical coupling to open 202 indicator light, closed 206 indicator light and fault 208 indicator light. Thus, control of switch 204 may also be effected through electrical signals from said limit switches.
(25) The switch 204 may be a device used to make or break a connection in a circuit so that emergency personnel 126 can operate (e.g., turn ON or OFF) valve 120.sub.1-P to isolate one or more portions (e.g., first sub-portion 112) of fixed piping system 104 or a particular air fill station 122.sub.1-P. When switch 204 of a particular interior region 102 (e.g., region 1 212, region 2 214, region 3 216 etc.) is in the open state, it may indicate that a corresponding valve 120.sub.1-P associated with the particular interior region 102 is open. When the switch 204 of the particular interior region 102 is in the closed state, it may indicate that the corresponding valve 120.sub.1-P associated with the particular interior region 102 is closed.
(26) In one or more embodiments, control panel 134 may receive data signals (e.g., data signal 232) from various points (e.g., joints, junctions) of ringed air piping architecture 106 of fixed piping system 104 to enable detection of events associated therewith. In one or more embodiments, data signal 232 may be generated manually and/or automatically generated through sensors (not shown) in conjunction with control panel 134/data processing device 128. For example, operation of a switch 204 of a particular interior region 102 may make or break a connection with an associated valve 120.sub.1-P. Said connection may also be made or broken automatically with an appropriate implementation of control panel 134 and/or data processing device 128.
(27) Test lamp 234 may be an illuminating device used to determine that control panel 134 is powered. The two-hour rated enclosure piping 210 in control panel 134 may indicate that fixed piping system 104 is enclosed within a two-hour rated enclosure piping, which may protect fixed piping system 104 against a fire hazard for two hours. All of the aforementioned details are implementation specific and serve as mere example parameters. All variations in implementation of control panel 134 are within the scope of the exemplary embodiments discussed herein.
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(29) Now, in one or more embodiments, because safety system 150 has ringed air piping architecture 106 implemented therein, even during the compromise of first sub-portion 112 of first portion 108 relevant to one or more interior regions 102 (e.g., one bay, two bays) proximate thereto, unaffected by the compromise, the breathable air may continue to be supplied (e.g., through air storage system 118, another air storage system 109) to second sub-portion 114 of first portion 108 of fixed piping system 104 by way of second portion 110 of fixed piping system 104. In one or more embodiments, the interlinking and/or linking of pipe segments through ringed air piping architecture 106 may enable the aforementioned redundancy in breathable air supply to be implemented within safety system 150. It should be noted that certain components of safety system 150 of
(30) The redundancy built into safety system 150 may enable emergency personnel 126 to work toward setting safety system 150 right as soon as possible with minimized difficulties during emergencies (e.g., event 350). In one or more embodiments, real-time communication between emergency personnel 126, a fire control room (not shown) within safety system 150 and a firefighting command center (not shown) may also be facilitated through computer network 132. In one or more embodiments, this may enable isolation of one or more air fill stations 122.sub.1-P and closure of one or more valves 120.sub.1-P associated with compromised region 336 (e.g., first sub-portion 112) from the rest of safety system 150. In one or more embodiments, emergency personnel 126 may still be able to receive a continuous supply of breathable air via fill stations 122.sub.1-P associated with the non-isolated sub-portions (e.g., second sub-portion 114) of first portion 108 by way of second portion 110 of fixed piping system 104; for example, the non-isolated sub-portions of first portion 108 may be associated with interior regions 102 adjacent to an interior region 102 associated with compromised region 336.
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(32) In one or more embodiments, user interface 402 may help the user to navigate and view different parameters and contexts of safety system 150. As shown in (b), the user may receive a pop-up alert notification in a notification tab 404. Notification tab 404 may indicate detection of a fire at an interior region 102 (e.g., compromised region 336) within structure 101. In accordance therewith, the user may click on a valve tab 422 to take necessary corrective measures. As shown in (c), a valve tab interface 406 may indicate one or more interior regions 102 in which a faulty condition (FLT) has been detected. Control valve interface 406 may also indicate whether a valve 120.sub.1-P is open (OPN) or closed (CLS) at a particular interior region 102. Further, valve tab interface 406 may enable the user to check air supply status 424 of the breathable air at a particular fill station 122.sub.1-P. In
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(37) In one or more embodiments, operation 706 may then involve, in accordance with the ringed architecture, forming a continuous ring involving both the first portion and the second portion with respect to the source of the breathable air such that, even during a compromise of a first sub-portion (e.g., first sub-portion 112) of the first portion of the fixed piping system relevant to one or more interior region(s) of the number of interior regions proximate thereto, unaffected by the compromise, the breathable air continues to be supplied to a second sub-portion (e.g., second sub-portion 114) of the first portion of the fixed piping system by way of the second portion of the fixed piping system.
(38) Although the present embodiments have been described with reference to specific example embodiments, it will be evident that various modifications and changes may be made to these embodiments without departing from the broader spirit and scope of the various embodiments.
(39) A number of embodiments have been described. Nevertheless, it will be understood that various modifications may be made without departing from the spirit and scope of the claimed invention. In addition, the logic flows depicted in the figures do not require the particular order shown, or sequential order, to achieve desirable results. In addition, other steps may be provided, or steps may be eliminated, from the described flows, and other components may be added to, or removed from, the described systems. Accordingly, other embodiments are within the scope of the following claims.
(40) The structures and modules in the figures may be shown as distinct and communicating with only a few specific structures and not others. The structures may be merged with each other, may perform overlapping functions, and may communicate with other structures not shown to be connected in the figures. Accordingly, the specification and/or drawings may be regarded in an illustrative rather than a restrictive sense.