Energy storage device for high energy consumption power distribution network

By introducing a heat dissipation and monitoring mechanism driven by a drive motor into the distribution network energy storage equipment, real-time temperature and data monitoring of the battery body is achieved, solving the problem that existing equipment is difficult to monitor and improving the monitorability and stability of the equipment.

CN119786862BActive Publication Date: 2025-10-14CHIFENG POWER SUPPLY OF NORTHEAST CHINA GRID +1
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Patent Information

Application Number
CN202411896400.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-12-23
Publication Date
2025-10-14
Estimated Expiration
2044-12-23

AI Technical Summary

Technical Problem

Existing distribution network energy storage equipment is difficult to monitor the energy storage mechanism in real time during operation, which may lead to monitoring difficulties during the use of the equipment.

Method used

Abstract: An energy storage device for high-energy-consuming distribution networks is designed. The heat dissipation and monitoring mechanisms are driven by a driving motor to operate synchronously. The forward rotation of the driving motor is used for heat dissipation, and the reverse rotation is used for monitoring. Combined with a sprocket, bevel gear and reciprocating screw mechanism, real-time monitoring of the battery body temperature and data is achieved.

Benefits of technology

It improves the monitorability and stability of the equipment, ensures the heat dissipation effect of the battery body and the convenience of monitoring, and enhances the protection and operability of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a kind of energy storage devices for high energy consumption power distribution network, it is related to power grid energy storage equipment technical field, battery body is equipped in device shell inside, and the middle part of device shell inside is equipped with isolation plate, and heat dissipation mechanism is equipped in isolation plate inside, two groups of monitoring mechanisms are equipped in device main body rear end, and monitoring mechanism is located in the rear of battery body, and transmission is equipped in device shell top, battery body can be electrically connected with transmission;Drive motor is equipped in device shell top, and drive motor front end is connected with monitoring mechanism, and drive motor bottom is connected with heat dissipation mechanism.The temperature of battery body needs to be monitored in the equipment inside, can be rotated by drive motor reverse, so that drive motor drives monitoring mechanism to be lifted to specified position, so that the specified position of battery body is monitored temperature or other data, so that the equipment can be more convenient when monitoring the use condition of battery body, so as to increase the monitorability of the equipment when using.
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Description

Technical Field

[0001] The present invention relates to the technical field of power grid energy storage equipment, and in particular to an energy storage device for a high-energy-consuming distribution network. Background Art

[0002] Distribution network energy storage devices are devices used to store electrical energy and release it when needed. They play a vital role in modern power systems, particularly in smart grids, where they are used to balance supply and demand, regulate peak and frequency, and improve power quality and the efficiency of renewable energy utilization. However, existing energy storage devices for distribution networks have several shortcomings, such as:

[0003] Application number: CN202310917238.X, a photovoltaic energy storage device for a low-voltage distribution network. This device helps make the energy storage device safer when dissipating heat, improves the heat dissipation effect of the energy storage device, extends the service life of the energy storage device, and avoids the temperature rise around the motor when the energy storage device dissipates heat, which may cause the motor to malfunction and be damaged at high temperatures. However, in actual use, the device has difficulty monitoring the energy storage mechanism in operation, which may make it difficult to monitor the energy storage mechanism in real time during actual use.

[0004] Therefore, we propose an energy storage device for high-energy-consuming distribution networks to solve the above problems. Summary of the Invention

[0005] The purpose of the present invention is to provide an energy storage device for a high-energy-consuming distribution network to solve the problem raised in the above-mentioned background technology that most distribution box energy storage devices on the market are difficult to monitor the energy storage mechanism in operation during actual use, which may lead to the problem that it is difficult to monitor the energy storage mechanism in real time during actual use of the device.

[0006] To achieve the above objectives, the present invention provides the following technical solution: an energy storage device for a high-energy-consumption distribution network, comprising a device body and a device shell disposed at the rear end of the device body, a battery body disposed within the device shell, an isolation plate disposed in the middle of the inner side of the device shell, and a heat dissipation mechanism disposed within the isolation plate, two sets of monitoring mechanisms disposed at the rear end of the device body, the monitoring mechanisms being located at the rear of the battery body, and a transmitter disposed at the top of the device shell, the battery body being electrically connected to the transmitter;

[0007] A driving motor is provided on the top of the device shell, and the front end of the driving motor is connected to the monitoring mechanism, and the bottom of the driving motor is connected to the heat dissipation mechanism. The driving motor can drive the heat dissipation mechanism and the monitoring mechanism to operate synchronously.

[0008] By driving the motor to rotate forward, the heat dissipation mechanism is driven to operate, making it more convenient for the device body to dissipate heat for the two groups of battery bodies. When the temperature of the battery body needs to be monitored inside the device, the drive motor can be driven to rotate in the reverse direction, so that the drive motor drives the monitoring mechanism to rise and fall to a specified position, thereby monitoring the temperature or other data of the specified position of the battery body. This makes it more convenient for the device to monitor the usage of the battery body, thereby increasing the monitorability of the device during use.

[0009] As a preferred technical solution of the present invention, a first sprocket is provided at the front end of the driving motor, a chain is engaged on the outside of the first sprocket, and a second sprocket is engaged at the bottom of the chain, and the front end of the second sprocket is connected to the heat dissipation mechanism.

[0010] The adoption of the above technical solution can make the drive motor more stable when connected to the heat dissipation mechanism or the monitoring mechanism, thereby increasing the stability of the device during operation.

[0011] As a preferred technical solution of the present invention, the second sprocket is connected to the interior of the device housing through a bearing seat, and the heat dissipation mechanism includes a drive shaft, and a first bevel gear is provided on the outside of the drive shaft, and a second bevel gear is meshed with the top of the first bevel gear, and a turbine blade is connected to the top of the second bevel gear, and the turbine blade is located inside the isolation plate;

[0012] A third bevel gear is provided at the front end of the drive shaft, and the right end of the third bevel gear is engaged with a fourth bevel gear, and the right end of the fourth bevel gear is connected to an air suction fan blade. An air suction pump is provided at the front end of the air suction fan blade, and the air suction pump is fixedly connected to the bottom of the device body.

[0013] The above technical solution enables the heat dissipation mechanism to transmit the airflow to the bottom of the device body through the suction fan blades when it is in operation, and then transmit the airflow to the top through the turbine fan blades, so that the device can dissipate heat from the battery body more conveniently, thereby increasing the heat dissipation performance of the device.

[0014] As an optimal technical solution of the present invention, heat dissipation holes are provided on the outside of the isolation plate, and an insulating coating is printed on the outside of the isolation plate, and an exhaust valve is connected to the top of the isolation plate, the top of the exhaust valve is connected to the device body, and a base plate is provided at the bottom of the device body.

[0015] The above technical solution can prevent the isolation plate from conducting electricity when the isolation plate isolates the two battery groups, thereby increasing the protection of the device during use.

[0016] As a preferred technical solution of the present invention, the bottom of the device body is fixedly connected to the base plate, and a moisture-proof pad is provided at the bottom of the base plate, and a ratchet group is provided at the front end of the first sprocket, the ratchet group includes a first ratchet, and the front end of the first ratchet is engaged with a second ratchet, the front end of the second ratchet is engaged with a spring shaft, and the front end of the spring shaft is connected to a fifth bevel gear, and the front end of the fifth bevel gear is connected to the monitoring mechanism.

[0017] The above technical solution enables the first sprocket to drive the fifth bevel gear to rotate when it rotates in the forward direction, and when the first sprocket rotates in the reverse direction, the ratchet group will be disengaged, so that the first sprocket will not drive the fifth bevel gear to rotate when it rotates, thereby increasing the operability of the device.

[0018] As a preferred technical solution of the present invention, the front end of the fifth bevel gear is connected to the device housing through a bearing seat, and the monitoring mechanism is provided with two groups located on the left and right sides of the fifth bevel gear, and the monitoring mechanism includes a sixth bevel gear, the sixth bevel gear is meshed with the fifth bevel gear, and a seventh bevel gear is provided on the outside of the sixth bevel gear, and an eighth bevel gear is meshed with the bottom of the seventh bevel gear, a reciprocating screw is connected to the bottom of the eighth bevel gear, and a screw sleeve is provided on the outside of the reciprocating screw, and the rear end of the screw sleeve is slidably connected to a sliding rod, and the front end of the screw sleeve is connected to a monitor;

[0019] The monitor includes two groups of temperature monitors and air pressure detectors, and the detectors are located at the rear end of the battery body.

[0020] The adoption of the above technical solution can make the monitor more stable when it is raised or lowered, thereby making it more convenient to monitor the battery body and increasing the monitorability of the device.

[0021] As a preferred technical solution of the present invention, a transmission cable is provided at the rear end of the battery body, and the battery body is connected to the transmitter through the transmission cable, and an anti-electric coating is printed inside the device body.

[0022] The adoption of the above technical solution can make the battery body more stable when connected to the transmitter, and can prevent leakage, thereby increasing the stability and protection of the device during operation.

[0023] As a preferred technical solution of the present invention, a protective shell is provided on the top of the device body, and a main controller is provided inside the protective shell, and an integrated control board is connected to the front end of the main controller, and the main controller can be electrically connected to the battery body and the drive motor.

[0024] The above technical solution enables the device to drive the main controller to operate the driving motor or battery body inside the device through the integrated control board during operation, thereby increasing the operability of the device during operation.

[0025] As a preferred technical solution of the present invention, an electric control door is provided at the front end of the device body, and the electric control door is connected to the front end of the device body through a hinge, and a sealing gasket is provided on the outside of the front end of the electric control door, and the front end of the electric control door is connected to a sealing joint.

[0026] The above technical solution enables the front end of the device body to be protected by the electric control door, and the gap between the electric control door and the device body can be sealed by a sealing gasket, thereby increasing the sealing performance of the device.

[0027] As a preferred technical solution of the present invention, the rear end of the sealing joint is electrically connected to the battery body, and the main controller is electrically connected to the sealing joint.

[0028] The above technical solution enables the battery body to be electrically connected to other devices through a tight connector, thereby preventing leakage when the device transmits current, thereby increasing the stability of the device during operation.

[0029] Compared with the prior art, the present invention has the following advantages: by driving the motor to rotate in the forward direction, the heat dissipation mechanism is driven to operate, making it more convenient to dissipate heat from the two battery bodies inside the device body; when the temperature of the battery body needs to be monitored inside the device, the drive motor can be rotated in the reverse direction, so that the drive motor drives the monitoring mechanism to rise and fall to a specified position, thereby monitoring the temperature or other data of the specified position of the battery body, making it more convenient to monitor the use of the battery body, thereby increasing the monitorability of the device during use;

[0030] Furthermore, by providing an insulating coating on the outside of the separator, when the separator isolates the two battery groups, it is possible to prevent the separator itself from being conductive, thereby increasing the protection of the device during use.

[0031] Furthermore, by arranging a ratchet group at the front end of the first sprocket, the first sprocket can drive the fifth bevel gear to rotate when it rotates in the forward direction, and when the first sprocket rotates in the reverse direction, the ratchet group will be disengaged, so that the first sprocket will not drive the fifth bevel gear to rotate when it rotates, thereby increasing the operability of the device. BRIEF DESCRIPTION OF THE DRAWINGS

[0032] Figure 1 This is a schematic diagram of the facade structure of the present invention;

[0033] Figure 2 It is a schematic diagram of the three-dimensional structure of the front cross section of the present invention;

[0034] Figure 3 It is a schematic diagram of the three-dimensional structure of the rear cross-section of the present invention;

[0035] Figure 4 It is a schematic diagram of the three-dimensional structure of the side cross-section of the present invention;

[0036] Figure 5 It is a schematic diagram of a three-dimensional structure of a top cross-section of the present invention;

[0037] Figure 6 A schematic diagram of the three-dimensional structure of the meshing relationship between the first sprocket and the second sprocket of the present invention;

[0038] Figure 7 For the present invention Figure 6 A schematic diagram of the enlarged structure at point A;

[0039] Figure 8 Schematic diagram of the three-dimensional structure of the isolation plate of the present invention;

[0040] Figure 9 Schematic diagram of the meshing elevation structure of the fifth bevel gear and the sixth bevel gear of the present invention;

[0041] Figure 10 For the present invention Figure 9 A schematic diagram of the enlarged structure at point B;

[0042] Figure 11 Schematic diagram of the three-dimensional structure of the monitoring mechanism of the present invention;

[0043] Figure 12 It is a schematic diagram of the three-dimensional structure of the connection between the battery body and the transmitter of the present invention.

[0044] In the figure: 1. Device body; 2. Device shell; 3. Battery body; 4. Protective shell; 5. Bottom plate; 6. Moisture-proof pad; 7. Drive motor; 8. First sprocket; 9. Chain; 10. Second sprocket; 11. Drive shaft; 12. First bevel gear; 13. Second bevel gear; 14. Turbine blade; 15. Isolation plate; 16. Insulation coating; 17. Exhaust valve; 18. Third bevel gear; 19. Fourth bevel gear; 20. Suction blade ; 21. Suction pump; 22. First ratchet; 23. Second ratchet; 24. Spring shaft; 25. Fifth bevel gear; 26. Sixth bevel gear; 27. Seventh bevel gear; 28. Eighth bevel gear; 29. ​​Reciprocating screw; 30. Screw sleeve; 31. Sliding rod; 32. Monitor; 33. Transmission cable; 34. Transmitter; 35. Main controller; 36. Integrated control board; 37. Electric control door; 38. Sealing gasket; 39. Sealing joint. DETAILED DESCRIPTION

[0045] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.

[0046] See also Figures 1-12 The present invention provides a technical solution: an energy storage device for a high-energy consumption distribution network, comprising a device body 1, a device shell 2 arranged at the rear end of the device body 1, a battery body 3 arranged inside the device shell 2, and an isolation plate 15 provided in the middle of the inner side of the device shell 2, and a heat dissipation mechanism provided inside the isolation plate 15, two sets of monitoring mechanisms provided at the rear end of the device body 1, and the monitoring mechanisms are located behind the battery body 3, and a transmitter 34 is provided at the top of the device shell 2, and the battery body 3 can be electrically connected to the transmitter 34;

[0047] A drive motor 7 is provided on the top of the device housing 2, and the front end of the drive motor 7 is connected to the monitoring mechanism, and the bottom of the drive motor 7 is connected to the heat dissipation mechanism. The drive motor 7 can drive the heat dissipation mechanism and the monitoring mechanism to operate synchronously;

[0048] The battery body 3 is installed inside the device body 1, and the two groups of battery bodies 3 are isolated by the isolation plate 15. Then, the top of the battery body 3 is connected to the transmitter 34 to receive electricity. When the inside of the device body 1 needs to dissipate heat, the motor 7 can be driven to rotate forward to drive the heat dissipation mechanism to operate, so that the heat dissipation mechanism transmits wind power to the inside of the isolation plate 15, thereby dispersing it inside the device body 1 to dissipate heat to the battery body 3. When the inside of the device body 1 needs to dissipate heat and monitor at the same time, the motor 7 is driven to rotate in the reverse direction, so that the motor 7 can drive the heat dissipation mechanism and the monitoring mechanism to operate synchronously, so that when the heat dissipation mechanism transmits wind power to dissipate heat to the battery body 3 inside the device body 1, the monitoring mechanism can also move to a designated position to monitor the designated position of the battery body 3;

[0049] A first sprocket 8 is provided at the front end of the driving motor 7, and a chain 9 is engaged with the outside of the first sprocket 8, and a second sprocket 10 is engaged with the bottom of the chain 9, and the front end of the second sprocket 10 is connected to the heat dissipation mechanism;

[0050] The second sprocket 10 is connected to the inside of the device housing 2 through a bearing seat, and the heat dissipation mechanism includes a drive shaft 11, and a first bevel gear 12 is provided on the outside of the drive shaft 11, and a second bevel gear 13 is meshed with the top of the first bevel gear 12, and a turbine blade 14 is connected to the top of the second bevel gear 13, and the turbine blade 14 is located inside the isolation plate 15;

[0051] A third bevel gear 18 is provided at the front end of the drive shaft 11, and a fourth bevel gear 19 is engaged with the right end of the third bevel gear 18, and an air suction fan 20 is connected to the right end of the fourth bevel gear 19. An air suction pump 21 is provided at the front end of the air suction fan 20, and the air suction pump 21 is fixedly connected to the bottom of the device body 1;

[0052] The outside of the isolation plate 15 is provided with a heat dissipation hole, and the outside of the isolation plate 15 is printed with an insulating coating 16, and the top of the isolation plate 15 is connected to an exhaust valve 17, the top of the exhaust valve 17 is connected to the device body 1, and the bottom of the device body 1 is provided with a base plate 5; the bottom of the device body 1 is fixedly connected to the base plate 5, and the bottom of the base plate 5 is provided with a moisture-proof pad 6, and the front end of the first sprocket 8 is provided with a ratchet group, the ratchet group includes a first ratchet 22, and the front end of the first ratchet 22 is engaged with a second ratchet 23, the front end of the second ratchet 23 is engaged with a spring shaft 24, and the front end of the spring shaft 24 is connected to a fifth bevel gear 25, and the front end of the fifth bevel gear 25 is connected to the monitoring mechanism;

[0053] The front end of the fifth bevel gear 25 is connected to the device housing 2 through a bearing seat, and the monitoring mechanism is provided with two groups located on the left and right sides of the fifth bevel gear 25, and the monitoring mechanism includes a sixth bevel gear 26, the sixth bevel gear 26 is meshed with the fifth bevel gear 25, and a seventh bevel gear 27 is provided on the outside of the sixth bevel gear 26, and an eighth bevel gear 28 is meshed at the bottom of the seventh bevel gear 27, a reciprocating screw 29 is connected to the bottom of the eighth bevel gear 28, and a screw sleeve 30 is provided on the outside of the reciprocating screw 29, and a sliding rod 31 is slidably connected to the rear end of the screw sleeve 30, and a monitor 32 is connected to the front end of the screw sleeve 30; the monitor 32 includes two groups of temperature monitors and air pressure detectors, and the detector 32 is located at the rear end of the battery body 3;

[0054] When the driving motor 7 rotates in the forward direction, it drives the first sprocket 8 to rotate, so that the first sprocket 8 drives the second sprocket 10 to rotate through the chain 9, so that the second sprocket 10 drives the driving shaft 11 to rotate, so that the driving shaft 11 drives the first bevel gear 12 to rotate, and the first bevel gear 12 drives the second bevel gear 13 and the turbine blade 14 to rotate inside the isolation plate 15. At the same time, the driving shaft 11 also drives the third bevel gear 18 to rotate, so that the third bevel gear 18 drives the fourth bevel gear 19 and the suction blade 20 to rotate, so that the suction blade 20 transmits the gas transmitted by the suction pump 21 to the turbine blade 14 at the low battery body 3 for heat dissipation, and the exhaust valve 17 at the top of the isolation plate 15 discharges excess gas from the device body 1;

[0055] When the driving motor 7 rotates in the opposite direction, the ratchet set at the front end of the first sprocket 8 will mesh, that is, the first ratchet 22 meshes with the second ratchet 23, and the second ratchet 23 will drive the spring shaft 24 and the fifth bevel gear 25 to rotate, so that the fifth bevel gear 25 drives the two sets of sixth bevel gears 26 to rotate, and the sixth bevel gear 26 will also drive the seventh bevel gear 27 to rotate, so that the seventh bevel gear 27 drives the eighth bevel gear 28 and the reciprocating screw 29 to rotate, and the screw sleeve 30 will also rise and fall under the drive of the reciprocating screw 29, so that the screw sleeve 30 drives the monitor 32 to rise and fall to the specified position to monitor the temperature or air pressure of the battery body 3;

[0056] A transmission cable 33 is provided at the rear end of the battery body 3, and the battery body 3 is connected to the transmitter 34 via the transmission cable 33. An anti-electric coating is printed on the inside of the device body 1. A protective shell 4 is provided on the top of the device body 1, and a main controller 35 is provided inside the protective shell 4. An integrated control board 36 is connected to the front end of the main controller 35. The main controller 35 can be electrically connected to the battery body 3 and the drive motor 7.

[0057] An electric control door 37 is provided at the front end of the device body 1 and is connected to the front end of the device body 1 via a hinge. A sealing gasket 38 is provided on the outside of the front end of the electric control door 37. A sealing joint 39 is connected to the front end of the electric control door 37. The rear end of the sealing joint 39 is electrically connected to the battery body 3, and the main controller 35 is electrically connected to the sealing joint 39.

[0058] When the battery body 3 is in operation, the rear end can be connected to the transmitter 34 through the transmission cable 33, and when the battery body 3 is transmitting power, power transmission can be performed through the sealing joint 39. When the device is controlling the battery body 3 or the drive motor 7 and other equipment, the main controller 35 can be controlled by the integrated control board 36, so that the main controller 35 controls the battery body 3 or the drive motor 7 and other equipment. In addition, through the setting of the moisture-proof pad 6, the device body 1 can always maintain a certain distance from the ground, thereby preventing the ground from being wet and affecting the operation of the device.

[0059] Working principle: When using the energy storage device for high-energy consumption distribution network, first install the battery body 3 inside the device body 1, and isolate the two groups of battery bodies 3 through the isolation plate 15, and then connect the top of the battery body 3 to the transmitter 34 to receive electricity. When the inside of the device body 1 needs to dissipate heat, the driving motor 7 can be rotated in the forward direction to drive the heat dissipation mechanism to operate, so that the heat dissipation mechanism transmits wind power to the inside of the isolation plate 15 and disperses it inside the device body 1 to dissipate heat for the battery body 3. When the inside of the device body 1 needs to dissipate heat and monitor at the same time, the driving motor 7 is rotated in the reverse direction, so that the driving motor 7 can easily drive the heat dissipation mechanism and the monitoring mechanism to operate synchronously, so that when the heat dissipation mechanism transmits wind power to dissipate heat for the battery body 3 inside the device body 1, the monitoring mechanism can also move to a designated position to monitor the designated position of the battery body 3;

[0060] When the driving motor 7 rotates in the forward direction, it drives the first sprocket 8 to rotate, so that the first sprocket 8 drives the second sprocket 10 to rotate through the chain 9, so that the second sprocket 10 drives the driving shaft 11 to rotate, so that the driving shaft 11 drives the first bevel gear 12 to rotate, and the first bevel gear 12 drives the second bevel gear 13 and the turbine blade 14 to rotate inside the isolation plate 15. At the same time, the driving shaft 11 also drives the third bevel gear 18 to rotate, so that the third bevel gear 18 drives the fourth bevel gear 19 and the suction blade 20 to rotate, so that the suction blade 20 transmits the gas transmitted by the suction pump 21 to the turbine blade 14 at the low battery body 3 for heat dissipation, and the exhaust valve 17 at the top of the isolation plate 15 discharges excess gas from the device body 1;

[0061] When the driving motor 7 rotates in the opposite direction, the ratchet set at the front end of the first sprocket 8 will mesh, that is, the first ratchet 22 meshes with the second ratchet 23, and the second ratchet 23 will drive the spring shaft 24 and the fifth bevel gear 25 to rotate, so that the fifth bevel gear 25 drives the two sets of sixth bevel gears 26 to rotate, and the sixth bevel gear 26 will also drive the seventh bevel gear 27 to rotate, so that the seventh bevel gear 27 drives the eighth bevel gear 28 and the reciprocating screw 29 to rotate, and the screw sleeve 30 will also rise and fall under the drive of the reciprocating screw 29, so that the screw sleeve 30 drives the monitor 32 to rise and fall to the specified position to monitor the temperature or air pressure of the battery body 3;

[0062] When the battery body 3 is in operation, the rear end can be connected to the transmitter 34 through the transmission cable 33, and when the battery body 3 is transmitting power, power transmission can be performed through the sealing joint 39. When the device is controlling the battery body 3 or the drive motor 7 and other equipment, the main controller 35 can be controlled by the integrated control board 36, so that the main controller 35 controls the battery body 3 or the drive motor 7 and other equipment. In addition, through the setting of the moisture-proof pad 6, the device body 1 can always maintain a certain distance from the ground, thereby preventing the ground from being wet and affecting the operation of the device.

[0063] Thereby completing a series of tasks, the contents not described in detail in this specification belong to the prior art known to professional and technical personnel in this field.

[0064] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above and that the invention can be embodied in other specific forms without departing from the spirit or essential characteristics of the invention. Therefore, the embodiments should be considered in all respects as illustrative and non-restrictive, and the scope of the invention is defined by the appended claims, not the foregoing description, and all variations within the meaning and range of equivalents of the claims are intended to be included therein. Any reference sign in a claim should not be construed as limiting the claim to which it relates.

Claims

1. An energy storage device for a high-energy consumption distribution network, comprising a device body (1) and a device shell (2) arranged at the rear end of the device body (1), characterized in that: The device shell (2) is provided with a battery body (3) inside, and an isolation plate (15) is provided at the middle of the inner side of the device shell (2), and a heat dissipation mechanism is provided inside the isolation plate (15). The rear end of the device body (1) is provided with two sets of monitoring mechanisms, and the monitoring mechanisms are located at the rear of the battery body (3). A transmission (34) is provided at the top of the device shell (2), and the battery body (3) can be electrically connected to the transmission (34); a driving motor (7) is provided at the top of the device shell (2), and the front end of the driving motor (7) is connected to the monitoring mechanism, and the bottom of the driving motor (7) is connected to the heat dissipation mechanism, and the driving motor (7) can drive the heat dissipation mechanism and the monitoring mechanism to operate synchronously; a first sprocket (8) is provided at the front end of the driving motor (7), and a chain (9) is engaged with the outer side of the first sprocket (8), and a second sprocket (10) is engaged with the bottom of the chain (9), and the front end of the second sprocket (10) is connected to the heat dissipation mechanism; A ratchet group is provided at the front end of the first sprocket (8), the ratchet group includes a first ratchet (22), and the front end of the first ratchet (22) is meshed with a second ratchet (23), the front end of the second ratchet (23) is meshed with a spring shaft (24), and the front end of the spring shaft (24) is connected to a fifth bevel gear (25), and the front end of the fifth bevel gear (25) is connected to the monitoring mechanism; When the inside of the device body (1) needs to dissipate heat, the driving motor (7) rotates forward, thereby driving the heat dissipation mechanism to operate, so that the heat dissipation mechanism transmits wind power to the inside of the isolation plate (15) and spreads it inside the device body (1) to dissipate heat to the battery body (3). When the inside of the device body (1) needs to dissipate heat and monitor simultaneously, the driving motor (7) rotates reversely, so that the driving motor (7) can easily drive the heat dissipation mechanism and the monitoring mechanism to operate synchronously, so that when the heat dissipation mechanism transmits wind power to dissipate heat to the battery body (3) inside the device body (1), the monitoring mechanism can also move to a designated position to monitor the designated position of the battery body (3).

2. The energy storage device for high-energy consumption distribution network according to claim 1, characterized in that: The second sprocket (10) is connected to the inside of the device shell (2) through a bearing seat, and the heat dissipation mechanism includes a drive shaft (11), and a first bevel gear (12) is provided on the outside of the drive shaft (11), and a second bevel gear (13) is meshed on the top of the first bevel gear (12), and a turbine blade (14) is connected to the top of the second bevel gear (13), and the turbine blade (14) is located inside the isolation plate (15); a third bevel gear (18) is provided at the front end of the drive shaft (11), and a fourth bevel gear (19) is meshed on the right end of the third bevel gear (18), and an air suction blade (20) is connected to the right end of the fourth bevel gear (19), and an air suction pump (21) is provided at the front end of the air suction blade (20), and the air suction pump (21) is fixedly connected to the bottom of the device body (1).

3. The energy storage device for high energy consumption distribution network according to claim 2, characterized in that: The isolation plate (15) is provided with heat dissipation holes on its outer side, and an insulating coating (16) is printed on its outer side. The top of the isolation plate (15) is connected to an exhaust valve (17), the top of the exhaust valve (17) is connected to the device body (1), and the bottom of the device body (1) is provided with a base plate (5).

4. The energy storage device for high-energy-consuming distribution network according to claim 3, characterized in that: The bottom of the device body (1) is fixedly connected to the bottom plate (5), and a moisture-proof pad (6) is provided at the bottom of the bottom plate (5).

5. The energy storage device for high energy consumption distribution network according to claim 4, characterized in that: The front end of the fifth bevel gear (25) is connected to the device housing (2) through a bearing seat, and the monitoring mechanism is provided with two groups located on the left and right sides of the fifth bevel gear (25), and the monitoring mechanism includes a sixth bevel gear (26), the sixth bevel gear (26) is meshed with the fifth bevel gear (25), and a seventh bevel gear (27) is provided on the outside of the sixth bevel gear (26), and an eighth bevel gear (28) is meshed at the bottom of the seventh bevel gear (27), a reciprocating screw (29) is connected to the bottom of the eighth bevel gear (28), and a screw sleeve (30) is provided on the outside of the reciprocating screw (29), and a sliding rod (31) is slidably connected to the rear end of the screw sleeve (30), and a monitor (32) is connected to the front end of the screw sleeve (30); the monitor (32) includes two groups of a temperature monitor and an air pressure detector, and the monitor (32) is located at the rear end of the battery body (3).

6. The energy storage device for high-energy-consuming distribution network according to claim 5, characterized in that: A transmission cable (33) is provided at the rear end of the battery body (3), and the battery body (3) is connected to the transmitter (34) via the transmission cable (33), and an anti-electric coating is printed inside the device body (1).

7. The energy storage device for high-energy-consuming distribution network according to claim 6, characterized in that: A protective shell (4) is provided on the top of the device body (1), a main controller (35) is provided inside the protective shell (4), and an integrated control board (36) is connected to the front end of the main controller (35), and the main controller (35) can be electrically connected to the battery body (3) and the drive motor (7).

8. The energy storage device for high-energy-consuming distribution network according to claim 7, characterized in that: The front end of the device body (1) is provided with an electric control door (37), which is connected to the front end of the device body (1) via a hinge, and a sealing gasket (38) is provided on the outside of the front end of the electric control door (37), and the front end of the electric control door (37) is connected to a sealing joint (39).

9. The energy storage device for high-energy consumption distribution network according to claim 8, characterized in that: The rear end of the sealing joint (39) is electrically connected to the battery body (3), and the main controller (35) is electrically connected to the sealing joint (39).

Citation Information

Patent Citations

  • Box-type transformer substation with real-time monitoring and alarming function

    CN112787249A

  • Photovoltaic absorption energy storage equipment for low-voltage power distribution network

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  • Rapid positioning cutting device for sapphire processing

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  • Electric energy storage lithium battery pack with efficient heat dissipation

    CN210200916U