Simple multi-level fire-fighting protection system and method for electrochemical energy storage system

By adopting a multi-stage simple fire protection system in energy storage containers, combined with the delayed start-up of the power-on detection components and physical detection components, the problems of high costs and safety hazards in the fire protection process of energy storage containers are solved, and fast and accurate fire source processing and intelligent fire protection management are achieved.

WO2025108401A1PCT designated stage expired Publication Date: 2025-05-30HUBEI JIANDUN FIRE TECH CO LTD
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Patent Information

Application Number
PCT/CN2024/133698
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2023-11-24
Filing Date
2024-11-22
Publication Date
2025-05-30

AI Technical Summary

Technical Problem

Larger energy storage containers have problems such as high cost, safety hazards, delayed fire measurement reaction, high false alarm rate, inconvenient maintenance and installation, single-time judgment information processing, and the need for delay during the fire protection process.

Method used

A multi-stage simple fire protection system is adopted, including energy storage containers, PACK-level fire extinguishing devices and installation-level fire extinguishing devices. Through the combination of power-on detection components, gas fire extinguishing controllers and physical detection components, a delayed start-up coordination and intelligent protection system are formed to ensure fast and accurate fire source processing.

Benefits of technology

It reduces fire protection costs, improves response speed and coverage, reduces the risk of secondary fires, simplifies the maintenance and installation process, realizes intelligent fire protection processing, and ensures the safety of energy storage containers.

✦ Generated by Eureka AI based on patent content.

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Abstract

Disclosed in the present invention are a simple multi-level fire-fighting protection system and method for an electrochemical energy storage system. The simple multi-level fire-fighting protection system comprises an energy storage container, pack-level fire-extinguishing apparatuses and installation-level fire-extinguishing apparatuses, wherein several battery clusters are arranged in the energy storage container, several battery pack boxes are arranged in each battery cluster, an installation-level fire-fighting subsystem for overall fire-fighting protection of the energy storage container is arranged in the energy storage container, and a pack-level fire-fighting subsystem for fire-fighting protection of an individual battery pack box is arranged on each battery pack box; the installation-level fire-fighting subsystem comprises a power-on detection assembly, gas fire-extinguishing controllers and the installation-level fire-extinguishing apparatuses, which are arranged in the container, and the power-on detection assembly cooperates with the corresponding installation-level fire-extinguishing apparatuses by means of the corresponding gas fire-extinguishing controllers to realize delayed start-up; and each pack-level fire-fighting subsystem comprises a physical detection assembly and a corresponding pack-level fire-extinguishing apparatus, and the physical detection assembly cooperates with the corresponding pack-level fire-extinguishing apparatus to realize start-up. By means of multi-level cooperation, the present invention improves the effect and reduces costs.
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Description

A multi-level simple fire protection system and method for electrochemical energy storage system Technical Field

[0001] The present invention relates to the technical field of fire protection for energy storage containers, and in particular to a multi-stage simple fire protection system and method for electrochemical energy storage systems. Background Art

[0002] With the advancement of the "dual carbon" goals, vigorously developing new energy, optimizing the energy mix, and achieving clean, low-carbon development have become a global consensus. Energy storage can promote the absorption of new energy, enhance power system flexibility, and support the safe and stable operation of new power systems. It has become one of the key technologies for building these systems. In recent years, despite adverse factors such as international competition and the pandemic, the energy storage industry has maintained rapid development. However, this rapid growth has also come at a time of increasing pressure on the safe construction and operation of energy storage systems. According to incomplete statistics from CNESA, over 70 energy storage safety incidents have occurred globally since 2011. Even after more than a decade of development, 17 energy storage safety incidents occurred globally in 2022, including several residential energy storage incidents abroad. With the exception of one incident involving lead-acid batteries, all other incidents involved lithium-ion batteries. With the rapid growth of energy storage installed capacity, energy storage safety risks are also increasing. Safety has become a bottleneck restricting the further development of the lithium-ion battery energy storage industry.

[0003] For industrial and commercial energy storage, the system has a large capacity. Once thermal runaway occurs, chemical reactions will continue, releasing heat and producing various flammable gases. Therefore, early detection is crucial for firefighting. Furthermore, system integration and fire suppression systems present significant challenges.

[0004] For larger energy storage containers, the following problems exist during firefighting:

[0005] 1. The system usually relies on monitoring devices to transmit data to determine whether there is a fire. Monitoring devices usually use sensors and other detection devices. In the event of a battery pack fire, the detectors are easily damaged, increasing the cost of fire prevention.

[0006] 2. During the monitoring process, the number of detectors is limited based on cost calculations. Its main monitoring range depends on the sensing end. When there are signs of fire far away from the sensing end, it takes a certain amount of time for the temperature within the sensing end range to reach the set value. There is a slight lag in detection, and it is impossible to deal with the fire source in a timely and accurate manner. The detection module has a high false alarm rate. Detection modules such as smoke sensors, temperature sensors, and combustible gas sensors all take a certain amount of time to transmit the signal from the fire point to the sensing response and exceed the set value.

[0007] 3. The detection device requires the introduction of additional electrical components into the battery cluster. When a battery cell experiences thermal runaway, a large amount of combustible gas will overflow from the pressure relief valve. Under the influence of the fire, electrical components such as the detector may come into contact with the combustible gas, potentially causing a secondary fire, posing a safety hazard.

[0008] 4. The detection module is an electronic component and requires regular maintenance and inspection. The installation space in the battery pack box is limited, and there are many battery pack boxes in a large energy storage container, making installation and maintenance inconvenient.

[0009] 5. When the device is being processed, it usually makes a judgment based on smoke, temperature and combustible gas, and lacks a system that can intelligently utilize information for fire protection;

[0010] 6. For fire fighting in large energy storage containers, a delay function is required to allow time for evacuation and preliminary confirmation. Summary of the Invention

[0011] The present invention provides a multi-level simplified fire protection system and method for electrochemical energy storage systems, aiming to solve the problems of high cost, potential safety hazards, delayed root fire detection response, high false alarm rate, inconvenient maintenance and installation, and the need for delay in processing single judgment information during the fire protection process of the above-mentioned larger energy storage containers.

[0012] To solve the above technical problems, the technical solution adopted by the present invention is: a multi-level simple fire protection system for electrochemical energy storage systems, including an energy storage container, a PACK-level fire extinguishing device, and an installation-level fire extinguishing device. The energy storage container is equipped with a plurality of battery clusters, each of which is equipped with a plurality of battery PACK boxes. The energy storage container is equipped with an installation-level fire protection subsystem for overall fire protection of the energy storage container, and the installation-level fire protection subsystem corresponds one-to-one with the container body. Each battery PACK box is equipped with a PACK-level fire protection subsystem for fire protection of a single battery PACK box, and the PACK-level fire protection subsystem corresponds one-to-one with the battery PACK box.

[0013] The installation-level fire protection subsystem includes a power-on detection component, a gas fire extinguishing controller, and an installation-level fire extinguishing device located in the container. The power-on detection component forms a delayed start coordination with the corresponding installation-level fire extinguishing device through the corresponding gas fire extinguishing controller. The nozzle of the installation-level fire extinguishing device is directed toward the battery cluster in the container.

[0014] Each of the PACK-level fire protection subsystems includes a physical detection component and a corresponding PACK-level fire extinguishing device. The PACK-level fire extinguishing device is installed on the corresponding battery PACK box, and the nozzle of the PACK-level fire extinguishing device covers the battery PACK box. The physical detection components are evenly distributed along the inner surface of the box, and the physical detection components and the corresponding PACK-level fire extinguishing device form a starting coordination.

[0015] Preferably, the power-on detection component includes a temperature detector and a smoke detector.

[0016] More preferably, when only the electrical signal value of the smoke detector after detecting smoke exceeds the set value, the gas fire extinguishing controller generates a first-level warning signal to the control center after receiving the electrical signal of the detector, reminding personnel to take emergency measures.

[0017] Furthermore, when the electrical signal values ​​generated by the smoke detector and the temperature detector exceed the set values, the gas fire extinguishing controller generates a secondary warning signal after receiving the electrical signal from the detector and transmits it to the control center, and the gas fire extinguishing controller generates the secondary warning signal and sends a start signal to the installation-level fire extinguishing device after a delay.

[0018] Furthermore, the length of the delay is adjusted by the gas fire extinguishing controller.

[0019] Specifically, the physical detection components are all heat-sensitive wires, and the heat-sensitive wires of the PACK-level fire protection subsystem are evenly distributed along the inner surface of the corresponding battery PACK box.

[0020] More specifically, the PACK-level fire extinguishing device is an electric and thermal dual-start aerosol fire extinguishing device. After receiving an electric start signal or an open flame ignites the thermal wire, the electric initiator or the thermal wire burns to activate the aerosol generator in the fire extinguishing device. The heat released by the aerosol generator through the redox reaction decomposes the chemical coolant, so that the aerosol generator and the coolant jointly participate in fire extinguishing.

[0021] In detail, the installation-level fire extinguishing device is an electrically activated aerosol fire extinguishing device. After receiving the electric start signal, the electric initiator activates the aerosol generator in the fire extinguishing device. The aerosol generator produces a fire extinguishing agent through a combustion reaction. The heat released during the reaction causes the chemical coolant to decompose. The aerosol fire extinguishing agent and the coolant play a synergistic role and participate in fire extinguishing.

[0022] A multi-stage simple fire protection method for an electrochemical energy storage system comprises the following steps:

[0023] S1: Install the corresponding installation-level fire protection subsystem in the energy storage container;

[0024] S2: Arrange the power-on detection components, installation-level fire extinguishing devices, and gas fire extinguishing controllers in the S1 installation-level fire protection subsystem. The power-on detection components include temperature detectors and smoke detectors. The power-on detection components in the installation-level fire protection subsystem form delayed start coordination with the corresponding installation-level fire extinguishing devices through the gas fire extinguishing controller.

[0025] S3: When the temperature detector in S2 does not detect a fire warning signal with a temperature exceeding the set value, and the smoke detector detects smoke and generates a single fire warning signal, the system enters the first-level warning stage;

[0026] S4: In the first-level warning stage of S3, the gas fire extinguishing controller only generates a first-level warning signal to the control center to remind personnel to take emergency measures;

[0027] S5: When the temperature detector and smoke detector in S2 detect the temperature exceeding the set value and the composite fire warning signal generated by smoke, it enters the secondary warning stage;

[0028] S6: In the secondary warning stage of S5, the gas fire extinguishing controller generates a secondary warning signal to the control center to remind personnel to take emergency measures. At the same time, the gas fire extinguishing controller sends an electric start signal to the installation-level fire extinguishing device after generating the secondary warning signal.

[0029] S7: Install a corresponding PACK-level fire protection subsystem on each battery PACK box. The PACK-level fire protection subsystem includes a corresponding physical detection component and a PACK-level fire extinguishing device, so that the physical detection component in the PACK-level fire protection subsystem and the corresponding PACK-level fire extinguishing device form a start-up coordination;

[0030] S8: When the physical detection component in S7 senses a fire signal, the PACK-level fire extinguishing device is directly activated.

[0031] Preferably, the S6 also includes the following steps: an emergency stop button is provided on the gas fire extinguishing controller. When the on-site personnel have not completely evacuated during the delay stage or it has been manually confirmed that there is no actual fire in the protection area, the staff can press the emergency stop button to troubleshoot. When it is confirmed that the personnel have completely evacuated or there is indeed a fire in the container protection area, the installation-level fire extinguishing device is manually started to extinguish the fire. After the fire extinguishing, an on-site inspection of the fire extinguishing situation is carried out.

[0032] Beneficial effects of the present invention:

[0033] 1. Based on the power-on detection component, the present invention uses a physical detection component as the starting line of each fire extinguishing device, so that it is evenly distributed in each monitoring area, providing all-round protection, reducing costs, widening coverage, and improving response speed. Fire information is obtained immediately, and it is easier to install and arrange the battery pack box, saving installation space.

[0034] 2. The physical and chemical properties of the thermal wire serve as the trigger line for the fire extinguishing device. When the temperature exceeds the standard, the fire extinguishing component is ignited to spray the agent. The power detection component is only used in the installation-level protection system of the energy storage container, which reduces the possibility of secondary accidents.

[0035] 3. Make full use of the detection data of the power-on detection components and the physical detection components to form the first-level warning stage, the second-level warning stage and the PACK-level fire stage. The corresponding devices are activated at different stages to provide reminders and protection, which is intelligent protection and saves costs.

[0036] 4. The physical detection component and the power-on detection component complement each other, making up for each other's detection range. The physical detection component also makes up for the sensing time, reducing the maintenance inspection frequency of the power-on detection component.

[0037] 5. The gas fire extinguishing controller can not only respond in stages, but also enter the pre-release stage in the secondary warning stage. After the delay setting time, the installation-level fire extinguishing device will be electrically started, leaving sufficient time for evacuation, preliminary inspection, and closing of container doors. BRIEF DESCRIPTION OF THE DRAWINGS

[0038] FIG1 is a schematic front view of an energy storage container according to the present invention;

[0039] FIG2 is a schematic top view of an energy storage container according to the present invention;

[0040] FIG3 is a wiring diagram of the installation-level fire protection subsystem of the present invention;

[0041] FIG4 is a schematic diagram of the layout of a PACK-level fire protection subsystem of the present invention;

[0042] FIG5 is a schematic diagram of another PACK-level fire protection subsystem layout of the present invention;

[0043] FIG6 is a schematic diagram of the appearance of a PACK-level fire extinguishing device according to the present invention;

[0044] FIG7 is a schematic diagram of the appearance of an installation-level fire extinguishing device according to the present invention;

[0045] FIG8 is a schematic diagram of a fire extinguishing process according to the present invention;

[0046] In the figure: 1. Energy storage container; 2. Battery PACK box; 3. Installation-level fire protection subsystem; 4. PACK-level fire protection subsystem; 5. Installation-level fire extinguishing device; 6. PACK-level fire extinguishing device; 7. Thermistor; 8. Temperature detector; 9. Smoke detector; 10. Gas fire extinguishing controller; 11. Battery cluster. DETAILED DESCRIPTION

[0047] As shown in Figures 1 to 8, as a preferred embodiment 1, a multi-level simple fire protection system for an electrochemical energy storage system includes an energy storage container 1, a PACK-level fire extinguishing device 6, and an installation-level fire extinguishing device 5. The energy storage container 1 is provided with a plurality of battery clusters 11, each battery cluster 11 is provided with a plurality of battery PACK boxes 2, and the energy storage container 1 is provided with an installation-level fire protection subsystem 3 for overall fire protection of the energy storage container 1, and the installation-level fire protection subsystem 3 corresponds one-to-one with the container body. Each of the battery PACK boxes 2 is provided with a PACK-level fire protection subsystem 4 for fire protection of a single battery PACK box 2, and the PACK-level fire protection subsystem 4 corresponds one-to-one with the battery PACK box 2.

[0048] The installation-level fire protection subsystem 3 includes a power-on detection component, a gas fire extinguishing controller 10, and an installation-level fire extinguishing device 5, which are arranged in the container. The power-on detection component cooperates with the corresponding installation-level fire extinguishing device 5 through the corresponding gas fire extinguishing controller 10 to form a delayed start. The nozzle of the installation-level fire extinguishing device 5 is directed toward the battery cluster in the container.

[0049] Each of the PACK-level fire-fighting subsystems 4 includes a physical detection component and a corresponding PACK-level fire extinguishing device 6. The PACK-level fire extinguishing device 6 is arranged on the corresponding battery PACK box 2, and the nozzle of the PACK-level fire extinguishing device 6 covers the battery PACK box 2. The physical detection components are evenly distributed along the inner surface of the box, and the physical detection components and the corresponding PACK-level fire extinguishing device 6 form a starting coordination.

[0050] Example 1 provides a multi-level simplified fire protection system for an electrochemical energy storage system. The fire protection system is divided into an installation-level fire protection subsystem 3 for the entire energy storage container 1 and a pack-level fire protection subsystem 4 for a single battery pack box 2, based on the structure of the energy storage container 1. The pack-level fire protection subsystem 4 detects and extinguishes the root fire source early, while the installation-level fire protection subsystem 3 extinguishes and cools the interior of the box to avoid casualties.

[0051] The PACK-level fire protection subsystem 4 uses a thermistor 7 as a physical detection component. Temperature affects the physical and chemical properties of the thermistor 7, igniting the fire extinguishing component of the corresponding fire extinguishing device to spray the fire extinguishing agent. This reduces monitoring costs and prevents other electrical components from affecting the integrated cabinet and individual battery packs. In the event of a fire, it also reduces losses and prevents secondary damage to electrical components caused by the fire, which could affect the operation of the fire protection system. The battery pack box 2 has a narrow internal space, making it inconvenient to install the power detection component. Moreover, when a fire occurs far away from the ignition point at the sensing end, the power detection component will have a certain delay in detecting the value change, which is not as comprehensive as the thermistor 7 and provides timely feedback.

[0052] The installation-level fire protection subsystem 3 uses a power-on detection component for composite monitoring. There are several battery clusters in the box, and the battery clusters contain several battery PACK boxes 2. If thermistor wires 7 are used for monitoring, thermistor wires 7 are easily arranged everywhere and tangled, which is not conducive to fire protection and may even affect normal power supply. Therefore, a power-on detection component is used for detection, and graded processing is carried out according to the detection results to ensure the treatment effect while avoiding the waste of fire protection resources and greatly reducing the construction cost of fire protection. When a fire occurs, because there may still be staff or patrol personnel in the box, the moment the fire is detected, in addition to generating a signal to the control center to notify all personnel to evacuate, the corresponding installation-level fire extinguishing device 5 is delayed by the gas fire extinguishing controller 10 to leave time for staff evacuation and emergency verification, so that the fire protection process meets national standards.

[0053] Preferably, the energy storage container 1 is a 20-foot container designed for fire protection. The container measures 6050mm in length, 2430mm in width, and 2964mm in height, respectively. It contains eight battery clusters, each containing six battery packs 2. Each battery pack 2 measures 1033mm in length, 1044mm in width, and 292mm in height, respectively. The total capacity of this lithium-ion battery container is approximately 3.07MWh.

[0054] As shown in FIG. 2 , FIG. 3 and FIG. 8 , as a preferred embodiment 2, the power-on detection component includes a temperature detector 8 and a smoke detector 9 .

[0055] The smoke detector 9 is electrically connected to the gas fire extinguishing controller 10, and the gas fire extinguishing controller 10 is electrically connected to the background control center.

[0056] The smoke detector 9 and the temperature detector 8 are both electrically connected to the gas fire extinguishing controller 10, the gas fire extinguishing controller 10 is electrically connected to the background control center, and the gas fire extinguishing controller 10 is electrically connected to the installation-level fire extinguishing device 5. The smoke detector 9 and the temperature detector 8 form a delayed linkage with the installation-level fire extinguishing device 5 through the gas fire extinguishing controller 10.

[0057] Preferably, when only the electrical signal value of the smoke detector 9 after detecting smoke exceeds the set value, the gas fire extinguishing controller 10 generates a first-level warning signal to the control center after receiving the electrical signal of the detector, reminding personnel to take emergency measures.

[0058] More preferably, when the electrical signal values ​​generated by the smoke detector 9 and the temperature detector 8 exceed the set values, the gas fire extinguishing controller 10 generates a secondary warning signal after receiving the electrical signal from the detector and transmits it to the control center, and the gas fire extinguishing controller 10 generates the secondary warning signal and sends a start signal to the installation-level fire extinguishing device 5 after a delay.

[0059] In Example 2, the power-on detection components are selected as the temperature detector 8 and the smoke detector 9, and the detection process is divided into two stages according to the type of the detection component:

[0060] The first stage is the first-level warning stage, that is, when there is only smoke but no high temperature, there is no need to activate the fire extinguishing device at this time. Therefore, after receiving the signals from the temperature detector 8 and the smoke detector 9, the gas fire extinguishing controller 10 generates a first-level warning signal and transmits it to the control center. After receiving the first-level warning signal, the control center arranges personnel to carry out emergency treatment and troubleshoot the fault or fire.

[0061] The second stage is the secondary warning stage, that is, when there is both smoke and high temperature, it is necessary to start the fire extinguishing device to extinguish the fire and cool down the box. Therefore, after receiving the respective signals of the temperature detector 8 and the smoke detector 9, the gas fire extinguishing controller 10 generates a secondary warning signal and transmits it to the control center. After receiving the secondary warning signal, the control center arranges personnel to carry out emergency processing, check for faults or fire, and delays sending a start signal to start the installation-level fire extinguishing device 5 after generating the secondary warning signal, leaving a certain amount of time to evacuate the staff and confirm the fire. After confirming that all personnel have been evacuated and there is indeed a fire, the installation-level fire extinguishing device 5 is started after the delay to extinguish the fire in the entire container.

[0062] Preferably, the smoke detector 9 can be a 55000-316 type smoke detector, the temperature detector 8 can be a 55000-121 type temperature detector, and the gas fire extinguishing controller 10 can be a K11031M2 type gas fire extinguishing controller. The extinguishing agent release delay is 0 to 60 seconds, and the extinguishing agent release time is 60 to 300 seconds.

[0063] As a preferred embodiment 3, the delay time is adjusted by the gas fire extinguishing controller 10. The delay time can be adjusted by the gas fire extinguishing controller 10, but it must not be less than the safety regulations.

[0064] Preferably, the delay time can be selected as 30s.

[0065] As shown in Figures 4 and 5 , in a preferred embodiment 4, the physical detection components are all thermal wires 7. The thermal wires 7 of the pack-level fire protection subsystem 4 are evenly distributed along the inner surface of the corresponding battery pack box 2. Embodiment 4 illustrates the specific selection and installation location of the physical detection components. The thermal wires 7 of the pack-level fire protection subsystem 4 are arranged on the inner surface of the box to monitor fire conditions within the pack box.

[0066] As shown in Figure 4, as a preferred embodiment 5, the thermal wires 7 of the PACK-level fire protection subsystem 4 are arranged in an S-shaped curve on the inner surface of the battery pack box 2. The PACK-level fire extinguishing device 6 is located in the center of the top of the battery pack box 2 and is equipped with multiple nozzles. The multiple nozzles spray in different directions, covering the entire battery pack box 2. Embodiment 5 is one arrangement of the PACK-level fire protection subsystem 4. The thermal wires 7 are installed on the top of the PACK box, with multiple directions of outlet, which can reduce detection time. The S-shaped curve arrangement increases detection points compared to a single horizontal or vertical arrangement, providing more reliable protection. The fire extinguishing device has multiple nozzles, which can fully cover the protection area and immediately spray all the fire extinguishing agents to extinguish the fire.

[0067] As shown in FIG5 , as a preferred embodiment 6, the PACK-level fire extinguishing device 6 is arranged on one side of the pressure relief valve of the battery PACK box 2, and a thermal wire 7 is provided above the pressure relief valve of the battery PACK box 2. The PACK-level fire extinguishing device 6 is provided with multiple nozzles, and the multiple nozzles spray in different directions, and the spray range covers the entire battery PACK box 2. At least one nozzle among the multiple nozzles is aimed at the pressure relief valve of the battery PACK box 2. Embodiment 6 is another arrangement of the PACK-level fire protection subsystem 4. The PACK box is installed on the side, and the thermal wire 7 is output in multiple directions, which can reduce the detection time. The thermal wire 7 is arranged at the pressure relief valve of the PACK box. After the battery cell thermal runaway, a large amount of combustible gas overflows from the pressure relief valve. At this time, the oxygen on the surface of the box is insufficient and the ignition point cannot be reached. The pressure relief valve is the contact point between air and combustible gas, and there is sufficient oxygen. Therefore, this should be an important ignition point. The thermal wire 7 is arranged here in a limited manner, so that the fire can be detected in the first time and the fire extinguishing device can be activated.

[0068] Secondly, the nozzle of the device is located near the pressure relief valve. When the device sprays, a large amount of fire extinguishing agent quickly cuts off the combustible materials and the fire point, playing a partial role in extinguishing the fire.

[0069] As shown in Figure 6, as a preferred embodiment 7, the PACK-level fire extinguishing device 6 is an electric and thermal dual-start aerosol fire extinguishing device. After the fire extinguishing device receives an electric start signal or an open flame ignites the thermal wire 7, the electric initiator or the thermal wire 7 burns to activate the aerosol generator in the fire extinguishing device. The heat released by the aerosol generator through the redox reaction decomposes the chemical coolant, so that the aerosol generator and the coolant jointly participate in fire extinguishing.

[0070] Preferably, the PACK-level fire extinguishing device 6 utilizes a thermal aerosol extinguishing device model QRR0.144G / S-MS-144-F-02-11, suitable for relatively enclosed spaces such as energy storage cabinets. When a fire occurs, the device receives an electrical activation signal or an open flame ignites a thermal wire. The electrical initiator or thermal wire then burns, activating the aerosol generator within the device. The heat released by the redox reaction in the aerosol generator decomposes the chemical coolant, allowing both the aerosol generator and the coolant to jointly extinguish the fire.

[0071] Among them, its reference parameters are as follows:

[0072] Working temperature range: -40℃~+70℃; Start mode: Electric heating and dual start; Spray time: ≤15s; Oxidant name and content: Strontium nitrate, potassium nitrate 50%~58%; Protective space: 2m 3 ; Thermal initiator starting temperature: 185±10℃.

[0073] As shown in Figure 7, as a preferred embodiment 8, the installation-level fire extinguishing device 5 is an electrically activated aerosol fire extinguishing device. After the fire extinguishing device receives the electric start signal, the electric initiator activates the aerosol generator in the fire extinguishing device. The aerosol generator produces a fire extinguishing agent through a combustion reaction. The heat released during the reaction causes the chemical coolant to decompose. The aerosol fire extinguishing agent and the coolant play a synergistic role and participate in fire extinguishing.

[0074] Preferably, the installation-level fire extinguishing device 5 utilizes the JAD300-U01 rapid-use aerosol extinguishing device, suitable for relatively enclosed spaces such as distribution cabinets. When a fire occurs, upon receiving an electrical activation signal, the electric initiator activates the aerosol generator within the device. This combustion reaction produces a fire extinguishing agent. The heat released during this reaction decomposes the chemical coolant, and the aerosol extinguishing agent and coolant work synergistically to extinguish the fire.

[0075] Among them, its reference parameters are as follows:

[0076] Working temperature range: -40℃~+54℃; Starting mode: Electric start; Spraying time: ≤15s; Spraying lag time: ≤2s; Oxidant name and content: Strontium nitrate 50%~58%; Protective space: 5m 3 .

[0077] As a preferred embodiment 9, the installation-level fire protection subsystems 3 can be arranged so that their installation locations and number correspond to the locations and number of battery clusters within the container. Multiple installation-level fire protection subsystems 3 form a complete installation-level fire protection subsystem 3 for the entire energy storage container 1, while a single installation-level fire protection subsystem 3 forms a cluster-level fire protection subsystem for a single battery cluster. This improves protection effectiveness and avoids excessive delays caused by the power-on detection component waiting for the detection signal to exceed the limit, which can affect the response of the fire extinguishing device.

[0078] As shown in FIG8 , as a preferred embodiment 10, a multi-level simplified fire protection method for an electrochemical energy storage system includes the following steps:

[0079] S1: Install the corresponding installation-level fire protection subsystem 3 in the energy storage container 1;

[0080] S2: Arrange the power-on detection component, the installation-level fire extinguishing device 5, and the gas fire extinguishing controller 10 in the installation-level fire protection subsystem 3 in S1. The power-on detection component includes a temperature detector 8 and a smoke detector 9. The power-on detection component in the installation-level fire protection subsystem 3 forms a delayed start coordination with the corresponding installation-level fire extinguishing device 5 through the gas fire extinguishing controller 10.

[0081] S3: When the temperature detector 8 in S2 does not detect a fire warning signal where the temperature exceeds the set value, and the smoke detector 9 detects smoke and generates a single fire warning signal, the system enters the first-level warning stage;

[0082] S4: In the first-level warning stage in S3, the gas fire extinguishing controller 10 only generates a first-level warning signal to the control center to remind personnel to take emergency measures;

[0083] S5: When the temperature detector 8 and the smoke detector 9 in S2 detect the composite fire warning signal of the temperature exceeding the set value and the smoke, the system enters the secondary warning stage;

[0084] S6: In the secondary warning stage in S5, the gas fire extinguishing controller 10 generates a secondary warning signal to the control center to remind personnel to take emergency measures. At the same time, the gas fire extinguishing controller 10 sends an electric start signal to the installation-level fire extinguishing device 5 after generating the secondary warning signal.

[0085] S7: Install a corresponding PACK-level fire protection subsystem 4 on each battery PACK box 2. The PACK-level fire protection subsystem 4 includes a corresponding physical detection component and a PACK-level fire extinguishing device 6. The physical detection component in the PACK-level fire protection subsystem 4 and the corresponding PACK-level fire extinguishing device 6 form a start-up coordination.

[0086] S8: When the physical detection component in S7 senses the fire signal, the PACK-level fire extinguishing device 6 is directly activated.

[0087] Example 10 proposes a multi-level simplified fire protection method for an electrochemical energy storage system based on this system. In S2, the entire interior of the energy storage container 1 is detected by energizing the detection component. When a single smoke signal is detected in S3, the system enters the first-level warning stage and executes S4. The gas fire extinguishing controller 10 generates a first-level warning signal to the control center, notifying personnel to quickly arrive at the scene for investigation and maintenance to prevent a larger fire.

[0088] When S5 detects that the temperature detector 8 and the smoke detector 9 detect that the temperature exceeds the set value and the composite fire warning signal generated by the smoke, it enters the secondary warning stage and executes S6. The gas fire extinguishing controller 10 generates a secondary warning signal to the control center to remind personnel to take emergency measures. At the same time, the gas fire extinguishing controller 10 delays sending an electric start signal to the installation-level fire extinguishing device 5 after generating the secondary warning signal, leaving enough time for emergency evacuation of personnel and preliminary verification of the fire situation without affecting the fire extinguishing effect. After the delay is up, the installation-level fire extinguishing device 5 is started;

[0089] In S7 , the battery PACK box 2 is detected by a physical detection component. When a fire is detected, the process proceeds to S8 to directly activate the corresponding PACK-level fire extinguishing device 6 .

[0090] As a preferred embodiment 11, S6 further includes the following steps: the gas fire extinguishing controller 10 is provided with an emergency stop button. If on-site personnel have not yet completely evacuated during the delay phase or if it is manually confirmed that there is no actual fire in the protection zone, the personnel can press the emergency stop button to conduct troubleshooting. Once it is confirmed that all personnel have completely evacuated or there is indeed a fire in the container protection zone, the installation-level fire extinguishing device 5 is manually activated to extinguish the fire. After the fire extinguishing process, an on-site inspection of the fire extinguishing status is conducted. This is to avoid erroneous responses.

[0091] As a preferred embodiment 12, S6 also includes the following steps: when performing installation-level fire extinguishing, after all personnel have evacuated, the door of the energy storage container 1 is closed, and when the installation-level fire extinguishing device 5 is activated, the interior of the container becomes a relatively closed environment, preventing the continuous entry of the combustion-supporting gas, enhancing the fire extinguishing effect, and accelerating the fire extinguishing speed.

Claims

1. A multi-level simple fire protection system for an electrochemical energy storage system, comprising an energy storage container (1), a PACK-level fire extinguishing device (6) and an installation-level fire extinguishing device (5), wherein the energy storage container (1) is provided with a plurality of battery clusters (11), each battery cluster (11) is provided with a plurality of battery PACK boxes (2), characterized in that: The energy storage container (1) is provided with an installation-level fire protection subsystem (3) for overall fire protection of the energy storage container (1), and the installation-level fire protection subsystem (3) corresponds one-to-one with the container body; each of the battery PACK boxes (2) is provided with a PACK-level fire protection subsystem (4) for fire protection of a single battery PACK box (2), and the PACK-level fire protection subsystem (4) corresponds one-to-one with the battery PACK box (2); The installation-level fire protection subsystem (3) comprises a power-on detection component, a gas fire extinguishing controller (10) and an installation-level fire extinguishing device (5) arranged in the container. The power-on detection component is electrically connected to the corresponding installation-level fire extinguishing device (5) through the corresponding gas fire extinguishing controller (10) to form a delayed linkage coordination. The nozzle of the installation-level fire extinguishing device (5) is directed toward the battery cluster in the container. Each of the PACK-level fire protection subsystems (4) comprises a physical detection component and a corresponding PACK-level fire extinguishing device (6); the PACK-level fire extinguishing device (6) is arranged on the corresponding battery PACK box (2), and the nozzle of the PACK-level fire extinguishing device (6) covers the battery PACK box (2); the physical detection component is evenly distributed along the inner surface of the box, and the physical detection component forms a linkage with the corresponding PACK-level fire extinguishing device (6).

2. A multi-level simple fire protection system for an electrochemical energy storage system according to claim 1, characterized in that: The power-on detection component comprises a temperature detector (8) and a smoke detector (9).

3. A multi-level simple fire protection system for an electrochemical energy storage system according to claim 2, characterized in that: The smoke detector (9) is electrically connected to the gas fire extinguishing controller (10), and the gas fire extinguishing controller (10) is electrically connected to the background control center.

4. A multi-level simple fire protection system for an electrochemical energy storage system according to claim 3, characterized in that: The smoke detector (9) and the temperature detector (8) are both electrically connected to the gas fire extinguishing controller (10), the gas fire extinguishing controller (10) is electrically connected to the background control center, and the gas fire extinguishing controller (10) is electrically connected to the installation-level fire extinguishing device (5), and the smoke detector (9) and the temperature detector (8) form a delayed linkage with the installation-level fire extinguishing device (5) through the gas fire extinguishing controller (10).

5. A multi-level simple fire protection system for an electrochemical energy storage system according to claim 4, characterized in that: The gas fire extinguishing controller (10) is provided with an adjustable delay module.

6. A multi-level simple fire protection system for an electrochemical energy storage system according to claim 5, characterized in that: The physical detection components are all heat-sensitive wires (7), and the heat-sensitive wires (7) of the PACK-level fire protection subsystem (4) are evenly distributed along the inner surface of the corresponding battery PACK box (2).

7. A multi-level simple fire protection system for an electrochemical energy storage system according to claim 6, characterized in that: The PACK-level fire extinguishing device (6) is an electric-heat dual-start aerosol fire extinguishing device. After receiving an electric start signal or an open flame igniting the thermistor (7), the electric initiator or the thermistor (7) burns and activates the aerosol generator in the fire extinguishing device. The heat released by the aerosol generator through the redox reaction decomposes the chemical coolant, thereby achieving the aerosol generator and the coolant jointly participating in the fire extinguishing.

8. A multi-level simple fire protection system for an electrochemical energy storage system according to claim 7, characterized in that: The installation-level fire extinguishing device (5) is an electrically activated aerosol fire extinguishing device. After receiving an electrical activation signal, the electric initiator activates the aerosol generator in the fire extinguishing device. The aerosol generator generates a fire extinguishing agent through a combustion reaction. The heat released during the reaction causes the chemical coolant to decompose. The aerosol fire extinguishing agent and the coolant play a synergistic role and participate in fire extinguishing.

9. A fire protection method for fire extinguishing protection using a multi-level simple fire protection system for an electrochemical energy storage system according to any one of claims 1 to 8, characterized in that: The following steps are involved: S1: Installing a corresponding installation-level fire protection subsystem (3) in the energy storage container (1); S2: Arrange the power-on detection component, the installation-level fire extinguishing device (5) and the gas fire extinguishing controller (10) in the installation-level fire fighting subsystem (3) of S1, wherein the power-on detection component includes a temperature detector (8) and a smoke detector (9), and the power-on detection component in the installation-level fire fighting subsystem (3) forms a delayed start coordination with the corresponding installation-level fire extinguishing device (5) through the gas fire extinguishing controller (10); S3: When the temperature detector (8) in S2 does not detect a fire warning signal of a temperature exceeding a set value, and the smoke detector (9) detects smoke and generates a single fire warning signal, the first-level warning stage is entered; S4: In the first-level warning stage in S3, the gas fire extinguishing controller (10) only generates a first-level warning signal to the control center to remind personnel to take emergency measures; S5: When the temperature detector (8) and the smoke detector (9) in S2 detect that the temperature exceeds the set value and the composite fire warning signal generated by smoke, the secondary warning stage is entered; S6: In the secondary warning stage in S5, the gas fire extinguishing controller (10) generates a secondary warning signal to the control center to remind personnel to take emergency measures. At the same time, the gas fire extinguishing controller (10) sends an electric start signal to the installation-level fire extinguishing device (5) after generating the secondary warning signal. S7: Install a corresponding PACK-level fire-fighting subsystem (4) on each battery PACK box (2), wherein the PACK-level fire-fighting subsystem (4) includes a corresponding physical detection component and a PACK-level fire-fighting device (6), so that the physical detection component in the PACK-level fire-fighting subsystem (4) and the corresponding PACK-level fire-fighting device (6) form a start-up coordination; S8: When the physical detection component in S7 senses a fire signal, the PACK-level fire extinguishing device (6) is directly activated.

10. A multi-level simple fire protection method for an electrochemical energy storage system according to claim 9, characterized in that: The S6 also includes the following steps: an emergency stop button is provided on the gas fire extinguishing controller (10). When the on-site personnel have not completely evacuated during the delay phase or it is manually confirmed that there is no actual fire in the protection zone, the staff can press the emergency stop button to conduct troubleshooting. When it is confirmed that the personnel have completely evacuated or there is indeed a fire in the container protection zone, the installation-level fire extinguishing device (5) is manually started to extinguish the fire. After the fire extinguishing process, an on-site inspection of the fire extinguishing situation is conducted.

Citation Information

Patent Citations

  • Fire extinguishing system for energy storage units of lithium batteries

    CN103977516A

  • Fire extinguishing system for energy storage container and fire early warning control method

    CN115869563A

  • Container type liquid cooling energy storage integrated system based on multistage fire-fighting deployment

    CN116345002A

  • Multifunctional fire protection system and method for electrochemical energy storage system

    CN117599374A

  • Multi-stage simple fire protection system and method for electrochemical energy storage system

    CN117599375A