New energy storage waterproof integrated cabinet
By optimizing the structural design of the new energy storage waterproof integrated cabinet, the problems of insufficient waterproof performance and heat dissipation efficiency have been solved, achieving efficient and reliable operation in complex environments and meeting the needs of new energy storage equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SUZHOU RONGYE MACHINERY
- Filing Date
- 2025-07-15
- Publication Date
- 2026-08-04
AI Technical Summary
Existing new energy storage cabinets are inadequate in terms of waterproof performance, heat dissipation efficiency, and integrated structural design, and cannot meet the requirements for efficient and reliable operation in complex environments.
A new energy storage waterproof integrated cabinet was designed. Through the optimization of components such as the water-blocking eaves and guide strips on the top cover, the automatic adjustment of the wind baffle, the guide plate on the base, the movable design of the adjustment plate, the temperature control module of the exhaust fan, and the water collection tank, waterproofing, heat dissipation and modular integration are achieved.
The cabinet's waterproof performance has been improved, heat dissipation efficiency has been optimized, stable equipment operation has been ensured, equipment lifespan has been extended, and intelligent temperature management has been achieved.
Smart Images

Figure CN224596705U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of new energy storage equipment technology, specifically to a new energy storage waterproof integrated cabinet. Background Technology
[0002] With the rapid development of new energy storage technologies, server racks, as a crucial component of energy storage systems, directly impact the reliability and security of the entire system. Especially in outdoor applications, waterproofing, heat dissipation, and structural design have become key technical challenges in rack design. However, existing server racks have limitations in waterproofing performance, heat dissipation efficiency, and integrated design, which may not fully meet the usage requirements of new energy storage equipment in complex environments.
[0003] A search revealed a cabinet with publication number CN113840510B that proposes a dual-cooling system solution. This system achieves energy saving and efficient heat dissipation through the coordinated operation of an external cold source and an internal cooling system. However, this technical solution primarily focuses on improving heat dissipation performance and does not address the specific implementation of waterproofing. Furthermore, the dual-cooling system has a relatively complex structure, which may pose challenges in terms of manufacturing cost and maintenance difficulty, especially in harsh outdoor environments where its reliability may be affected.
[0004] Another cabinet design, with publication number CN109475074B, uses multiple cooling channels isolated from the equipment housing to prevent direct contact between cooling air and electronic components, thus reducing the risk of dust accumulation and corrosion. While this technical solution improves heat dissipation and extends equipment lifespan to some extent, it does not address the overall waterproofing performance of the cabinet. It may be insufficiently protected against rain or humid environments. Furthermore, the design of the cooling channels requires precise airflow organization, which could lead to a decrease in heat dissipation efficiency under certain operating conditions.
[0005] The above indicates that existing technologies have room for improvement in terms of waterproof performance, heat dissipation efficiency, and integrated structural design. Especially in the application scenarios of new energy storage equipment, how to balance the requirements of waterproofing, heat dissipation, and structural compactness has become an urgent problem to be solved. Therefore, this utility model aims to provide a waterproof integrated cabinet for new energy storage, which, through optimized design of waterproof structure, heat dissipation efficiency, and modular integration, meets the requirements of efficient and reliable operation of new energy storage equipment in complex environments. Utility Model Content
[0006] This utility model provides a new energy storage waterproof integrated cabinet, aiming to solve the shortcomings of existing cabinets in terms of waterproof performance, heat dissipation efficiency, and integrated structural design. The specific solution is as follows:
[0007] A new energy storage waterproof integrated cabinet includes a cabinet body, a top cover, and a base. The top cover is fixed to the top of the cabinet body with bolts, and the top cover has downward-extending water-retaining eaves around its perimeter. The bottom of the cabinet body is connected to the base with snap-fit fasteners, and the base has a guide plate inside for guiding airflow. Ventilation holes are provided on both side walls of the cabinet body, and rotatable wind baffles are installed inside the ventilation holes. The cabinet body has a partition inside, which divides the cabinet body into an equipment cavity and a heat dissipation cavity. The equipment cavity is located on the front side of the cabinet body, and the heat dissipation cavity is located on the rear side of the cabinet body. A ventilation groove is provided in the middle of the partition connecting the equipment cavity and the heat dissipation cavity, and an adjustable plate that can move up and down is installed above the ventilation groove.
[0008] As a preferred embodiment of the new energy storage waterproof integrated cabinet of this utility model, the top of the top cover is provided with multiple raised guide strips, which are arranged along the length of the top cover and have an arc-shaped cross-section; the bottom of the top cover is provided with an annular sealing ring, which is embedded in the groove on the top of the cabinet and fits tightly against the groove.
[0009] As a preferred embodiment of the new energy storage waterproof integrated cabinet of this utility model, the outer end of the wind baffle is connected to the inner wall of the cabinet through a rotating shaft, and a counterweight is installed on the inner end of the wind baffle; the rotation angle of the wind baffle is determined by the position of the counterweight; when airflow enters from the ventilation hole, the wind baffle automatically opens to allow airflow to pass through; when there is no airflow, the wind baffle returns to the closed state due to the action of the counterweight.
[0010] As a preferred embodiment of the new energy storage waterproof integrated cabinet of this utility model, the base has multiple support feet at its bottom, the top of the support feet is connected to the base by threads, and the bottom of the support feet is equipped with anti-slip pads; the base has a flow guide plate inside, the two ends of the flow guide plate are fixedly connected to the front and rear inner walls of the base respectively, and the middle of the flow guide plate is arched upward to form a flow channel.
[0011] As a preferred embodiment of the new energy storage waterproof integrated cabinet of this utility model, wherein: the adjustment plate is provided with sliders on both sides, the sliders are embedded in the sliding grooves on both sides of the partition and are slidably connected to the sliding grooves; the top of the adjustment plate is connected to the inner top wall of the cabinet through a pull rod, and a return spring is sleeved in the middle of the pull rod, one end of the return spring is fixedly connected to the inner top wall of the cabinet, and the other end is fixedly connected to the top of the adjustment plate.
[0012] As a preferred embodiment of the new energy storage waterproof integrated cabinet of this utility model, an exhaust fan is installed on the rear side wall of the cabinet, the air inlet of the exhaust fan is connected to the heat dissipation cavity, and the air outlet of the exhaust fan faces the outside of the cabinet; a protective cover is provided on the outside of the exhaust fan, and the protective cover is connected to the rear side wall of the cabinet by screws.
[0013] As a preferred embodiment of the new energy storage waterproof integrated cabinet of this utility model, the inner wall of the equipment cavity is equipped with multiple sets of fixing clips, which are used to fix the energy storage equipment; the clamping end of the fixing clip is provided with a soft pad, which is fixed to the inner side of the fixing clip by adhesive bonding.
[0014] As a preferred embodiment of the new energy storage waterproof integrated cabinet of this utility model, the bottom of the heat dissipation cavity is provided with a water collection tank, and the two ends of the water collection tank are respectively fixedly connected to the inner walls of the two sides of the heat dissipation cavity; the bottom of the water collection tank is provided with a drain hole, and the drain hole is connected to the outside of the cabinet through a pipe.
[0015] As a preferred embodiment of the new energy storage waterproof integrated cabinet of this utility model, the cabinet body has an openable cabinet door installed on the front side wall, the inner side of the cabinet door is provided with a sealing strip, the sealing strip is embedded in the sealing groove of the front side wall of the cabinet body and fits tightly with the sealing groove; the outer side of the cabinet door is provided with a handle, and the handle is fixedly connected to the cabinet door by bolts.
[0016] As a preferred embodiment of the new energy storage waterproof integrated cabinet of this utility model, the cabinet is equipped with a temperature control module inside, which is installed on the top of the partition; the sensing end of the temperature control module extends into the equipment cavity, and the control end of the temperature control module is electrically connected to the exhaust fan.
[0017] Through the above structural design, this utility model achieves the following beneficial effects:
[0018] The top cover's water-retaining eaves and deflectors effectively guide rainwater away from the cabinet, preventing rainwater from accumulating or seeping into the cabinet's interior, thereby improving the cabinet's waterproof performance.
[0019] The design of the wind deflector allows it to open automatically when airflow passes through and close automatically when there is no airflow, which ensures heat dissipation efficiency and prevents external dust or foreign objects from entering the cabinet.
[0020] The airflow path can be optimized by the base's air guide plate, making the airflow more evenly distributed inside the cabinet and further improving the heat dissipation effect.
[0021] By adjusting the up and down movement of the adjustment plate, the opening of the ventilation slot can be adjusted according to actual needs, thereby flexibly controlling the airflow exchange between the equipment cavity and the heat dissipation cavity, and achieving more efficient heat dissipation management.
[0022] The combination of exhaust fans and protective covers not only enhances heat dissipation but also effectively prevents external objects from interfering with the exhaust fans, thus improving the reliability of the cabinet.
[0023] The design of the fixing clips and soft pads can securely fix the energy storage device, while avoiding damage to the device surface due to clamping and extending the service life of the device.
[0024] The water collection tank and drainage holes can promptly drain the condensate in the heat dissipation cavity, preventing water accumulation from damaging the inside of the cabinet.
[0025] The introduction of a temperature control module enables the cabinet to automatically adjust the working status of the exhaust fan according to changes in internal temperature, thereby achieving intelligent temperature management.
[0026] In summary, this utility model optimizes the waterproof structure of the cabinet, improves heat dissipation efficiency, and achieves modular integration, thus meeting the requirements for efficient and reliable operation of new energy storage equipment in complex environments. Attached Figure Description
[0027] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in this utility model. For those skilled in the art, other drawings can be obtained based on these drawings.
[0028] Figure 1 This is a schematic diagram of the overall structure of this utility model.
[0029] The diagram shows the external structure of the cabinet.
[0030] Figure 2 This is a cross-sectional view of the internal structure of this utility model.
[0031] The diagram clearly shows the internal structure of the cabinet.
[0032] Figure 3 This is a detailed view of the top cover structure of this utility model.
[0033] The diagram shows a detailed structural schematic of the top cover.
[0034] Figure 4 This is a schematic diagram illustrating the working principle of the wind deflector and ventilation holes of this utility model.
[0035] The diagram shows a schematic of the structure on the side wall of the cabinet.
[0036] Figure 5 This is a detailed drawing of the temperature control module and fixing clip of this utility model.
[0037] The figure shows a schematic diagram of the temperature control module on the partition.
[0038] The attached figures are labeled as follows:
[0039] 1. Cabinet body; 2. Top cover; 3. Water barrier; 4. Flow guide strip; 5. Annular sealing ring; 6. Base; 7. Flow guide plate; 8. Support feet; 9. Anti-slip pad; 10. Ventilation hole; 11. Wind baffle; 12. Rotating shaft; 13. Counterweight; 14. Partition; 15. Ventilation slot; 16. Adjustment plate; 17. Exhaust fan; 18. Protective cover; 19. Temperature control module; 20. Fixing clip. Detailed Implementation
[0040] To enable those skilled in the art to better understand the technical solution of this utility model, the present utility model will be further described in detail below with reference to the accompanying drawings.
[0041] This utility model provides a new energy storage waterproof integrated cabinet, the structure of which is as follows: Figures 1 to 5 As shown, the invention includes a cabinet body 1, a top cover 2, a base 6, and various internal components. The specific embodiments of this invention will be described in detail below with reference to the accompanying drawings.
[0042] The cabinet body 1 has a rectangular structure, and its top is fixedly connected to the top cover 2 by bolts. The top cover 2 has downward-extending water-retaining eaves 3 around its perimeter, effectively blocking rainwater and guiding it away from the outer wall of the cabinet body 1. The top of the top cover 2 has multiple raised guide strips 4, evenly distributed along its length. These guide strips have an arc-shaped cross-section, allowing rainwater to slide off naturally under gravity, preventing accumulation. The bottom of the top cover 2 has an embedded annular sealing ring 5, made of rubber, which fits tightly into a groove on the top of the cabinet body 1, ensuring a tight seal between the top cover 2 and the cabinet body 1. The top cover 2 is fixedly connected to the cabinet body 1 by four bolts, located at the four corners of the top cover 2 to ensure a secure connection.
[0043] The bottom of the cabinet 1 is connected to the base 6 via clips. The base 6 has an internal airflow guide plate 7, with its two ends welded to the front and rear inner walls of the base 6. The middle of the guide plate 7 arches upwards to form an airflow channel, optimizing the airflow path and distributing the airflow into the cabinet 1 evenly. The base 6 has four support feet 8 at its bottom. The tops of the support feet 8 are threaded to the base 6, and the bottoms of the support feet 8 are fitted with anti-slip pads 9 made of silicone material, which increase the stability of the cabinet and prevent slippage. The height of the support feet 8 can be adjusted by rotation to adapt to different ground conditions.
[0044] Ventilation holes 10 are provided on both side walls of the cabinet 1. The ventilation holes 10 are circular, and a rotatable baffle 11 is installed on the inner side of the ventilation hole 10. The outer end of the baffle 11 is connected to the inner wall of the cabinet 1 via a pivot 12. A counterweight 13 is installed on the inner end of the baffle 11. The position of the counterweight 13 determines the rotation angle of the baffle 11. When external airflow enters through the ventilation hole 10, the airflow pushes the baffle 11 to rotate around the pivot 12, and the baffle 11 opens to allow airflow. When there is no airflow, the baffle 11 returns to the closed state due to the action of the counterweight 13, thereby preventing external dust or foreign objects from entering the interior of the cabinet 1.
[0045] The cabinet 1 has an internal partition 14 that divides it into an equipment cavity and a heat dissipation cavity. The equipment cavity is located at the front of the cabinet 1, and the heat dissipation cavity is located at the rear. A ventilation slot 15 is located in the middle of the partition 14. An adjustable plate 16, which can move up and down, is installed above the ventilation slot 15. Slider blocks are located on both sides of the adjustable plate 16, and these sliders are embedded in and slidably connected to the sliding grooves on both sides of the partition 14. The top of the adjustable plate 16 is connected to the inner top wall of the cabinet 1 via a pull rod. A return spring is sleeved in the middle of the pull rod, with one end fixedly connected to the inner top wall of the cabinet 1 and the other end fixedly connected to the top of the adjustable plate 16. When the opening of the ventilation slot 15 needs to be adjusted, the pull rod is manually pulled to move the adjustable plate 16 upwards. The return spring automatically returns the plate to its original position after the adjustment plate 16 is released.
[0046] An exhaust fan 17 is installed on the rear wall of cabinet 1. The air inlet of the exhaust fan 17 is connected to the heat dissipation cavity, and the air outlet of the exhaust fan 17 faces the outside of cabinet 1. A protective cover 18 is provided on the outside of the exhaust fan 17. The protective cover 18 is connected to the rear wall of cabinet 1 by four screws. The protective cover 18 can effectively prevent foreign objects from entering the heat dissipation cavity. The exhaust fan 17 can quickly dissipate heat when operating under high load.
[0047] The inner wall of the equipment cavity is equipped with multiple sets of fixing clips 20, totaling six sets. Each set of fixing clips 20 consists of two clamping arms, with a soft pad made of silicone material at the clamping end of each arm. The soft pad is fixed to the inner side of the fixing clip 20 by adhesive bonding. The fixing clips 20 are connected to the inner wall of the equipment cavity by bolts. The energy storage device is fixed inside the equipment cavity by the fixing clips 20, and the soft pad prevents damage to the device surface due to clamping.
[0048] The bottom of the heat dissipation cavity is equipped with a water collection tank. The two ends of the water collection tank are welded and fixed to the inner walls of the two sides of the heat dissipation cavity. The bottom of the water collection tank is equipped with a drain hole, which is connected to the outside of the cabinet 1 through a pipe. This allows the condensate in the heat dissipation cavity to be discharged in time, preventing water accumulation from damaging the inside of the cabinet.
[0049] A hinged cabinet door is installed on the front wall of cabinet 1. A sealing strip is provided on the inside of the door, embedded in and tightly fitted into a sealing groove on the front wall of cabinet 1. The sealing strip is made of EPDM rubber, effectively preventing external moisture from entering the interior of cabinet 1. A handle is provided on the outside of the door, secured to the door with two bolts. The handle is made of stainless steel, offering excellent corrosion resistance.
[0050] The cabinet 1 houses a temperature control module 19, which is mounted on the top of the partition 14. The sensing end of the temperature control module 19 extends into the equipment cavity, and the control end of the temperature control module 19 is electrically connected to the exhaust fan 17. The sensing end of the temperature control module 19 can monitor the temperature changes inside the equipment cavity in real time and control the working state of the exhaust fan 17 according to a preset temperature threshold. When the temperature inside the equipment cavity exceeds the set value, the temperature control module 19 starts the exhaust fan 17 to dissipate heat. When the temperature drops below the set value, the temperature control module 19 turns off the exhaust fan 17 to save energy.
[0051] The operation of this utility model is as follows: When the external ambient temperature is high, the energy storage device generates heat during operation within the device cavity. The sensing end of the temperature control module 19 detects the temperature rise within the device cavity and activates the exhaust fan 17. External airflow enters through the ventilation holes 10 on both sides of the cabinet 1. The baffle plate 11 rotates around the pivot 12 under the push of the airflow, opening the airflow through the device cavity into the heat dissipation cavity and being discharged outside the cabinet 1 through the exhaust fan 17. During this process, the adjusting plate 16 can adjust the opening of the ventilation slot 15 according to actual needs to control the amount of airflow exchange between the device cavity and the heat dissipation cavity. The guide plate 7 in the base 6 guides the airflow entering the cabinet 1, ensuring it is evenly distributed inside the cabinet 1 and improving heat dissipation efficiency. Condensate in the heat dissipation cavity is collected through the water collection tank and discharged outside the cabinet 1 through the drain hole. When the external ambient temperature is low, the temperature control module 19 shuts off the exhaust fan 17, and the baffle plate 11 returns to the closed state due to the action of the counterweight 13, preventing external dust or foreign objects from entering the cabinet 1.
[0052] To enable those skilled in the art to fully understand and implement this utility model, the following supplementary explanation of the specific implementation principle of this utility model is provided in conjunction with a specific application scenario.
[0053] In an outdoor renewable energy storage system, the cabinet is deployed in a rainy environment with significant temperature differences. The energy storage equipment generates heat during operation, and the external humidity and rainwater may pose a potential threat to the interior of the cabinet. In this scenario, the cabinet achieves waterproofing, heat dissipation, and equipment protection functions through its unique structural design.
[0054] First, the guide strips 4 on the top cover 2 play a crucial role when rainwater falls from above. The arc-shaped cross-section of the guide strips 4 allows rainwater to slide off its surface under gravity and be guided away from the outer wall of the cabinet 1 by the water-retaining eaves 3, preventing rainwater accumulation or seepage. The annular sealing ring 5 at the bottom of the top cover 2 is embedded in the groove at the top of the cabinet 1, forming a tight seal to further prevent rainwater from seeping in at the connection between the top cover and the cabinet. This design ensures the waterproof performance of the cabinet during heavy rain.
[0055] Secondly, in high-temperature environments, the heat generated by the energy storage device needs to be dissipated promptly. At this time, the sensing end of the temperature control module 19 detects an increase in temperature inside the device cavity and activates the exhaust fan 17. External airflow enters the cabinet 1 through the ventilation hole 10, and the baffle plate 11 rotates around the pivot 12 due to the airflow, allowing airflow into the device cavity. The incoming airflow passes through the ventilation slot 15 into the heat dissipation cavity and is finally discharged outside the cabinet 1 through the exhaust fan 17. During this process, the adjusting plate 16 can adjust the opening of the ventilation slot 15 according to actual needs to control the airflow exchange. For example, when the temperature inside the device cavity is high, manually pulling the lever moves the adjusting plate 16 upward, increasing the opening of the ventilation slot 15, thereby improving heat dissipation efficiency; when the temperature decreases, the reset spring automatically resets the adjusting plate 16, reducing the airflow exchange to maintain internal temperature stability.
[0056] Furthermore, the air deflector 7 inside the base 6 optimizes the airflow distribution entering the cabinet 1. The upward arching design in the middle of the air deflector 7 forms an airflow channel, allowing the airflow to be evenly distributed inside the cabinet 1, preventing localized overheating. The height of the support feet 8 can be adjusted by rotation to adapt to uneven ground conditions, while the anti-slip pads 9 increase the stability of the cabinet, preventing it from tipping over due to external factors.
[0057] In low-temperature environments, when the temperature control module 19 detects that the temperature inside the equipment cavity is lower than the set value, it shuts off the exhaust fan 17. At this time, the baffle 11 returns to the closed state due to the action of the counterweight 13, preventing cold air or dust from entering the cabinet 1. At the same time, the sealing strip on the inside of the cabinet door fits tightly with the sealing groove on the front side wall of the cabinet, further preventing the intrusion of external moisture and ensuring the dryness of the environment inside the cabinet.
[0058] The water collection trough at the bottom of the heat dissipation cavity is designed to collect condensate. When condensate is generated inside the heat dissipation cavity, the water collection trough collects it and discharges it to the outside of the cabinet 1 through the drain hole, preventing water accumulation from damaging the inside of the cabinet. The protective cover 18 is installed on the outside of the exhaust fan 17, which allows airflow while effectively blocking foreign objects from entering the heat dissipation cavity, ensuring the normal operation of the exhaust fan 17.
[0059] The fixing clamp 20 secures the energy storage device with a soft pad at its clamping end, preventing damage to the device surface due to clamping. The silicone material of the soft pad has excellent cushioning properties, protecting the device surface during clamping and extending the device's service life.
[0060] In summary, through the above-mentioned structural design and operating principle, this utility model achieves efficient waterproofing, intelligent heat dissipation, and equipment protection functions for the cabinet in complex environments, meeting the reliable operation requirements of new energy storage equipment under harsh outdoor conditions.
[0061] The foregoing description only illustrates certain exemplary embodiments of the present invention. Undoubtedly, those skilled in the art can modify the described embodiments in various ways without departing from the spirit and scope of the present invention. Therefore, the above drawings and descriptions are illustrative in nature and should not be construed as limiting the scope of protection of the claims of the present invention.
Claims
1. A new energy storage waterproof integrated cabinet, comprising a cabinet body (1), a top cover (2) and a base (6), characterized in that: The top of the cabinet (1) is fixedly connected to the top cover (2) by bolts. The top cover (2) has downward-extending water-retaining eaves (3) around its perimeter. The top of the top cover (2) has multiple protruding guide strips (4). The bottom of the top cover (2) has an annular sealing ring (5), which is embedded in the groove on the top of the cabinet (1). The bottom of the cabinet (1) is connected to the base (6) by buckles. The base (6) has a guide plate (7) inside. The bottom of the base (6) has a support foot (8), and the bottom of the support foot (8) is equipped with an anti-slip pad (9). Ventilation holes (10) are provided on both sides of the body (1). A rotatable baffle plate (11) is installed on the inner side of the ventilation hole (10). The outer end of the baffle plate (11) is connected to the inner wall of the cabinet (1) through a pivot (12). A counterweight (13) is installed on the inner end of the baffle plate (11). The cabinet (1) is provided with a partition (14) inside. The partition (14) divides the cabinet (1) into an equipment cavity and a heat dissipation cavity. A ventilation groove (15) is provided in the middle of the partition (14). An adjustable plate (16) that can move up and down is installed above the ventilation groove (15).
2. The new energy energy storage waterproof integrated cabinet according to claim 1, characterized in that, The guide strips (4) of the top cover (2) are evenly arranged along the length of the top cover (2), the cross section of the guide strips (4) is arc-shaped, and the annular sealing ring (5) is made of rubber material.
3. The new energy storage waterproof integrated cabinet according to claim 1, characterized in that, The two ends of the guide plate (7) of the base (6) are welded and fixed to the front and rear inner walls of the base (6) respectively, and the middle part of the guide plate (7) arches upward to form a guide channel.
4. The new energy storage waterproof integrated cabinet according to claim 1, characterized in that, The rotation angle of the wind deflector (11) is determined by the position of the counterweight (13).
5. The new energy storage waterproof integrated cabinet according to claim 1, characterized in that, The adjusting plate (16) is provided with sliders on both sides. The sliders are embedded in the sliding grooves on both sides of the partition (14) and are slidably connected to the sliding grooves. The top of the adjusting plate (16) is connected to the inner top wall of the cabinet (1) through a pull rod. A return spring is sleeved in the middle of the pull rod. One end of the return spring is fixedly connected to the inner top wall of the cabinet (1), and the other end is fixedly connected to the top of the adjusting plate (16).
6. The new energy storage waterproof integrated cabinet according to claim 1, characterized in that, An exhaust fan (17) is installed on the rear side wall of the cabinet (1). The air inlet of the exhaust fan (17) is connected to the heat dissipation cavity. The air outlet of the exhaust fan (17) faces the outside of the cabinet (1). A protective cover (18) is provided on the outside of the exhaust fan (17). The protective cover (18) is connected to the rear side wall of the cabinet (1) by screws.
7. A new energy storage waterproof integrated cabinet according to claim 1, characterized in that, Multiple sets of fixing clips (20) are installed on the inner wall of the equipment cavity. Each set of fixing clips (20) consists of two clamping arms. The clamping end of the clamping arm is provided with a soft pad, which is made of silicone material.
8. The new energy energy storage waterproof integrated cabinet according to claim 1, characterized in that, The bottom of the heat dissipation cavity is provided with a water collection tank, and the two ends of the water collection tank are welded and fixed to the inner walls of the two sides of the heat dissipation cavity, respectively. The bottom of the water collection tank is provided with a drain hole.
9. The new energy storage waterproof integrated cabinet according to claim 1, characterized in that, The cabinet (1) has an openable cabinet door installed on the front side wall. The inside of the cabinet door is provided with a sealing strip. The sealing strip is embedded in the sealing groove of the front side wall of the cabinet (1) and fits tightly with the sealing groove. The sealing strip is made of EPDM rubber.
10. The new energy energy storage waterproof integrated cabinet according to claim 1, characterized in that, The cabinet (1) is equipped with a temperature control module (19) inside. The temperature control module (19) is installed on the top of the partition (14), and the sensing end of the temperature control module (19) extends into the equipment cavity.