Intelligent heat dissipation control structure of electric energy storage system

Through an intelligent heat dissipation control structure, the temperature is monitored in real time and the airflow is adjusted, which solves the problem of cooling fan shaking and damage, and achieves stable and efficient heat dissipation and convenient maintenance.

CN223451474UActive Publication Date: 2025-10-17PRIME POWER TECH (WUXI) CO LTD
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Patent Information

Application Number
CN202422710044.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-07
Publication Date
2025-10-17
Estimated Expiration
2034-11-07

AI Technical Summary

Technical Problem

The cooling fans of existing power storage systems are easily shaken by excessive wind, causing damage, long maintenance time, and poor heat dissipation.

Method used

It adopts an intelligent heat dissipation control structure, including components such as temperature sensors, PLC controllers, cooling fans and locking bolts. The temperature sensor monitors the temperature in real time, the PLC controller adjusts the fan speed, and the locking bolts fix the position of the cooling fan, realizing adjustable fan speed and convenient disassembly.

Benefits of technology

It effectively fixes the position of the cooling fan, prevents damage from shaking, improves heat dissipation efficiency, facilitates replacement and maintenance, and ensures stable system operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of electric energy storage systems, and discloses an intelligent heat dissipation control structure of an electric energy storage system, which comprises an energy storage electric cabinet and a support base, an energy storage electric cabinet door is mounted at the front end of the energy storage electric cabinet, a heat dissipation regulation and control device is mounted at the upper end of the energy storage electric cabinet, and the support base is mounted on the surface of the bottom end of the energy storage electric cabinet. The heat dissipation regulation and control device comprises a control panel, a PLC, a connecting assembly, a heat dissipation fan and a locking bolt, the control panel is installed on the surface of the bottom end of the PLC, the PLC is installed at the outward end of the heat dissipation fan, the heat dissipation fan is in threaded connection with the surface of the inner wall of the connecting assembly, and the locking bolt is in threaded connection with the outward end of the connecting assembly. According to the intelligent heat dissipation control structure of the electric power energy storage system, the limiting plate, the limiting plug connector and the metal frame are arranged, the limiting plug connector is inserted into the connecting position of the energy storage electric cabinet and the heat dissipation fan, the position of the heat dissipation fan can be limited and fixed multiple times, and the heat dissipation fan is convenient to disassemble.
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Description

TECHNICAL FIELD

[0001] The utility model relates to power energy storage system technical field, concretely is intelligent heat dissipation control structure of power energy storage system. BACKGROUND

[0002] The power energy storage system is the technology and equipment that the electric energy of power system is converted into other forms of energy and is stored, and is converted into electric energy when needing and is inputted into the power system.

[0003] The prior art discloses an integrated communication power supply, the communication power supply body includes a box body, the box body top end is provided with a cooling fan, the box body is the inner hollow structure, the box body inside left and right two side walls are fixedly provided with support blocks, the placing disc is located on the support block upper end and is through sliding in the box body interior, temperature monitoring device, power drive device, AC voltage input module, AC voltage sampling module, DC voltage input module, DC voltage sampling module are located on the placing disc upper end, the box body bottom is provided with intelligent control system and energy storage system, in general: the utility model has the advantages of simple structure, through the integration of each module in the box body can realize AC-DC conversion, and temperature sensor and exhaust fan are arranged in the box body, and the temperature in the box body can be effectively reduced.

[0004] The box body top end is provided with a cooling fan, the cooling fan is installed on the upper end of the case, when the case wind force is greater, the cooling fan is easy to produce the swing, can cause the cooling fan damage, needs to spend a lot of time to maintain the cooling fan. UTILITY MODEL CONTENTS

[0005] The utility model discloses an intelligent heat dissipation control structure of power energy storage system to solve the problems in the background art.

[0006] To achieve the above object, the utility model provides the following technical scheme: the intelligent heat dissipation control structure of power energy storage system, including energy storage electric cabinet and support base, the front end of energy storage electric cabinet is installed with energy storage electric cabinet door, the upper end of energy storage electric cabinet is installed with heat dissipation regulation and control device, the bottom end surface of energy storage electric cabinet is installed with support base, and the inside of energy storage electric cabinet is provided with temperature sensor, can monitor the temperature in the inside of energy storage electric cabinet in real time through temperature sensor.

[0007] The heat dissipation regulation and control device includes a control panel, a PLC controller, a connecting assembly, a cooling fan and a locking bolt, the control panel is installed on the bottom end surface of the PLC controller, the PLC controller is installed on the outward end of the cooling fan, the cooling fan is screwed on the inner wall surface of the connecting assembly, and the locking bolt is screwed on the outward end of the connecting assembly.

[0008] Preferably, the connecting assembly comprises a limiting plate, a plug-in frame, a metal plug, a metal frame, a connecting sliding block, a limiting plug-in piece and a limiting device, the limiting plate is installed on the inner wall surface of the metal frame, the limiting device is installed on the inward end of the limiting plate, the limiting plug-in piece is plugged into the outward end of the plug-in frame, the limiting plug-in piece is plugged into the outward end of the metal plug, and the connecting sliding block is screwed into the outward end of the limiting plug-in piece.

[0009] Preferably, the heat dissipation fan is plugged into the upward end of the energy storage cabinet, the control panel is installed on the upper end of the left surface of the energy storage cabinet, and the PLC controller is installed on the upper end of the left surface of the energy storage cabinet; the PLC controller and the control panel are installed on the upper end of the energy storage cabinet, so that the wind power of the heat dissipation fan can be adjusted.

[0010] Preferably, the locking bolt is plugged into the outward end of the limiting plate, and the locking bolt is installed on the outward end of the metal frame, so that the limiting plate and the metal frame can be fixed by screwing, and the limiting plate and the metal frame can be disassembled and replaced.

[0011] Preferably, the limiting plug-in piece is slidingly connected to the front end of the metal frame, and the connecting sliding block is slidingly connected to the front end of the metal frame; the limiting plug-in piece and the metal frame slide at the front end of the metal frame, so that the limiting plug-in piece and the metal frame can be disassembled and replaced.

[0012] Preferably, the metal plug is movably connected to the top surface of the energy storage cabinet, and the plug-in frame is movably connected to the top surface of the energy storage cabinet; the plug-in frame and the metal plug are connected on the top surface of the energy storage cabinet, so that the metal plug and the plug-in frame can be disassembled and replaced.

[0013] Preferably, the plug-in frame is screwed into the upper end of the heat dissipation fan, the limiting plate is screwed into the upper end of the heat dissipation fan, and the limiting device is screwed into the outward end; the limiting device is plugged into the upward end of the heat dissipation fan, and the limiting device can fix the limiting plate, the energy storage cabinet and the limiting device by screwing, so that the heat dissipation fan can be disassembled and replaced.

[0014] Preferably, the input end of the heat dissipation fan is connected with a data processing module, the output end of the data processing module is connected with an alarm module, the input end of the data processing module is connected with a signal receiving module, the input end of the signal receiving module is connected with a temperature sensor, the temperature sensor can monitor the temperature inside the energy storage cabinet in real time, input the monitored data into the data processing module through the signal receiving module, the data processing module starts to analyze the data of the temperature sensor, when the monitored data is lower than the set threshold value, the heat dissipation fan is started, and the heat dissipation fan starts to dissipate heat inside the energy storage cabinet, and when the monitored data is closer to the threshold value, the wind power of the heat dissipation fan is larger, but when the monitored data is higher than the threshold value set by the data processing module, the alarm module is started to start the alarm operation, so that the staff can quickly rescue the device inside the energy storage cabinet.

[0015] Compared with the prior art, the utility model has the advantages that:

[0016] 1、The intelligent heat dissipation control structure of the electric power energy storage system, through setting the limiting plate, the limiting plug-in part and the metal frame, the limiting plug-in part is inserted into the connecting place of the energy storage cabinet and the heat dissipation fan, and the limiting plate and the limiting plug-in part are inserted and fixed, the position of the heat dissipation fan can be fixed multiple times, and the heat dissipation fan can be conveniently disassembled and replaced, and the service life of the device can be increased.

[0017] 2、The intelligent heat dissipation control structure of the electric power energy storage system, through setting the limiting plug-in part, the metal frame and the locking bolt, the locking bolt is inserted into the limiting plate and the metal frame, the position of the limiting plate can be limited, the limiting plate can be prevented from separating from the energy storage cabinet, the limiting plate is convenient to disassemble, and the heat dissipation fan is convenient to replace. ACCURACY OF DRAWINGS

[0018] Figure 1 It is the overall three-dimensional schematic view of the utility model;

[0019] Figure 2 It is the heat dissipation control device schematic view of the utility model;

[0020] Figure 3 It is the heat dissipation control device bottom surface schematic view of the utility model;

[0021] Figure 4 It is the heat dissipation control device bottom surface schematic view of the utility model; Figure 3

[0022] Figure 5 It is the heat dissipation control device top surface schematic view of the utility model;

[0023] Figure 6 It is the heat dissipation control device top surface schematic view of the utility model; Figure 5 ​A-A is a cross-sectional view of the structure at the middle of the device;

[0024] Figure 7 The utility model discares Figure 6 The utility model discares

[0025] Figure 8 The utility model discares an intelligent heat dissipation control system.

[0026] In the figure: 1, heat dissipation control device;11, control panel;12, PLC controller;13, connecting assembly;131, limit plate;132, plug-in frame;133, metal plug;134, metal frame;135, connecting sliding block;136, limit plug-in piece;137, limiting device;14, heat dissipation fan;15, locking bolt;2, energy storage electric cabinet;3, support base;4, energy storage electric cabinet door. DETAILED DESCRIPTION

[0027] The technical scheme in the embodiments of the utility model will be described clearly and completely below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of the utility model.

[0028] Please refer to Figures 1-8 The utility model provides the following technical scheme:

[0029] The utility model discares an intelligent heat dissipation control structure of power energy storage system, including energy storage electric cabinet 2 and support base 3, and the front end of energy storage electric cabinet 2 is installed with energy storage electric cabinet door 4, and the upper end of energy storage electric cabinet 2 is installed with heat dissipation control device 1, and support base 3 is installed on the bottom end surface of energy storage electric cabinet 2, and the inside of energy storage electric cabinet 2 is provided with temperature sensor, can monitor the temperature in the inside of energy storage electric cabinet 2 through temperature sensor in real time.

[0030] The heat dissipation regulating device 1 comprises a control panel 11, a PLC controller 12, a connecting assembly 13, a heat dissipation fan 14 and a locking bolt 15, the control panel 11 is installed at the bottom end surface of the PLC controller 12, the PLC controller 12 is installed at the outward end of the heat dissipation fan 14, the heat dissipation fan 14 is inserted at the upward end of the energy storage cabinet 2, the control panel 11 is installed at the left side surface upper end of the energy storage cabinet 2, the PLC controller 12 is installed at the left side surface upper end of the energy storage cabinet 2, the PLC controller 12 and the control panel 11 are installed on the upper end of the energy storage cabinet 2, so that the wind power of the heat dissipation fan 14 can be adjusted, the heat dissipation fan 14 is screw connected to the inner wall surface of the connecting assembly 13, the input end of the heat dissipation fan 14 is connected with a data processing module, the output end of the data processing module is connected with an alarm module, the input end of the data processing module is connected with a signal receiving module, the input end of the signal receiving module is connected with a temperature sensor, the temperature sensor can monitor the temperature inside the energy storage cabinet 2 in real time, the monitored data is input into the data processing module through the signal receiving module, the data processing module starts to analyze the data of the temperature sensor, when the monitored data is lower than the set threshold value, the heat dissipation fan 14 is started, the heat dissipation fan 14 starts to dissipate heat inside the energy storage cabinet 2, and the closer the monitored data is to the threshold value, the greater the wind power of the heat dissipation fan 14 is, but when the monitored data is higher than the threshold value set by the data processing module, the alarm module is started to start the alarm operation, so that the staff can quickly rescue the device inside the energy storage cabinet 2, and the locking bolt 15 is screw connected to the outward end of the connecting assembly 13.

[0031] The connecting assembly 13 comprises a limiting plate 131, a plug-in frame 132, a metal plug 133, a metal frame 134, a connecting sliding block 135, a limiting plug 136 and a limiting device 137. The limiting plate 131 is installed on the inner wall surface of the metal frame 134. The locking bolt 15 is plugged into the outward end of the limiting plate 131. The locking bolt 15 is installed on the outward end of the metal frame 134. The locking bolt 15 can threadedly fix between the limiting plate 131 and the metal frame 134, facilitating disassembly and replacement between the limiting plate 131 and the metal frame 134. The limiting device 137 is installed on the inward end of the limiting plate 131. The limiting plug 136 is plugged into the outward end of the plug-in frame 132. The limiting plug 136 is slidingly connected to the front end of the metal frame 134. The connecting sliding block 135 is slidingly connected to the front end of the metal frame 134. The limiting plug 136 and the metal frame 134 slide at the front end of the metal frame 134, so as to adjust the disassembly and replacement between the limiting plug 136 and the metal frame 134. The plug-in frame 132 is threadedly connected to the upper end of the heat dissipation fan 14. The limiting plate 131 is threadedly connected to the upper end of the heat dissipation fan 14. The limiting device 137 is threadedly connected to the outward end. The limiting device 137 is plugged into the upward end of the heat dissipation fan 14. The limiting device 137 can threadedly fix between the limiting plate 131, the energy storage electric cabinet 2 and the limiting device 137, facilitating disassembly and replacement of the heat dissipation fan 14. The limiting plug 136 is plugged into the outward end of the metal plug 133. The metal plug 133 is movably connected to the top end surface of the energy storage electric cabinet 2. The plug-in frame 132 is movably connected to the top end surface of the energy storage electric cabinet 2. The plug-in frame 132 and the metal plug 133 are connected on the top end surface of the energy storage electric cabinet 2, facilitating disassembly and replacement between the metal plug 133 and the plug-in frame 132. The connecting sliding block 135 is threadedly connected to the outward end of the limiting plug 136.

[0032] In use, the heat dissipation fan 14 is pushed to move downward. The heat dissipation fan 14 can be plugged into the upper end of the energy storage electric cabinet 2, so as to preliminarily determine the position of the heat dissipation fan 14.

[0033] The limiting plate 131 and the plug-in frame 132 are pushed to move downward, so that the limiting plate 131 and the plug-in frame 132 are movably connected to the upper end of the heat dissipation fan 14, thereby preliminarily determining the position of the heat dissipation fan 14.

[0034] The metal plug 133 is pushed to move downward, so that the metal plug 133 is plugged into the inner wall surface of the plug-in frame 132, and the bottom end surface of the metal plug 133 is connected to the bottom end surface of the energy storage electric cabinet 2.

[0035] Push the limiting device 137 to move upward, the limiting device 137 is inserted into the connecting place of the energy storage cabinet 2, the limiting plate 131, the insertion frame 132 and the cooling fan 14, the position of the cooling fan 14 can be determined, then rotate the nut, the nut rotates on the threaded end surface of the limiting device 137, the position of the cooling fan 14 can be locked and fixed.

[0036] Push the metal frame 134 to move forward and backward, so that the metal frame 134 is inserted into the upper end of the energy storage cabinet 2, the position of the metal frame 134 can be determined.

[0037] The metal frame 134 can drive the limiting insertion piece 136 to move forward and backward, so that the limiting insertion piece 136 is inserted into the inside of the metal insertion block 133 and the insertion frame 132, the metal insertion block 133 and the insertion frame 132 are fixed by insertion, so that the position of the metal insertion block 133 and the insertion frame 132 can be determined.

[0038] Push the connecting sliding block 135 to move backward, so that the connecting sliding block 135 slides on the outward end of the limiting insertion piece 136, then rotate the nut, the nut rotates on the threaded rod surface of the limiting insertion piece 136, the limiting insertion piece 136 and the connecting sliding block 135 are fixed by screw thread, the position of the metal frame 134 can be limited.

[0039] Push the locking bolt 15, so that the locking bolt 15 penetrates the outward end of the metal frame 134 and the limiting plate 131, then rotate the nut, the nut rotates on the threaded end surface of the locking bolt 15, the metal frame 134 and the limiting plate 131 are fixed by screw thread, so that the position of the limiting plate 131 can be determined, the limiting plate 131 and the insertion frame 132 can be conveniently disassembled and replaced.

[0040] Although the embodiments of the utility model have been shown and described, it can be understood by those skilled in the art that various changes, modifications, replacements and variations can be made to the embodiments without departing from the principles and spirits of the utility model, the scope of the utility model is defined by the appended claims and their equivalents.

Claims

1. An intelligent heat dissipation control structure for an electric energy storage system, comprising an energy storage cabinet (2) and a support base (3), characterized in that: An energy storage cabinet door (4) is installed at the front end of the energy storage cabinet (2), a heat dissipation control device (1) is installed at the upper end of the energy storage cabinet (2), and the support base (3) is installed on the bottom surface of the energy storage cabinet (2); The heat dissipation control device (1) comprises a control panel (11), a PLC controller (12), a connecting assembly (13), a heat dissipation fan (14) and a locking bolt (15), wherein the control panel (11) is mounted on the bottom surface of the PLC controller (12), the PLC controller (12) is mounted on the outward end of the heat dissipation fan (14), the heat dissipation fan (14) is threadedly connected to the inner wall surface of the connecting assembly (13), and the locking bolt (15) is threadedly connected to the outward end of the connecting assembly (13).

2. The intelligent heat dissipation control structure of the electric energy storage system according to claim 1, characterized in that: The connecting assembly (13) includes a limiting plate (131), a plug-in frame (132), a metal plug-in block (133), a metal frame (134), a connecting slider (135), a limiting plug-in connector (136) and a limiting device (137), wherein the limiting plate (131) is mounted on the inner wall surface of the metal frame (134), the limiting device (137) is mounted on the inward end of the limiting plate (131), the limiting plug-in connector (136) is plugged into the outward end of the plug-in frame (132), the limiting plug-in connector (136) is plugged into the outward end of the metal plug-in block (133), and the connecting slider (135) is threadedly connected to the outward end of the limiting plug-in connector (136).

3. The intelligent heat dissipation control structure of the electric energy storage system according to claim 2, characterized in that: The cooling fan (14) is plugged into the upward end of the energy storage cabinet (2), the control panel (11) is installed on the upper left surface of the energy storage cabinet (2), and the PLC controller (12) is installed on the upper left surface of the energy storage cabinet (2).

4. The intelligent heat dissipation control structure of the electric energy storage system according to claim 3, characterized in that: The locking bolt (15) is inserted into the outward end of the limiting plate (131), and the locking bolt (15) is installed on the outward end of the metal frame (134).

5. The intelligent heat dissipation control structure of the electric energy storage system according to claim 4, characterized in that: The limiting connector (136) is slidably connected to the front end of the metal frame (134), and the connecting slider (135) is slidably connected to the front end of the metal frame (134).

6. The intelligent heat dissipation control structure of the electric energy storage system according to claim 5, characterized in that: The metal plug block (133) is movably connected to the top surface of the energy storage cabinet (2), and the plug frame (132) is movably connected to the top surface of the energy storage cabinet (2).

7. The intelligent heat dissipation control structure of the electric energy storage system according to claim 6, characterized in that: The plug-in frame (132) is threadedly connected to the upper end of the cooling fan (14), the limiting plate (131) is threadedly connected to the upper end of the cooling fan (14), and the limiting device (137) is threadedly connected to the outward end.

8. The intelligent heat dissipation control structure of the electric energy storage system according to claim 7, characterized in that: The input end of the cooling fan (14) is connected to a data processing module, the output end of the data processing module is connected to an alarm module, the input end of the data processing module is connected to a signal receiving module, and the input end of the signal receiving module is connected to a temperature sensor.

Citation Information

Patent Citations

  • Integrated communication power supply

    CN219203898U