Perfluorohexanone fire extinguishing device with nozzle pressure relief diaphragm

By installing a shield and a pressure relief diaphragm on the nozzle end cover of the perfluorohexanone fire extinguishing device, the problem of a large amount of fire extinguishing agent remaining in the fire extinguishing device is solved, the actual and theoretical capabilities of the fire extinguishing device are matched, and the fire extinguishing efficiency is improved.

CN222854492UActive Publication Date: 2025-05-13HUBEI JIANDUN FIRE TECH CO LTD
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Patent Information

Application Number
CN202421640828.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-11
Publication Date
2025-05-13
Estimated Expiration
2034-07-11

AI Technical Summary

Technical Problem

After the spraying of the existing perfluorohexanone fire extinguishing device is completed, a large amount of fire extinguishing agent remains, resulting in the theoretical fire extinguishing capacity far greater than the actual fire extinguishing capacity.

Method used

A perfluorohexanone fire extinguishing device is designed with a spout pressure relief diaphragm. A shielding piece is fixed on the upper part of the nozzle end cap and a pressure relief diaphragm is provided at the lower part of the nozzle to ensure that the perfluorohexanone fire extinguishing agent is discharged from the lower position of the nozzle and reduce the liquid residue.

Benefits of technology

It effectively reduces the liquid residual rate of perfluorohexanone fire extinguishing agent, ensures the matching of the actual fire extinguishing ability of the fire extinguishing device with the theoretical fire extinguishing ability, and improves the fire extinguishing efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a perfluorohexanone fire extinguishing device with a nozzle pressure relief diaphragm, which comprises an outer shell and an inner shell arranged in the outer shell, a perfluorohexanone fire extinguishing agent is arranged in the outer shell, a gas generating agent is arranged in the inner shell, and a nozzle end cover is arranged at one end of the outer shell. The electric ignition head is connected with the starting component, a shielding piece is fixedly arranged on the upper portion of a nozzle of the nozzle end cover, and a pressure relief membrane is arranged on the lower portion of the nozzle of the nozzle end cover. According to the utility model, after the shielding sheet is fixedly arranged at the upper part of the nozzle of the nozzle end cover, gas cannot escape from the upper part of the nozzle, so that the pressure on a perfluorohexanone fire extinguishing agent in the outer shell cannot be suddenly reduced, the perfluorohexanone fire extinguishing agent is discharged from the lower part of the nozzle, and the liquid residual rate of the perfluorohexanone fire extinguishing agent is greatly reduced.
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Description

Technical Field

[0001] The utility model relates to the technical field of new energy storage fire extinguishing, in particular to a perfluorohexanone fire extinguishing device provided with a nozzle pressure relief diaphragm. Background Art

[0002] With the continuous development of the new energy storage industry, the supporting equipment inside the battery box has gradually increased, resulting in a gradual reduction in the available space inside the battery box. However, new energy batteries themselves have high energy density and great fire hazards. The increase in supporting equipment has undoubtedly aggravated this problem.

[0003] Existing fire extinguishing devices are usually large in size. A flattened perfluorohexanone fire extinguishing device is mentioned in the 202121858546.2 fire extinguishing device patent. However, after the spraying of the device that uses an aerosol generator as a gas generating agent to propel the perfluorohexanone fire extinguishing agent is completed, a large amount of perfluorohexanone fire extinguishing agent still remains in the fire extinguishing device, making the theoretical fire extinguishing capacity of the fire extinguishing device far greater than the actual fire extinguishing capacity. Summary of the invention

[0004] The purpose of the utility model is to overcome the above-mentioned shortcomings and provide a perfluorohexanone fire extinguishing device provided with a nozzle pressure relief diaphragm to solve the problems raised in the background technology.

[0005] In order to solve the above technical problems, the technical solution adopted by the utility model is: a perfluorohexanone fire extinguishing device provided with a nozzle pressure relief diaphragm, comprising an outer shell and an inner shell arranged inside the outer shell, the outer shell is equipped with a perfluorohexanone fire extinguishing agent, the inner shell is provided with a gas generating agent, and a nozzle end cover is provided at one end of the outer shell, characterized in that: the gas generating agent is in contact with an electric ignition head, the electric ignition head is connected to a starting component, a shielding sheet is fixedly provided on the upper part of the nozzle of the nozzle end cover, and a pressure relief diaphragm is provided on the lower part of the nozzle of the nozzle end cover.

[0006] Preferably, the starting component includes a starting wire connected to one end of the electric ignition head, the other end of the starting wire is connected to the output end of the piezoelectric ceramic, one side of the piezoelectric ceramic is provided with an impact piece, the impact piece is connected to one end of the fusible metal rod through a pull rod, a spring is provided between the impact piece and the end of the inner shell body, and the other end of the fusible metal rod is connected to a fixed part on the surface of the battery box.

[0007] Preferably, the surface of the fusible metal rod is further provided with a moisture-proof outer skin, and the gap between the moisture-proof outer skin and the surface of the fusible metal rod is filled with a flammable agent.

[0008] More preferably, both ends of the fusible metal rod are provided with connecting heads, and the two connecting heads cooperate with the impact piece and the fixing part respectively.

[0009] More preferably, the fusible metal rod is made of a bismuth-tin low melting point alloy, the flammable agent is an aerosol generating agent powder, and the gas generating agent is an aerosol generating agent powder or a columnar structure formed by pressing the aerosol generating agent powder.

[0010] Preferably, the inner shell is fixed to the surface of the outer shell by a limiting end cover.

[0011] Preferably, the outer shell is a flat rectangular structure, which is fixedly connected to the inner side of the box cover of the battery box through a mounting plate, and the fixing part is mounted on the inner side of the box cover.

[0012] Preferably, the impact member is a disc structure, one side of which contacts one end of the spring, and the other end of the spring contacts a limiting step provided at the end of the inner shell.

[0013] Beneficial effects of the utility model: after the utility model fixes a shielding sheet on the upper part of the nozzle of the nozzle end cover, the gas will not escape from the upper part of the nozzle, thereby ensuring that the pressure on the perfluorohexanone fire extinguishing agent in the outer shell will not drop suddenly, and the perfluorohexanone fire extinguishing agent is discharged from the lower part of the nozzle, which greatly reduces the liquid residual rate of the perfluorohexanone fire extinguishing agent. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] Figure 1 It is a schematic diagram of the internal structure of a perfluorohexanone fire extinguishing device provided with a nozzle pressure relief diaphragm;

[0015] Figure 2 for Figure 1 AA position cross-sectional structural diagram;

[0016] Figure 3 It is a schematic diagram of the structure of the fusible metal rod;

[0017] Figure 4 Schematic diagram of the internal battery structure of the battery box;

[0018] Figure 5 This is a schematic diagram of the structure viewed from above after the battery box cover is installed with a perfluorohexanone fire extinguishing device. DETAILED DESCRIPTION

[0019] The present invention will be described in further detail below in conjunction with the accompanying drawings and specific embodiments.

[0020] like Figure 1-5As shown, a perfluorohexanone fire extinguishing device provided with a nozzle pressure relief diaphragm comprises an outer shell 1 and an inner shell 2 arranged inside the outer shell 1, wherein the outer shell 1 is provided with a perfluorohexanone fire extinguishing agent 3, the inner shell 2 is provided with a gas generating agent 4, and a nozzle end cover 5 is provided at one end of the outer shell 1, characterized in that: the gas generating agent 4 is in contact with an electric ignition head 6, the electric ignition head 6 is connected to a starting component, a shielding sheet 20 is fixedly provided on the upper portion of the nozzle of the nozzle end cover 5, and a pressure relief diaphragm 17 is provided on the lower portion of the nozzle of the nozzle end cover 5. During the fire extinguishing process, the gas generating agent 4 generates gas to cause the inner shell 2 to burst, and the gas will push the perfluorohexanone fire extinguishing agent 3 to gradually spray out from the nozzle position of the nozzle end cover 5 in the outer shell 1. The liquid level of the perfluorohexanone fire extinguishing agent 3 (liquid) in the outer shell 1 gradually decreases. At this time, the liquid level will gradually be lower than the highest position of the nozzle. If it is a traditional technical solution, the gas generated by the gas generating agent 4 will directly pass above the liquid level of the perfluorohexanone fire extinguishing agent 3, and then escape from the upper position of the nozzle, which will cause the pressure on the perfluorohexanone fire extinguishing agent 3 to decrease, making it difficult to be completely discharged from the nozzle, and finally The liquid residual rate of the perfluorohexanone fire extinguishing agent 3 will be higher; and after the utility model is fixedly provided with a shielding piece 20 on the upper part of the nozzle of the nozzle end cover 5, the gas will not escape from the upper part of the nozzle (the shielding piece 20 is fixedly connected to the upper part of the nozzle of the nozzle end cover 5, which can be achieved by welding, or is an integrated design. During the fire extinguishing process, the shielding piece 20 will not be washed away from the nozzle), thereby ensuring that the pressure on the perfluorohexanone fire extinguishing agent 3 in the outer shell 1 will not decrease suddenly, and the perfluorohexanone fire extinguishing agent 3 is discharged from the lower part of the nozzle, thereby reducing the liquid residual rate of the perfluorohexanone fire extinguishing agent 3.

[0021] In addition, after the pressure relief diaphragm 17 is provided at the lower part of the nozzle of the nozzle end cover 5 of the utility model, it can prevent moisture in the air from entering the outer shell 1 through the nozzle during normal storage and transportation of the fire extinguishing device, causing the perfluorohexanone fire extinguishing agent 3 to absorb moisture. In addition, during the fire extinguishing process, when the air pressure inside the outer shell 1 increases, the pressure relief diaphragm 17 is easily broken, and the normal spraying process of the nozzle is not affected.

[0022] Preferably, the starting component includes a starting wire connected to one end of the electric ignition head 6, the other end of the starting wire is connected to the output end of the piezoelectric ceramic 7, one side of the piezoelectric ceramic 7 is provided with an impact member 8, the impact member 8 is connected to one end of a fusible metal rod 10 through a pull rod 9, a spring 11 is provided between the impact member 8 and the end of the inner shell 2, and the other end of the fusible metal rod 10 is connected to a fixing part 13 on the surface of the battery box 12.

[0023] Preferably, the surface of the fusible metal rod 10 is also provided with a moisture-proof outer skin 14, and the gap between the moisture-proof outer skin 14 and the surface of the fusible metal rod 10 is filled with a flammable agent. With such a design, when a fire occurs, the flame temperature will cause the flammable agent to burn, and the heat generated by the combustion will cause the fusible metal rod 10 to be melted and broken, thereby releasing the limiting effect on the pull rod 9, so that the impact member 8 flies downward under the elastic force of the spring 11 and hits the piezoelectric ceramic 7. The piezoelectric ceramic 7 is started after being hit and generates an induced current, which is conducted to the electric ignition head 6 through the starting line to make it work, thereby igniting the gas generating agent 4. More preferably, the electric ignition head 6 adopts a bridgeless ignition head. Since there is a certain gap between the two ignition wires of the bridgeless ignition head, arc jumping will occur after providing a certain current (or induced current) to start the contacted gas generating agent 4.

[0024] More preferably, both ends of the fusible metal rod 10 are provided with connectors 15, and the two connectors 15 are respectively matched with the impact member 8 and the fixing portion 13. Through this structural design of the connector 15, the installation and fixing process of the fusible metal rod 10 is more convenient.

[0025] More preferably, the fusible metal rod 10 is made of a bismuth-tin low melting point alloy, the flammable agent is an aerosol generating agent powder, and the gas generating agent 4 is an aerosol generating agent powder or a columnar structure formed by pressing the aerosol generating agent powder.

[0026] In this embodiment, the aerosol generating agent used in the gas generating agent 4 can be in two states, one is a powdered state, which burns more violently and generates gas quickly, and the other is a pressed charge structure, which burns more steadily and generates gas steadily. In actual production, the aerosol generating agent can be selected according to the actual situation.

[0027] Preferably, the inner shell 2 is fixed to the surface of the outer shell 1 through a limiting end cover 16 .

[0028] Preferably, the outer shell 1 is a flat rectangular parallelepiped structure, which is fixedly connected to the inner side of the box cover 19 of the battery box 12 through the mounting plate 18, and the fixing part 13 is installed on the inner side of the box cover 19 (such as Figure 5 Designing the outer shell 1 into such a flat structure can facilitate the installation of the entire fire extinguishing device in the battery box 12, and such a flat structure can adapt to the narrow installation environment inside the battery box 12.

[0029] Preferably, the impact member 8 is a disc structure, one side of which contacts one end of the spring 11 , and the other end of the spring 11 contacts a limiting step provided at the end of the inner shell 2 .

[0030] More preferably, the inner shell 2 is a fragile plastic shell structure, and the gas generating agent 4 is located in a closed cavity inside the inner shell 2. Only a wire hole for passing a starting wire is retained at the top of the closed cavity. When the gas generating agent 4 is ignited to generate gas, as the pressure inside the cavity increases, the inner shell 2 bursts after reaching a certain pressure, allowing the gas to enter the outer shell 2.

[0031] The working principle of the utility model is as follows:

[0032] When a fire occurs, the flame temperature will cause the flammable agent to burn, and the heat generated by the combustion will cause the fusible metal rod 10 to melt and break, thereby releasing the limiting effect on the pull rod 9, causing the impact member 8 to fly downward under the elastic force of the spring 11 and hit the piezoelectric ceramic 7. The piezoelectric ceramic 7 is started after being hit and generates an induced current, which is transmitted to the electric ignition head 6 through the starting line to make it work, thereby igniting the gas generating agent 4. The gas generating agent 4 generates a large amount of gas, causing the inner shell 2 to be compressed and burst, thereby allowing the gas to enter the outer shell 1, increasing the internal pressure of the outer shell 1, thereby flushing the pressure relief diaphragm 17 set at the lower part of the nozzle of the nozzle end cover 5 away from the nozzle, and finally pushing the perfluorohexanone fire extinguishing agent 3 to be ejected from the lower position of the nozzle of the nozzle end cover 5 to carry out the fire extinguishing process. After the utility model fixes a shielding piece 20 on the upper part of the nozzle of the nozzle end cover 5, the gas will not escape from the upper part of the nozzle (the shielding piece 20 is fixedly connected to the upper part of the nozzle of the nozzle end cover 5, which can be achieved by welding, or is an integrated design. During the fire extinguishing process, the shielding piece 20 will not be washed away from the nozzle), thereby ensuring that the pressure on the perfluorohexanone fire extinguishing agent 3 in the outer shell 1 will not decrease suddenly, and the perfluorohexanone fire extinguishing agent 3 is discharged from the lower part of the nozzle, reducing the liquid residual rate of the perfluorohexanone fire extinguishing agent 3.

[0033] The above embodiments are only preferred technical solutions of the present invention and should not be regarded as limitations of the present invention. The protection scope of the present invention shall be the technical solutions recorded in the claims, including equivalent replacement solutions of the technical features in the technical solutions recorded in the claims. That is, equivalent replacement improvements within this scope are also within the protection scope of the present invention.

Claims

1. A perfluorohexanone fire extinguishing device provided with a nozzle pressure relief diaphragm, comprising an outer shell (1) and an inner shell (2) arranged inside the outer shell (1), wherein the outer shell (1) is provided with a perfluorohexanone fire extinguishing agent (3), the inner shell (2) is provided with a gas generating agent (4), and a nozzle end cover (5) is provided at one end of the outer shell (1), characterized in that: The gas generating agent (4) is in contact with an electric ignition head (6), the electric ignition head (6) is connected to a starting component, a shielding sheet (20) is fixedly provided on the upper portion of the nozzle of the nozzle end cover (5), and a pressure relief diaphragm (17) is provided on the lower portion of the nozzle of the nozzle end cover (5).

2. A perfluorohexanone fire extinguishing device with a nozzle pressure relief diaphragm according to claim 1, characterized in that: The starting component comprises a starting wire connected to one end of the electric ignition head (6), the other end of the starting wire is connected to the output end of the piezoelectric ceramic (7), one side of the piezoelectric ceramic (7) is provided with a striking piece (8), the striking piece (8) is connected to one end of a fusible metal rod (10) via a pull rod (9), a spring (11) is provided between the striking piece (8) and the end of the inner shell (2), and the other end of the fusible metal rod (10) is connected to a fixing portion (13) on the surface of a battery box (12).

3. A perfluorohexanone fire extinguishing device with a nozzle pressure relief diaphragm according to claim 2, characterized in that: The surface of the fusible metal rod (10) is also provided with a moisture-proof outer skin (14), and the gap between the moisture-proof outer skin (14) and the surface of the fusible metal rod (10) is filled with a flammable agent.

4. A perfluorohexanone fire extinguishing device with a nozzle pressure relief diaphragm according to claim 2, characterized in that: Connectors (15) are provided at both ends of the fusible metal rod (10), and the two connectors (15) respectively cooperate with the impact piece (8) and the fixing portion (13).

5. A perfluorohexanone fire extinguishing device with a nozzle pressure relief diaphragm according to claim 3, characterized in that: The fusible metal rod (10) is made of a bismuth-tin low melting point alloy, the flammable agent is an aerosol generating agent powder, and the gas generating agent (4) is an aerosol generating agent powder or a columnar structure formed by pressing the aerosol generating agent powder.

6. A perfluorohexanone fire extinguishing device with a nozzle pressure relief diaphragm according to claim 1, characterized in that: The inner shell (2) is fixed to the surface of the outer shell (1) via a limiting end cover (16).

7. A perfluorohexanone fire extinguishing device with a nozzle pressure relief diaphragm according to claim 2, characterized in that: The outer shell (1) is a flat rectangular parallelepiped structure, which is fixedly connected to the inner side of a box cover (19) of a battery box (12) via a mounting plate (18), and the fixing portion (13) is mounted on the inner side of the box cover (19).

8. A perfluorohexanone fire extinguishing device with a nozzle pressure relief diaphragm according to claim 2, characterized in that: The impact member (8) is a disc structure, one side of which contacts one end of a spring (11), and the other end of the spring (11) contacts a limiting step provided at the end of the inner shell (2).

Citation Information

Patent Citations

  • Fire extinguishing device

    CN215741535U