FIRE EXTINGUISHING SYSTEM FOR LITHIUM BATTERY ENERGY STORAGE UNIT BASED ON STAGEWISE WARNING AND MULTIPLE SPRAYING
20210283441 · 2021-09-16
Inventors
Cpc classification
Y02E60/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
A62C35/023
HUMAN NECESSITIES
G08B17/10
PHYSICS
A62C37/38
HUMAN NECESSITIES
International classification
Abstract
A fire extinguishing system for a lithium battery energy storage unit based on stagewise warning and multiple spraying includes a power management system, a warning control system connected to the power management system and a fire extinguishing device connected to the warning control system. The fire extinguishing device is externally connected to a temperature-sensing fire detection tube, a large-flow release pipeline and a local release pipeline. The warning control system is externally connected to a local data collection module and a lithium battery energy storage pack. The fire extinguishing system of this application is designed to perform cyclical detection according to fire signals, in which a starting signal can be repeatedly sent to achieve multiple starting, so as to suppress a lithium battery fire for a long time and solve the problem of re-ignition.
Claims
1. A fire extinguishing system for a lithium battery energy storage unit based on stagewise warning and multiple spraying, comprising: a power management system; a warning control system connected to the power management system; and a fire extinguishing device connected to the warning control system; wherein the fire extinguishing device is externally connected to a temperature-sensing fire detection tube, a large-flow release pipeline and a local release pipeline; and the warning control system is externally connected to a local data collection module and a lithium battery energy storage pack.
2. The fire extinguishing system of claim 1, wherein the power management system is configured to collect a temperature T and a voltage U of a cell in the lithium battery energy storage pack in real time and transmit the temperature T and the voltage U to the warning control system.
3. The fire extinguishing system of claim 1, wherein the warning control system is configured as an operation and processing center of the fire extinguishing system; and the warning control system is configured to collect internal data of the power management system to analyze temperature and voltage data of a cell of the lithium battery energy storage pack, collect data of the local data collection module to indirectly collect temperature data of thermal runaway of the lithium battery energy storage pack and collect a fire alarm signal sent from a smoke alarm, a combustible gas detector and a manual control module to control actuation of the fire extinguishing device and output of a signal linkage module through a series of logical operations.
4. The fire extinguishing system of claim 1, wherein the fire extinguishing device is provided with a plurality of solenoid valves; the plurality of solenoid valves are configured to be switched on and off according to an instruction of the warning control system to selectively release a fire extinguishing agent from the fire extinguishing device.
5. The fire extinguishing system of claim 1, wherein the temperature-sensing fire detection tube is a temperature-sensitive pressure-resistant hose; a burst temperature of the temperature-sensing fire detection tube is 120-180° C.; an inside of the temperature-sensing fire detection tube is configured to transport a fire extinguishing agent; and a bearable pressure of the temperature-sensing fire detection tube is 5-10 MPa.
6. The fire extinguishing system of claim 1, wherein a rear end of the local release pipeline is connected to a local release tube; the local release tube is provided near the lithium battery energy storage pack; and the warning control system is configured to send an actuating instruction to allow a fire extinguishing agent to be released from the local release tube to enter the lithium battery energy storage to perform fire extinguishment.
7. The fire extinguishing system of claim 1, wherein the local data collection module is configured to convert a single point signal of a thermal runaway sensor into a bus signal with address and transmit the bus signal to the warning control system through RS485, CAN and Ethernet; and the warning control system is configured to set a control signal of a plurality of solenoid valves through the RS485, CAN and Ethernet to control the plurality of solenoid valves to be switched on and off, so as to achieve point-to-point signal collection and control of the plurality of solenoid valves.
8. The fire extinguishing system of claim 3, wherein the combustible gas detector is configured to detect a combustible gas released by thermal runway of a lithium battery; the combustible gas is carbon monoxide, hydrogen and a combination thereof; and when the combustible gas reaches a preset concentration, a fire warning signal is output.
9. The fire extinguishing system of claim 3, wherein the manual control module is provided with a starting switch and a reset switch; when a fire is observed, the starting switch is manually pressed to allow the warning control system to directly start the fire extinguishing device to directly release a fire extinguishing agent through a large-flow release pipeline; and when an operation is required to be canceled, the reset switch is manually pressed to reset all operations and alarms.
10. The fire extinguishing system of claim 3, wherein the signal linkage module is configured to have a linkage with a third-party alarm device when a fire extinguishing agent is released; and the third-party alarm device comprises a sound-light alarm, an alarm bell, the fire extinguishing agent and a release indicator light.
Description
DETAILED DESCRIPTION OF EMBODIMENTS
[0044]
[0045]
[0046]
[0047]
[0048]
[0049]
DETAILED DESCRIPTION OF EMBODIMENTS
[0050] As shown in
[0051] In an embodiment, the power management system 1 is configured to collect a temperature T and a voltage U of a cell in the lithium battery energy storage pack 9 in real time and transmit the temperature T and the voltage U to the warning control system 2.
[0052] In an embodiment, the warning control system 2 is configured as an operation and processing center of the fire extinguishing system. The warning control system 2 is configured to collect internal data of the power management system 1 to analyze temperature and voltage data of a cell of the lithium battery energy storage pack 9, collect data of the local data collection module 7 to indirectly collect thermal runaway temperature data of thermal runaway of the lithium battery energy storage pack 9 and collect a fire alarm signal sent from a smoke alarm 10, a combustible gas detector 11 and a manual control module 12 to control actuation of the fire extinguishing device 3 and output of a signal linkage module 13 through a series of logical operations.
[0053] In an embodiment, the fire extinguishing device 3 is provided with a plurality of solenoid valves. The plurality of solenoid valves are configured to be switched on and off according to an instruction of the warning control system 2 to selectively release a fire extinguishing agent from the fire extinguishing device 3.
[0054] In an embodiment, the temperature-sensing fire detection tube 4 is a temperature-sensitive pressure-resistant hose. A burst temperature of the temperature-sensing fire detection tube 4 is 120-180° C. An inside of the temperature-sensing fire detection tube 4 is configured to transport the fire extinguishing agent. A bearable pressure of the temperature-sensing fire detection tube 4 is 5-10 MPa.
[0055] In an embodiment, the local release tube 8 is provided near the lithium battery energy storage pack 9. The warning control system 2 is configured to send an actuating instruction and the fire extinguishing agent to be released from the local release tube 8 to enter the lithium battery energy storage 9 to perform fire extinguishment. In an embodiment, the local data collection module 7 is configured to convert a single point signal of a thermal runaway sensor into a bus signal with address and transmit the bus signal to the warning control system 2 through RS485, CAN and Ethernet. The warning control system 2 is configured to set a control signal of the plurality of solenoid valves through the RS485, CAN and Ethernet to control the plurality of solenoid valves to be switched on and off, so as to achieve point-to-point signal collection and control of the plurality of solenoid valves.
[0056] In an embodiment, the combustible gas detector 11 is configured to detect a combustible gas released by thermal runway of a lithium battery. The combustible gas is carbon monoxide, hydrogen or a combination thereof. When the combustible gas reaches a preset concentration, a fire warning signal is output.
[0057] In an embodiment, the manual control module 12 is provided with a starting switch and a reset switch. When a fire is observed, the starting switch is manually pressed to allow the warning control system 2 directly start the fire extinguishing device 3 to directly release the fire extinguishing agent through the large-flow release pipeline 5. When an operation is required to be canceled, the reset switch is manually pressed to reset all operations and alarms.
[0058] In an embodiment, the signal linkage module 13 is configured to have a linkage with a third-party alarm device when the fire extinguishing agent is released. The third-party alarm device includes a sound-light alarm, an alarm bell, a fire extinguishing agent and a release indicator light.
[0059] In an embodiment, the temperature-sensing fire detection tube 4 is a hose, on which a burst will appear when a set temperature is reached. Specifically, when the lithium battery energy storage pack 9 reaches the set temperature, the burst will be formed on the fire detection tube 4 and a pressure in the fire detection tube 4 is released through the burst. At this time, after the fire extinguishing device 3 is started, one part of the fire extinguishing agent is released from the burst to accurately extinguish the fire and the other part of the fire extinguishing agent is released through the large-flow release pipeline 5 for pure temperature-sensing emergency start protection.
[0060] Described below is a fire extinguishing method using the above fire extinguishing system.
[0061] First-Stage Warning
[0062] The first-stage warning is performed based on a linkage between the warning control system 2 and the power management system 1.
[0063] (1) The warning control system 2 collects the temperature and the voltage of the cell in the lithium battery energy storage pack 9 in real time through the power management system 1.
[0064] (2) The warning control system 2 analyzes conditions of the thermal runaway of the lithium battery energy storage pack 9, that is, Tx≥T0 and Ux≤U0, where T0 is a boundary temperature of the thermal runaway and U0 is a boundary voltage of the thermal runaway.
[0065] (3) The warning control system 2 outputs an instruction to the fire extinguishing device 3 to switch on a solenoid valve on a local header pipeline 6 and a local solenoid valve 15, so as to release the fire extinguishing agent.
[0066] (4) A reset instruction is given after the fire extinguishing device 3 releases the fire extinguishing agent, and the warning control system 2 resets all solenoid valves on the fire extinguishing device 3 to complete one release of the fire extinguishing agent, where the duration of one release of the fire extinguishing agent is determined according to actual engineering needs. When the warning control system 2 again detects through the power management system 1 that the temperature and voltage meet the boundary conditions of the thermal runaway, steps (2-4) are repeated to achieve multiple spraying of the fire extinguishing agent.
[0067] Second-Stage Warning
[0068] The second-stage warning is performed based on a linkage of the warning control system 2 and the thermal runaway sensor 14.
[0069] (1) The warning control system 2 collects data of the thermal runaway sensor 14 in real time through the local data collection module 7.
[0070] (2) The warning control system 2 analyzes the data of the thermal runaway sensor 14 to determine whether the lithium battery energy storage pack 9 meets boundary conditions of the thermal runaway, that is, Trx≥Tr0 and Krx≥Kr0, where Tr0 is a boundary temperature of the environment of the pack and Kr0 is a heating rate of the ambient temperature of the pack when the thermal runaway occurs in the battery.
[0071] (3) The warning control system 2 outputs an instruction to the fire extinguishing device 3 to start the solenoid valve on the local header pipeline 6 and the local solenoid valve 15, so as to release the fire extinguishing agent.
[0072] (4) A reset instruction is given after the fire extinguishing device 3 releases the fire extinguishing agent, and the warning control system 2 resets all solenoid valves on the fire extinguishing device 3 to complete one release of the fire extinguishing agent, where the duration of one release of the fire extinguishing agent is determined according to actual engineering needs. When the warning control system 2 again detects through the local data collection module 7 that the temperature and heating rate meet the boundary conditions of the thermal runaway, steps (2-4) are repeated to achieve multiple spraying of the fire extinguishing agent.
[0073] Third-Stage Warning
[0074] The warning control system 2 determines whether there is a fire hazard through the smoke detector 10 and the combustible gas detector 11, and then comprehensively analyzes the fire hazard and the specific location thereof through the temperature signal Tx of the power management system 1 and Trx signal of the thermal runaway sensor 14. The specific operation is described as follows.
[0075] (1) The warning control system 2 determines the existence of fire hazard through the smoke detector 10 and the combustible gas detector 11.
[0076] (2) The warning control system 2 detects the cell temperature Tx≥T0 or Trx≥Tr0 and locates the fire in the x.sup.th pack.
[0077] (3) The warning control system 2 outputs an instruction to the fire extinguishing device 3 to start the solenoid valve on the local header pipeline 6 and the x.sup.th local solenoid valve 15, so as to release the fire extinguishing agent.
[0078] (4) A reset instruction is given after the fire extinguishing device 3 releases the fire extinguishing agent, so that the warning control system 2 resets all solenoid valves on the fire extinguishing device 3 to complete one release of the fire extinguishing agent, where the duration of one release of the fire extinguishing agent is determined according to actual engineering needs. When the warning control system 2 again detects that the temperature meets the boundary conditions of the thermal runaway, steps (2-4) are repeated to achieve multiple spraying of the fire extinguishing agent. The above are only preferred embodiments of this application, but not all embodiments. Any changes and replacement made by those skilled in the art within the spirit and principle of this application shall fall within the protection scope of this application.