Energy storage prefabricated cabin compatible with fire protection inhibitors of different standards
By designing electrical and battery cavities in the energy storage container and adopting structures such as wall-penetrating holes and installation mechanisms, the problem of customized internal structure of traditional energy storage containers is solved, and stable installation and safe partitioned storage compatible with different fire suppressants are achieved, thereby improving production efficiency and safety.
Patent Information
- Application Number
- CN202422857027.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-22
- Publication Date
- 2025-10-14
- Estimated Expiration
- 2034-11-22
AI Technical Summary
Traditional energy storage containers require customized internal structures according to the standards of different fire suppressants, resulting in high production costs, incompatibility, and poor mass production.
A prefabricated energy storage cabin compatible with fire suppressants of different standards is designed. The cabin body is divided into an electrical chamber and a battery chamber by partitions. Wall holes, mounting mechanisms and fire extinguishing devices are set in each chamber, including support bottom plates, clamp slots and square tubes to ensure the stable installation of the fire extinguishing device and adaptability to different fire standards.
It realizes the compartmentalized storage of electrical equipment and batteries, improves safety, adapts to the fire suppressant standards of different regions, reduces production costs and improves product compatibility and mass production.
Smart Images

Figure CN223436625U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of energy storage battery fire protection, in particular to a prefabricated energy storage cabin compatible with fire suppression agents of different standards. Background Art
[0002] Energy storage containers, as an advanced energy storage solution, can effectively store and release renewable energy, thereby ensuring stable power system operation and efficient energy utilization. As a crucial component of modern power systems, energy storage containers store large amounts of electrical energy. A fire could potentially destroy the container or even endanger personal safety. Therefore, the selection and use of fire suppressants is crucial. These suppressants not only extinguish fires quickly in the event of a fire, but also provide effective preventive measures during daily operations.
[0003] Traditional energy storage container designs often require customized internal structures based on specific fire safety standards to meet the storage and release requirements of different fire suppressants. Aerosol products typically need to be placed on top of the battery compartment and maintain a safe clearance from surrounding equipment during release. Heptafluoropropane products, on the other hand, require a larger space to store large and heavy cylinders, and the bottom of the cylinders require a stable support structure. This approach of individually designing each fire suppressant not only increases labor costs during the production process, but also reduces product compatibility and mass production. Utility Model Content
[0004] The utility model provides a prefabricated energy storage cabin compatible with fire suppressants of different standards, which can solve the problem that traditional energy storage containers need to customize their internal structures according to fire standards and are not compatible with various fire suppressants.
[0005] According to the utility model, a prefabricated energy storage cabin compatible with fire suppressants of different standards includes: a cabin body, a storage cavity provided in the cabin body, a partition provided in the storage cavity, the partition dividing the storage cavity into an electrical cavity for storing electrical equipment and a battery cavity for storing batteries; a through-wall hole for connecting the electrical cavity and the battery cavity is provided at the partition; a first installation mechanism and a second installation mechanism for installing a fire extinguishing device are respectively provided in the electrical cavity and the battery cavity.
[0006] Through the provision of the through-wall hole in the present invention, the fire-fighting pipe can be installed in the chamber through the through-wall hole, and the fire-fighting suppressant can be released through the first fire-extinguishing device.
[0007] The interior of the cabin of the utility model is divided into an electrical chamber and a battery chamber by a partition, which are used to store electrical equipment and batteries respectively, thereby realizing the partitioned storage of electrical equipment and batteries and improving safety.
[0008] By setting the fire extinguishing device in the utility model, a corresponding fire extinguishing device can be selected according to different standard regulations for the use of fire suppression agents in different regions.
[0009] In the present invention, the first mounting mechanism includes a first mounting hole, and a supporting base plate for supporting the fire extinguishing device is provided at the first mounting hole.
[0010] The first mounting mechanism of the present invention provides a stable support and mounting position for the fire extinguishing device by setting the first mounting hole and the supporting base plate.
[0011] In the utility model, the first mounting hole is connected to the bottom plate bolt.
[0012] The arrangement of the bolt connection between the bottom plate and the first mounting hole in the utility model enhances the connection strength between the fire extinguishing device and the mounting mechanism, prevents the fire extinguishing device from loosening or falling off during use, and ensures the stability of the fire extinguishing device on the mounting mechanism.
[0013] In the present utility model, the fire extinguishing device installed in the electrical cavity includes a first fire tank and a clamp for use with the first fire tank; the first installation mechanism also includes clamp slots arranged at intervals along the width direction of the cabin on the side wall of the electrical cavity, and the clamp slots are used to fix the first fire tank in conjunction with the clamp.
[0014] The design of the clamp and clamp slot in this utility model ensures the first fire canister is securely mounted within the electrical chamber, preventing it from shaking or falling out. This also facilitates removal and replacement of the first fire canister. The first fire canister contains perfluorohexanone and heptafluoropropane, complying with both European and national fire protection regulations.
[0015] In the utility model, the clamping groove is connected to the clamping hoop in a sliding manner.
[0016] The clamping groove of the clamping hoop is slidably connected with the clamping hoop in the utility model, so that the clamping hoop can be fine-tuned according to the size and shape of the first fire can to tighten the first fire can.
[0017] In the present invention, the second mounting mechanism comprises a square tube mounted on the top of the battery, and a second mounting hole for fixing the fire extinguishing device is provided on the square tube.
[0018] The second mounting mechanism of the present invention provides a stable support and mounting position for the fire extinguishing device in the battery cavity through the square tube and the second mounting hole provided on the square tube. The provision of the square tube increases the stability and load-bearing capacity of the mounting mechanism.
[0019] In the utility model, the fire extinguishing device installed in the battery cavity comprises a second fire fighting tank and a bracket for fixing and installing the second fire fighting tank; the bracket is installed on the square tube.
[0020] The bracket in this utility model is mounted on the square tube to secure the second fire canister. This arrangement of the bracket and square tube ensures a secure installation of the second canister within the battery cavity. Because the square tube is positioned at the top of the battery cavity, it maintains a distance from the battery product. In the event of a fire, aerosol spray from the second canister can be used to extinguish the flames, complying with American fire regulations.
[0021] In the utility model, the second mounting hole is connected with the bracket bolt.
[0022] The second mounting hole of the utility model is connected to the bracket by bolts, thereby ensuring the stability of the second fire fighting tank in the battery cavity.
[0023] In the utility model, a mounting port communicating with the battery cavity is provided at one end of the cabin body away from the electrical cavity.
[0024] The utility model provides a mounting port connected to the battery chamber at one end of the cabin away from the electrical chamber, which can be used to install an explosion relief device, thereby enhancing the safety of the cabin. When not in use, it is sealed with sealant and a sealing plate to maintain the sealing of the battery compartment. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] Figure 1 This is a schematic diagram of the prefabricated energy storage cabin.
[0026] Figure 2 This is the oblique right view of the energy storage prefabricated cabin.
[0027] Figure 3 This is the left view of the prefabricated energy storage cabin.
[0028] Figure 4 This is a structural diagram of the location of the first fire tank in the electrical cavity.
[0029] Figure 5 This is a structural diagram of the location of the second fire tank on the top of the battery chamber. DETAILED DESCRIPTION
[0030] In order to further understand the content of the present invention, the present invention is described in detail with reference to the embodiments. It should be understood that the embodiments are merely for explanation of the present invention and are not intended to limit the present invention.
[0031] Example 1
[0032] like Figure 1- As shown in Figure 5, this embodiment provides a prefabricated energy storage cabin compatible with fire suppressants of different standards, which includes: a cabin body 100, a storage chamber 200 is provided in the cabin body 100, a partition 210 is provided in the storage chamber 200, the partition 210 divides the storage chamber 200 into an electrical chamber 300 for storing electrical equipment, and a battery chamber 400 for storing batteries; a through-wall hole 211 for connecting the electrical chamber 300 and the battery chamber 400 is provided at the partition 210; a first installation mechanism 310 and a second installation mechanism 410, both for installing a fire extinguishing device, are respectively provided in the electrical chamber 300 and the battery chamber 400.
[0033] By providing the through-wall hole 211 in this embodiment, a fire-fighting pipe can be installed in the chamber through the through-wall hole 211 , and the fire-fighting suppressant can be released through the first fire-extinguishing device.
[0034] In this embodiment, the interior of the cabin 100 is divided into an electrical chamber 300 and a battery chamber 400 by a partition 210 for storing electrical equipment and batteries respectively, thereby achieving partitioned storage of electrical equipment and batteries and improving safety.
[0035] By configuring the fire extinguishing device in this embodiment, a corresponding fire extinguishing device can be selected according to different standards and regulations for the use of fire suppressants in different regions.
[0036] In this embodiment, the first mounting mechanism 310 includes a first mounting hole 312 , and a supporting base plate 313 for supporting the fire extinguishing device is provided at the first mounting hole 312 .
[0037] In this embodiment, the first mounting mechanism 310 provides a stable support and mounting position for the fire extinguishing device by setting the first mounting hole 312 and the supporting base plate 313.
[0038] In this embodiment, the first mounting hole 312 is connected to the bottom plate 313 by bolts.
[0039] The bolt connection between the base plate 313 and the first mounting hole 312 in this embodiment enhances the connection strength between the fire extinguishing device and the mounting mechanism, preventing it from loosening or falling off during use, thereby ensuring the stability of the fire extinguishing device on the mounting mechanism.
[0040] In this embodiment, the fire extinguishing device installed in the electrical cavity 300 includes a first fire extinguishing tank 110 and a clamp 120 for use with the first fire extinguishing tank 110; the first mounting mechanism 310 also includes clamp slots 311 arranged at intervals along the width direction of the cabin body 100 on the side wall of the electrical cavity 300, and the clamp slots 311 are used to fix the first fire extinguishing tank 110 in conjunction with the clamp 120.
[0041] The design of the clamp 120 and clamp slot 311 in this embodiment ensures that the first fire tank 110 is securely mounted within the electrical chamber 300, preventing it from shaking or falling out. This also facilitates removal and replacement of the first fire tank 110. The first fire tank 110 contains perfluorohexanone and heptafluoropropane, which comply with both European and Chinese fire safety regulations.
[0042] In this embodiment, the clamp slot 311 is slidably connected to the clamp 120 .
[0043] In this embodiment, the clamp slot 311 is slidably connected to the clamp 120 , so that the clamp 311 can be fine-tuned according to the size and shape of the first fire tank 110 to tighten the first fire tank 110 .
[0044] In this embodiment, the second mounting mechanism 410 includes a square tube 411 mounted on the top of the battery 400 , and a second mounting hole 412 for fixing the fire extinguishing device is provided on the square tube 411 .
[0045] In this embodiment, the second mounting mechanism 410 provides a stable support and mounting position for the fire extinguishing device in the battery chamber 400 through the square tube 411 and the second mounting hole 412 provided on the square tube. The provision of the square tube 411 increases the stability and load-bearing capacity of the mounting mechanism.
[0046] In this embodiment, the fire extinguishing device installed in the battery cavity 400 includes a second fire extinguishing tank 130 and a bracket 140 for fixing the second fire extinguishing tank 130 ; the bracket 140 is installed on the square tube 411 .
[0047] In this embodiment, bracket 140 is mounted on square tube 411 to secure second fire tank 130. The arrangement of bracket 140 and square tube 411 ensures a secure installation of second fire tank 130 within battery cavity 400. Since square tube 411 is positioned at the top of battery cavity 400, it maintains a certain distance from the battery product. In the event of a fire, aerosol spray from second fire tank 130 can be used to extinguish the flames, complying with American fire regulations.
[0048] In this embodiment, the second mounting hole 412 is connected to the bracket 140 by bolts.
[0049] In this embodiment, the second mounting hole 412 is connected to the bracket 140 by bolts, thereby ensuring the stability of the second fire tank 130 in the battery cavity.
[0050] In this embodiment, an installation opening 150 communicating with the battery cavity 400 is provided at one end of the housing 100 away from the electrical cavity 300 .
[0051] In this embodiment, the end of the cabin 100 away from the electrical chamber 300 is provided with an installation port 150 that communicates with the battery chamber 400, which can be used to install an explosion relief device, thereby enhancing the safety of the cabin. When not in use, it is sealed with sealant and a sealing plate to maintain the sealing of the battery compartment.
[0052] In short, the above description is only a preferred embodiment of the present invention. All equivalent changes and modifications made according to the scope of the patent application of the present invention should fall within the scope of the present invention patent.
Claims
1. A prefabricated energy storage cabin compatible with fire suppression agents of different standards, characterized by: The invention comprises a cabin (100), wherein a storage chamber (200) is provided in the cabin (100), a partition (210) is provided in the storage chamber (200), and the partition (210) divides the storage chamber (200) into an electrical chamber (300) for storing electrical equipment and a battery chamber (400) for storing batteries; a through-wall hole (211) for connecting the electrical chamber (300) and the battery chamber (400) is provided at the partition (210); and a first mounting mechanism (310) and a second mounting mechanism (410) for mounting a fire extinguishing device are respectively provided in the electrical chamber (300) and the battery chamber (400).
2. The prefabricated energy storage cabin compatible with fire suppression agents of different standards according to claim 1, characterized in that: The first mounting mechanism (310) comprises a first mounting hole (312), and a supporting base plate (313) for supporting the fire extinguishing device is provided at the first mounting hole (312).
3. The prefabricated energy storage cabin compatible with fire suppression agents of different standards according to claim 2, characterized in that: The first mounting hole (312) is bolted to the supporting base plate (313).
4. The prefabricated energy storage cabin compatible with fire suppression agents of different standards according to claim 2, characterized in that: The fire extinguishing device installed in the electrical cavity (300) comprises a first fire extinguishing tank (110) and a clamp (120) for use in conjunction with the first fire extinguishing tank (110); the first mounting mechanism (310) further comprises clamping clamp slots (311) arranged at intervals along the width direction of the cabin body (100) on the side wall of the electrical cavity (300); the clamping clamp slots (311) are used to cooperate with the clamp (120) to fix the first fire extinguishing tank (110).
5. The prefabricated energy storage cabin compatible with fire suppression agents of different standards according to claim 4, characterized in that: The clamping hoop slot (311) is slidably connected to the clamping hoop (120).
6. The prefabricated energy storage cabin compatible with fire suppression agents of different standards according to claim 1, characterized in that: The second mounting mechanism (410) comprises a square tube (411) mounted on the top of the battery chamber (400), and a second mounting hole (412) for fixing the fire extinguishing device is provided on the square tube (411).
7. The prefabricated energy storage cabin compatible with fire suppression agents of different standards according to claim 1, characterized in that: The fire extinguishing device installed in the battery cavity (400) includes a second fire extinguishing tank (130) and a bracket (140) for fixing and installing the second fire extinguishing tank (130); the bracket (140) is installed on the square tube (411).
8. The prefabricated energy storage cabin compatible with fire suppression agents of different standards according to claim 7, characterized in that: The second mounting hole (412) is bolted to the bracket (140).
9. The prefabricated energy storage cabin compatible with fire suppression agents of different standards according to claim 1, characterized in that: An installation opening (150) communicating with the battery cavity (400) is provided at one end of the cabin body (100) away from the electrical cavity (300).