Constant-temperature energy storage cabinet

By separating the electrical room and battery room in the constant temperature energy storage cabinet and adopting isolation, heat dissipation and monitoring measures, the problems of electromagnetic interference and safety hazards have been solved, and the safe and effective use of electrical components and energy storage batteries has been realized.

CN120854816APending Publication Date: 2025-10-28DONGGUAN JINQI IND CO LTD
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Patent Information

Application Number
CN202510910979.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-02
Publication Date
2025-10-28

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Abstract

The invention discloses a constant-temperature energy storage cabinet, and relates to the technical field of cabinets. Comprising a base, a main cabinet is installed on the upper surface of the base, an isolation mechanism is fixedly installed at the position, close to the left side, between the upper inner wall and the lower inner wall of the main cabinet, and the isolation mechanism divides the main cabinet into an electrical chamber and a battery chamber in sequence from left to right; a filtering mechanism is arranged on the first cabinet door on the rear side corresponding to the electrical room, an air draft mechanism is mounted on the first cabinet door on the front side corresponding to the electrical room, and a prompting mechanism is embedded in the upper surface of the main cabinet corresponding to the electrical room. The host cabinet is divided into the electrical chamber and the battery chamber, the electrical chamber and the battery chamber are isolated through the isolation mechanism, electromagnetic interference between electrical elements and energy storage batteries is effectively avoided, the electrical elements and the energy storage batteries are subjected to heat dissipation in different heat dissipation modes, the use requirements of the electrical elements and the energy storage batteries are met, the function of prompting whether the host cabinet is electrified or not is added, and the practicability is high. The use is safer.
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Description

Technical Field

[0001] This invention relates to the field of cabinet technology, specifically a constant temperature energy storage cabinet. Background Technology

[0002] The constant temperature energy storage cabinet has robust, waterproof, dustproof, corrosion-resistant, and rust-resistant physical properties. Its unique double-layer heat-insulating cabinet and fully independent internal and external air circulation system can minimize the impact of harsh external environments on the internal temperature and humidity environment. At the same time, the fully open cabinet setting function allows users to configure the cabinet temperature control system according to the working environment requirements of the equipment inside the cabinet, so that the actual environment inside the cabinet is completely the same as the working environment required by the equipment, providing a superior operating environment for the equipment system inside the cabinet.

[0003] In existing technologies, conventional constant-temperature energy storage cabinets often house electrical control components and energy storage batteries in the same space. This can lead to battery interference between the electrical control components and the energy storage batteries, causing damage to the electrical components. Furthermore, the electrical control components and energy storage batteries require different temperatures. Energy storage batteries need a certain temperature; if the temperature is too low, the energy storage batteries will not charge and discharge sufficiently. The constant temperature inside the constant-temperature cabinet cannot meet the needs of both electrical components and energy storage batteries, which is not conducive to use. Moreover, during use, it is impossible to monitor the safety of the energy storage mechanism, which may lead to safety issues such as leakage and poses significant safety hazards, especially electric shock accidents caused by accidental contact. Summary of the Invention

[0004] In view of the shortcomings of the prior art, the present invention provides a constant temperature energy storage cabinet to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, the present invention provides the following technical solution: a constant temperature energy storage cabinet, including a base, a main cabinet mounted on the upper surface of the base, an isolation mechanism fixedly mounted between the upper and lower inner walls of the main cabinet near the left side, and the isolation mechanism dividing the main cabinet from left to right into an electrical compartment and a battery compartment, an electrical rack mounted between the inner walls of the electrical compartment, a first cabinet door hinged to the front and rear sides of the main cabinet corresponding to the electrical compartment, a filter mechanism provided on the rear first cabinet door corresponding to the electrical compartment, an exhaust mechanism mounted on the front first cabinet door corresponding to the electrical compartment, a prompting mechanism embedded in the upper surface of the main cabinet corresponding to the electrical compartment, a battery rack mounted near the lower side of the inner wall of the battery compartment, an installation box mounted on the upper surface of the battery rack, an air-conditioning compartment formed between the installation box and the upper inner wall of the main cabinet, and a second cabinet door hinged to the front and rear sides of the main cabinet corresponding to the battery compartment.

[0006] Furthermore, the isolation mechanism includes a magnetic shielding plate and a steel plate. The magnetic shielding plate is fixedly installed with steel plates on both its left and right sides, and the upper and lower sides of the magnetic shielding plate and the steel plates are fixedly connected to the upper and lower inner walls of the main unit cabinet.

[0007] Furthermore, each of the first cabinet doors is equipped with a first door lock assembly, and the first door lock assembly is locked and fixed to the upper and lower inner walls of the main unit cabinet.

[0008] Furthermore, the filtration mechanism includes a first rectangular box, a first louver, and a filter element. The first rectangular box is embedded in the rear first cabinet door. Both the left and right sides of the first rectangular box are open structures. The first louver is fixedly installed on the left side of the first rectangular box, and the filter element is provided on the inner wall of the first rectangular box near the right side.

[0009] Furthermore, the ventilation mechanism includes a second rectangular box, a second louver, and a dustproof fan. The second rectangular box is embedded in the front first cabinet door. The left side of the second rectangular box is an open structure. The second louver is installed on the left side of the second rectangular box. The dustproof fan is evenly embedded on the right side wall of the second rectangular box.

[0010] Furthermore, the notification mechanism includes an insulating box, a controller, a data processing module, a GPS module, a wireless communication module, a battery, a charger, a current sensor, and an alarm. The insulating box is fixedly installed on the inner wall of the corresponding main unit cabinet in the electrical room. The controller, data processing module, GPS module, wireless communication module, battery, and charger are installed inside the insulating box. The controller is electrically connected to the data processing module, GPS module, wireless communication module, battery, current sensor, and alarm. The charger is electrically connected to the battery.

[0011] Furthermore, each of the second cabinet doors is equipped with a second door lock assembly, and the second door lock assembly is locked and fixed to the upper and lower inner walls of the main unit cabinet.

[0012] Furthermore, a rectangular opening is provided on the second cabinet door on the front side corresponding to the battery compartment for installing an observation window.

[0013] Furthermore, lifting rings are threaded at the four corners of the upper surface of the main unit cabinet.

[0014] Furthermore, an air conditioning vent cover is provided on the upper side wall of the main unit cabinet corresponding to the battery compartment.

[0015] Beneficial effects

[0016] Compared with the prior art, the present invention provides a constant temperature energy storage cabinet, which has the following beneficial effects:

[0017] 1. This constant temperature energy storage cabinet is divided into an electrical compartment and a battery compartment by setting up an isolation mechanism. The electrical compartment is used for the installation of electrical components, and the battery compartment is used for the installation of energy storage batteries. This effectively avoids electromagnetic interference between electrical components and energy storage batteries. The electrical compartment is cooled by a filtration mechanism and an exhaust mechanism, while the battery compartment is cooled by a waterproof air-conditioning system. Different cooling methods are used to cool the electrical components and energy storage batteries to meet the usage requirements of both.

[0018] 2. This constant temperature energy storage cabinet has a power-on indicator. When the main cabinet is powered on, the information is sent to the back-end server to remind the staff and promptly disconnect the power to the energy storage cabinet for timely maintenance, making it safer to use. Attached Figure Description

[0019] Figure 1 This is a schematic diagram of the structure of a constant temperature energy storage cabinet proposed in this invention;

[0020] Figure 2 This is an exploded view of a constant temperature energy storage cabinet proposed in this invention;

[0021] Figure 3 This is an exploded view of the isolation mechanism of a constant temperature energy storage cabinet proposed in this invention;

[0022] Figure 4 This is an exploded view of the filtration mechanism of a constant temperature energy storage cabinet proposed in this invention;

[0023] Figure 5 This is an exploded view of the ventilation mechanism of a constant temperature energy storage cabinet proposed in this invention;

[0024] Figure 6 This is a cross-sectional view of the prompting mechanism of a constant temperature energy storage cabinet proposed in this invention.

[0025] In the diagram: 1. Base; 2. Main unit cabinet; 3. Isolation mechanism; 301. Magnetic shielding plate; 302. Steel plate; 4. Electrical compartment; 5. Battery compartment; 6. Electrical frame; 7. First cabinet door; 8. Filtering mechanism; 801. First rectangular box; 802. First louver; 803. Filter element; 9. Exhaust mechanism; 901. Second rectangular box; 902. Second louver; 903. Dustproof fan; 10. Indication mechanism; 101. Insulation box; 102. Controller; 103. Data processing module; 104. GPS module; 105. Wireless communication module; 106. Battery; 107. Charger; 108. Current sensor; 109. Alarm; 11. Battery rack; 12. Mounting box; 13. Air conditioning compartment; 14. Second cabinet door; 15. First door lock assembly; 16. Second door lock assembly; 17. Rectangular opening; 18. Hanging ring; 19. Air conditioning vent cover. Detailed Implementation

[0026] The technical solutions of the present invention will be clearly and completely described below with reference to the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0027] Please refer to Figures 1-5 This invention discloses a constant temperature energy storage cabinet, including a base 1. A main cabinet 2 is mounted on the upper surface of the base 1. An isolation mechanism 3 is fixedly installed between the upper and lower inner walls of the main cabinet 2 near the left side, and the isolation mechanism 3 divides the main cabinet 2 into an electrical compartment 4 and a battery compartment 5 from left to right. An electrical rack 6 is installed between the inner walls of the electrical compartment 4. A first cabinet door 7 is hinged to the front and rear sides of the main cabinet 2 corresponding to the electrical compartment 4. A filter mechanism 8 is provided on the rear first cabinet door 7 corresponding to the electrical compartment 4. An exhaust mechanism 9 is installed on the front first cabinet door 7 corresponding to the electrical compartment 4. A prompting mechanism 10 is embedded on the upper surface of the main cabinet 2 corresponding to the electrical compartment 4. A battery rack 11 is installed near the lower side of the inner wall of the battery compartment 5. An installation box 12 is installed on the upper surface of the battery rack 11. An air-conditioning compartment 13 is formed between the installation box 12 and the upper inner wall of the main cabinet 2. A second cabinet door 14 is hinged to the front and rear sides of the main cabinet 2 corresponding to the battery compartment 5.

[0028] Specifically, the isolation mechanism 3 includes a magnetic shielding plate 301 and a steel plate 302. The magnetic shielding plate 301 is fixedly installed with steel plates 302 on both its left and right sides, and the upper and lower sides of the magnetic shielding plate 301 and the steel plate 302 are fixedly connected to the upper and lower inner walls of the main unit cabinet 2.

[0029] In this embodiment, the steel plates 302 on the left and right sides of the magnetic shielding plate 301 are used to install the magnetic shielding plate 301. The left and right steel plates 302 are fixedly connected to the upper and lower inner walls of the main unit cabinet 2 by welding, thereby dividing the main unit cabinet 2 into an electrical room 4 and a battery room 5 that will not interfere with each other electromagnetically.

[0030] Specifically, each of the first cabinet doors 7 is equipped with a first door lock assembly 15, and the first door lock assembly 15 is locked and fixed to the upper and lower inner walls of the main unit cabinet 2.

[0031] In this embodiment, the first door lock assembly 15 on the front and rear first cabinet doors 7 is used to lock and fix them to the main unit cabinet 2, so that the sealing and fitting effect between the first cabinet door 7 and the front and rear sides of the main unit cabinet 2 and the isolation mechanism 3 is better, and the rear first cabinet door 7 is provided with a mounting hole for the installation of the operation display screen.

[0032] Specifically, the filtering mechanism 8 includes a first rectangular box 801, a first louver 802, and a filter element 803. The first rectangular box 801 is embedded in the rear first cabinet door 7. Both the left and right sides of the first rectangular box 801 are open structures. The first louver 802 is fixedly installed on the left side of the first rectangular box 801. The filter element 803 is provided on the inner wall of the first rectangular box 801 near the right side.

[0033] In this embodiment, outside air enters the first rectangular box 801 through the first louver 802. The filter element 803 inside the first rectangular box 801 filters dust and moisture in the air, thereby allowing dry and clean air to enter the electrical room 4. The first louver 802 has a waterproof effect.

[0034] Specifically, the exhaust mechanism 9 includes a second rectangular box 901, a second louver 902, and a dustproof fan 903. The second rectangular box 901 is embedded in the front first cabinet door 7. The left side of the second rectangular box 901 is an open structure. The second louver 902 is installed on the left side of the second rectangular box 901. The dustproof fan 903 is evenly embedded on the right side wall of the second rectangular box 901.

[0035] In this embodiment, the dustproof fan 903 draws air from the electrical chamber 4, drawing the hot air from the electrical chamber 4 into the second rectangular box 901, and then expelling it from the second rectangular box 901 through the second louver 902. The dustproof fan 903 effectively prevents dust from flowing back into the electrical chamber 4, and the second louver 902 has a waterproof effect.

[0036] Specifically, the prompting mechanism 10 includes an insulating box 101, a controller 102, a data processing module 103, a GPS module 104, a wireless communication module 105, a battery 106, a charger 107, a current sensor 108, and an alarm 109. The insulating box 101 is fixedly installed on the upper inner wall of the corresponding main unit cabinet 2 in the electrical room 4. The controller 102, data processing module 103, GPS module 104, wireless communication module 105, battery 106, and charger 107 are installed inside the insulating box 101. The controller 102 is electrically connected to the data processing module 103, GPS module 104, wireless communication module 105, battery 106, current sensor 108, and alarm 109. The charger 107 is electrically connected to the battery 106.

[0037] In this implementation scheme, the insulating box 101 isolates the main cabinets 2 from each other, preventing them from being energized. The charger 107 is connected to the control module in the electrical room 4, allowing the charger 107 to charge the battery 106. The battery 106 supplies power to the controller 102. The controller 102 uses the current sensor 108 to monitor whether the main cabinet 2 is energized. When the main cabinet 2 is detected to be moving, it indicates that the main cabinet 2 has a leakage current, and the information is fed back to the controller 102. The controller 102 then activates the alarm 109. Furthermore, the controller 102 feeds back the location information and leakage current information of the energy storage cabinet processed by the data processing module 103 to the back-end server through the wireless communication module 105. This causes the back-end server to disconnect the power to the energy storage cabinet and promptly perform maintenance on it, effectively preventing fires caused by leakage current or accidental contact with the main cabinet 2, making it safer to use.

[0038] Specifically, each of the second cabinet doors 14 is equipped with a second door lock assembly 16, and the second door lock assembly 16 is locked and fixed to the upper and lower inner walls of the main unit cabinet 2.

[0039] In this embodiment, the second door lock assembly 16 locks the second cabinet door 14 and the main unit cabinet 2 together, thereby sealing the battery compartment 5.

[0040] Specifically, a rectangular opening 17 for installing an observation window is provided on the second cabinet door 14 on the front side of the battery compartment 5.

[0041] In this embodiment, the rectangular opening 17 is used for the installation of the observation window, which can satisfy the effect of viewing the situation inside the battery compartment 5.

[0042] Specifically, lifting rings 18 are threaded at the four corners of the upper surface of the main unit cabinet 2.

[0043] In this embodiment, the lifting ring 18 is used to lift the energy storage mechanism, making it easier to move the energy storage mechanism.

[0044] Specifically, an air conditioning vent cover 19 is provided on the upper side wall of the main unit cabinet 2 corresponding to the battery compartment 5.

[0045] In this implementation scheme, after the air conditioning vent cover 19 is removed, the air conditioner can be installed on the upper side wall of the main unit cabinet 2 corresponding to the battery compartment 5, and the air conditioner can be used to cool the battery compartment 5.

[0046] The working principle and usage process of this invention are as follows: In use, electrical components are installed on electrical racks 6 inside electrical compartment 4, and the control element in the electrical components is electrically connected to the charger 107 in the prompting mechanism 10. Then, the energy storage battery is installed on the battery rack 11 in battery compartment 5, and the energy stored on the battery rack 11 is electrically connected to the electrical components. Then, the first cabinet door 7 on the front and rear sides of electrical compartment 4 is locked and closed with the main unit cabinet 2 through the first door lock assembly 15, thereby achieving the effect of sealing electrical compartment 4.

[0047] Then, the second door lock assembly 16 closes the front and rear cabinet doors 14 and the front and rear sides of the main unit cabinet 2, achieving a sealing effect on the battery compartment 5. During this process, the temperature control assembly monitors the temperature inside the electrical compartment 4 and the battery compartment 5. The dustproof fan 903 in the exhaust mechanism 9 draws air from the electrical compartment 4, drawing the hot air into the second rectangular box 901, and then exhausting it through the second louver 902. The dustproof fan 903 effectively prevents dust from flowing back into the electrical compartment 4. The second louver 902 is waterproof and creates a negative pressure inside the electrical compartment 4. External air enters the first rectangular box 801 through the first louver 802 in the filter mechanism 8. The filter element 803 inside the first rectangular box 801 filters dust and moisture from the air, allowing dry and clean air to enter the electrical compartment 4. The first louver 802 is waterproof, achieving a cooling effect on the electrical components inside the electrical compartment 4.

[0048] The battery compartment 5 is then cooled by the air conditioning in the air conditioning room 13, keeping it at a constant temperature. This ensures that the energy storage battery is kept at a constant temperature, which is conducive to full charging and discharging. The steel plates 302 on both sides of the magnetic shielding plate 301 in the isolation mechanism 3 are used to install the magnetic shielding plate 301. The left and right steel plates 302 are fixedly connected to the upper and lower inner walls of the main unit cabinet 2 by welding, thereby dividing the main unit cabinet 2 into an electrical compartment 4 and a battery compartment 5 that will not interfere with each other electromagnetically, effectively avoiding electromagnetic interference between electrical components and energy storage batteries.

[0049] The insulation box 101 in the prompting mechanism 10 then isolates the main cabinets 2 from each other, preventing power transmission. The charger 107 is connected to the control module in the electrical room 4, allowing the charger 107 to charge the battery 106. The battery 106 supplies power to the controller 102. The controller 102 uses the current sensor 108 to monitor whether the main cabinet 2 is energized. When the main cabinet 2 is detected to be moving, it indicates that the main cabinet 2 has a leakage current. The information is fed back to the controller 102, which then activates the alarm 109. The controller 102 also sends the location information and leakage current information of the energy storage cabinet processed by the data processing module 103 to the back-end server via the wireless communication module 105. This causes the back-end server to disconnect the power to the energy storage cabinet and promptly perform maintenance on it, effectively preventing fires caused by leakage current or accidental contact with the main cabinet 2, making it safer to use.

[0050] In summary, this constant temperature energy storage cabinet divides the main cabinet 2 into an electrical compartment 4 and a battery compartment 5, which are isolated by an isolation mechanism 3. This effectively prevents electromagnetic interference between electrical components and energy storage batteries. Furthermore, different heat dissipation methods are used to cool the electrical components and energy storage batteries, meeting the usage requirements of both. The addition of a power-on indicator function to the main cabinet 2 enhances safety during use.

[0051] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A constant temperature energy storage cabinet, comprising a base (1), characterized in that: A main unit cabinet (2) is mounted on the upper surface of the base (1). An isolation mechanism (3) is fixedly installed between the upper and lower inner walls of the main unit cabinet (2) near the left side. The isolation mechanism (3) divides the main unit cabinet (2) into an electrical compartment (4) and a battery compartment (5) from left to right. An electrical rack (6) is installed between the inner walls of the electrical compartment (4). A first cabinet door (7) is hinged to the front and rear sides of the main unit cabinet (2) corresponding to the electrical compartment (4). A filter mechanism (8) is provided on the rear first cabinet door (7) corresponding to the electrical compartment (4). An exhaust mechanism (9) is installed on the front first cabinet door (7) corresponding to the electrical room (4). A prompting mechanism (10) is embedded on the upper surface of the main unit cabinet (2) corresponding to the electrical room (4). A battery rack (11) is installed on the inner wall of the battery room (5) near the lower side. An installation box (12) is installed on the upper surface of the battery rack (11). An air-conditioning room (13) is formed between the installation box (12) and the upper inner wall of the main unit cabinet (2). A second cabinet door (14) is hinged on both the front and rear sides of the main unit cabinet (2) corresponding to the battery room (5).

2. The constant temperature energy storage cabinet according to claim 1, characterized in that: The isolation mechanism (3) includes a magnetic shielding plate (301) and a steel plate (302). The left and right sides of the magnetic shielding plate (301) are fixedly installed with steel plates (302), and the upper and lower sides of the magnetic shielding plate (301) and the steel plate (302) are fixedly connected to the upper and lower inner walls of the main unit cabinet (2).

3. The constant temperature energy storage cabinet according to claim 1, characterized in that: Each of the first cabinet doors (7) is equipped with a first door lock assembly (15), and the first door lock assembly (15) is locked and fixed to the upper and lower inner walls of the main unit cabinet (2).

4. The constant temperature energy storage cabinet according to claim 1, characterized in that: The filtration mechanism (8) includes a first rectangular box (801), a first louver (802), and a filter element (803). The first rectangular box (801) is embedded in the first cabinet door (7) on the rear side. The left and right sides of the first rectangular box (801) are both open structures. The first louver (802) is fixedly installed on the left side of the first rectangular box (801). The filter element (803) is provided on the inner wall of the first rectangular box (801) near the right side.

5. A constant temperature energy storage cabinet according to claim 1, characterized in that: The exhaust mechanism (9) includes a second rectangular box (901), a second louver (902), and a dustproof fan (903). The second rectangular box (901) is embedded in the front first cabinet door (7). The left side of the second rectangular box (901) is an open structure. The second louver (902) is installed on the left side of the second rectangular box (901). The dustproof fan (903) is evenly embedded on the right side wall of the second rectangular box (901).

6. A constant temperature energy storage cabinet according to claim 1, characterized in that: The prompting mechanism (10) includes an insulating box (101), a controller (102), a data processing module (103), a GPS module (104), a wireless communication module (105), a battery (106), a charger (107), a current sensor (108), and an alarm (109). The insulating box (101) is fixedly installed on the upper inner wall of the main cabinet (2) corresponding to the electrical room (4). The controller (102), data processing module (103), GPS module (104), wireless communication module (105), battery (106), and charger (107) are installed inside the insulating box (101). The controller (102) is electrically connected to the data processing module (103), GPS module (104), wireless communication module (105), battery (106), current sensor (108), and alarm (109). The charger (107) is electrically connected to the battery (106).

7. A constant temperature energy storage cabinet according to claim 1, characterized in that: Each of the second cabinet doors (14) is equipped with a second door lock assembly (16), and the second door lock assembly (16) is locked and fixed to the upper and lower inner walls of the main cabinet (2).

8. A constant temperature energy storage cabinet according to claim 1, characterized in that: The battery compartment (5) has a rectangular opening (17) on the second cabinet door (14) on the front side for installing an observation window.

9. A constant temperature energy storage cabinet according to claim 1, characterized in that: The upper surface of the main unit cabinet (2) is threaded with lifting rings (18) at the four corners.

10. A constant temperature energy storage cabinet according to claim 1, characterized in that: An air conditioning vent cover (19) is provided on the upper side wall of the main unit cabinet (2) corresponding to the battery compartment (5).