Modularized mobile energy storage power supply
Through the design of the automatic ejection mechanism and liquid-cooling and air-cooling mechanism, the problems of difficulty in separation of the energy storage power plug and poor heat dissipation are solved, convenient separation and efficient heat dissipation are achieved, and the safety and performance of the energy storage power supply are improved.
Patent Information
- Application Number
- CN202510342537.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-21
- Publication Date
- 2025-07-18
AI Technical Summary
It is difficult to separate the plug and socket when the energy storage power supply is in use, and it is highly risky to operate with one hand, and the heat dissipation effect is poor, which affects the performance of use.
An automatic ejection mechanism and liquid-cooling and air-cooling mechanism are designed. The automatic ejection mechanism realizes convenient separation of the plug through gear transmission. The liquid-cooling mechanism cools down through cooling liquid circulation, and the air-cooling mechanism dissipates heat through wind power.
It realizes convenient separation between the plug and the socket, reduces the risk of one-hand operation, and effectively dissipates heat through coolant and wind, improving the safety and performance of the energy storage power supply.
Smart Images

Figure CN120341640A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of energy storage power supplies, and more particularly to a modular mobile energy storage power supply. Background Art
[0002] Energy storage power supplies are an important part of the power system. They can store electrical energy and release it when needed to meet the changing power demands. An energy storage power supply is a device that can convert electrical energy into other forms of energy for storage and reverse it back into electrical energy when needed. It can achieve electrical energy storage through various technologies, such as battery energy storage, supercapacitor energy storage, mechanical energy storage, etc. Energy storage power supplies play an important role in the power system, especially in the field of renewable energy, such as solar and wind power generation, where they play a key role.
[0003] The working principle of an energy storage power supply is based on the conversion and storage of energy. When the power supply is sufficient, the energy storage power supply will absorb the excess electrical energy and convert it into other forms of energy for storage. When the power demand increases or the supply is insufficient, the energy storage power supply will release the stored energy and convert it into electrical energy to meet the needs of the power system. This process can be completed in a short time, making the power system more stable and reliable.
[0004] When using an energy storage power supply, the external plug needs to be connected to and separated from the socket hole. It is relatively easy to connect the plug to the socket hole, but it is difficult to separate. Especially, it is more difficult to perform the separation operation of the plug and the socket hole with one hand. Moreover, when separating with one hand, the finger is likely to touch the metal contact piece of the plug that has not been completely separated from the socket hole, which is relatively dangerous.
[0005] When using an energy storage power supply, it needs to continuously discharge or store electricity and may supply multiple devices simultaneously. At this time, the temperature of the energy storage power supply itself will rise rapidly. Currently, the energy storage power supply cannot dissipate heat well, which will affect the performance of the energy storage power supply. Summary of the Invention
[0006] In order to overcome the above-mentioned defects of the prior art, an embodiment of the present invention provides a modular mobile energy storage power supply to solve the technical problems raised in the background art.
[0007] To achieve the above object, the present invention provides the following technical solution: A modular mobile energy storage power supply, including an energy storage power supply, one end of the side of the energy storage power supply is fixedly connected with a five-hole AC socket, the other side of the side of the energy storage power supply is fixedly connected with a vehicle charger interface, an automatic ejection mechanism is provided on the side of the five-hole AC socket, the automatic ejection mechanism is located on the side of the energy storage power supply and is movably connected with the energy storage power supply, one side of the bottom end of the energy storage power supply is fixedly connected with a liquid cooling mechanism, and the other side of the bottom end of the energy storage power supply is fixedly connected with an air cooling mechanism;
[0008] The automatic ejection mechanism includes a sliding ring groove opened on the side of the energy storage power supply, L-shaped grooves are provided on both sides of the sliding ring groove, a top ejection component is movably connected in the L-shaped groove, a first limit groove is opened on the side of the sliding ring groove close to the energy storage power supply, and a second limit groove is opened on the side of the sliding ring groove far from the energy storage power supply, a gear avoidance groove is opened inside the sliding ring groove, a sliding component is movably connected in the sliding ring groove, the top ejection component is movably connected with the energy storage power supply, and the top ejection component is located at the position where the five-hole AC socket is located.
[0009] In a preferred embodiment, a USB interface and a TYPE-C interface are sequentially provided on the side of the vehicle charger interface close to the five-hole AC socket, an LCD display screen is fixedly connected to the top end of the side of the energy storage power supply where the five-hole AC socket is located, a main switch is fixedly connected to the middle of the side of the energy storage power supply where the five-hole AC socket is located, a handle is movably connected to the top end of the energy storage power supply, an LED lamp is fixedly connected to the top end of the side of the energy storage power supply far from the five-hole AC socket, an LED switch is fixedly connected to the middle of the side of the energy storage power supply far from the five-hole AC socket, and a three-hole AC socket is fixedly connected to the side of the energy storage power supply.
[0010] In a preferred embodiment, the number of the top ejection components is four, the number of the five-hole AC sockets is two, the four top ejection components are respectively located at the socket holes of the two five-hole AC sockets, the automatic ejection mechanism is located in the middle of the two five-hole AC sockets, and the four top ejection components are mirror symmetric about the center of the two five-hole AC sockets.
[0011] In a preferred embodiment, the sliding component includes a manually rotatable manual rotating plate, a connecting shaft is fixedly connected to the side of the manual rotating plate close to the energy storage power supply, a limiting cylinder is movably sleeved on the side of the connecting shaft far from the manual rotating plate, a limiting plate is movably connected inside the limiting cylinder, a connecting rod is fixedly connected to the side of the limiting plate far from the connecting shaft, a first slider is fixedly connected to the side of the connecting rod far from the limiting cylinder, a spring is sleeved on the side of the connecting rod, and the side of the first slider is adapted to the first limit groove.
[0012] In a preferred embodiment, a fixed rod is fixedly connected inside the limiting cylinder, a limiting hole adapted to the fixed rod is opened inside the limiting plate, an output gear is fixedly connected to the side surface of the connecting shaft, and a second slider is movably sleeved on the side surface of the connecting shaft. The side surface of the second slider is adapted to the second limiting groove, and the gear avoidance groove allows the output gear to move without contacting the energy storage power supply.
[0013] In a preferred embodiment, the ejecting assembly includes a transmission gear meshing with the output gear inside the sliding assembly. A threaded rod is fixedly connected to the side surface of the transmission gear. An L-shaped plate is threadedly connected to the side surface of the threaded rod away from the transmission gear. An ejecting rod is fixedly connected to the side surface of the L-shaped plate away from the energy storage power supply. A limiting rod is movably connected inside the L-shaped plate.
[0014] In a preferred embodiment, the liquid cooling mechanism includes a liquid storage tank capable of storing coolant. A water pump is fixedly connected to the bottom end inside the liquid storage tank. A connecting channel is fixedly connected to the top end of the water pump. A first cooling pipe and a second cooling pipe are fixedly connected to the two ends of the side surface of the connecting channel away from the water pump in sequence. The first cooling pipe and the second cooling pipe surround the side surface of the energy storage power supply, and the outlets of the first cooling pipe and the second cooling pipe are located at the top end of the liquid storage tank.
[0015] In a preferred embodiment, the air cooling mechanism includes a supporting block for support. A cooling plate is fixedly connected to the side surface of the supporting block close to the liquid cooling mechanism. A servo motor is fixedly connected inside the supporting block. An output shaft is fixedly connected to the side surface of the servo motor close to the cooling plate. A blade group is fixedly connected to the side surface of the output shaft away from the servo motor. A gas channel is opened inside the cooling plate, and the blade group is located inside the gas channel.
[0016] In a preferred embodiment, gas branch pipes are fixedly connected to the two ends of the side surface of the gas channel away from the blade group. A filter screen is fixedly connected to the top end of the gas branch pipe. A drain hole is opened at the bottom end of the side surface of the gas branch pipe away from the output shaft. Air intake grooves are opened on both sides of the output shaft, and filter plates are fixedly connected inside the air intake grooves.
[0017] The technical effects and advantages of the present invention:
[0018] 1. When the present invention separates the plug from the five-hole AC socket, the sliding assembly is moved to the position where it needs to be separated from the five-hole AC socket. The manual rotating plate inside the sliding assembly is pressed down and rotated. When the manual rotating plate rotates, it drives the transmission gear to rotate through the output gear. When the transmission gear rotates, it drives the threaded rod to rotate and makes the L-shaped plate drive the ejecting rod to move. When the ejecting rod moves, it ejects outward from the inside of the five-hole AC socket, automatically separating the plug from the five-hole AC socket;
[0019] 2. When the present invention dissipates heat, the water pump starts to pump the coolant in the liquid storage tank into the connection channel. After passing through the connection channel, the coolant enters the first cooling pipe and the second cooling pipe. After the coolant entering the first cooling pipe and the second cooling pipe cools down the energy storage power supply, the coolant flows back into the liquid storage tank again, and the coolant can be recycled.
[0020] 3. The connection channel and the second cooling pipe of the present invention will pass through the cooling plate, thereby cooling the cooling plate. And when the servo motor starts, the output shaft drives the blade group to rotate. The wind generated when the blade group rotates will blow into the gas channel and blow upward through the gas branch pipe, thereby dissipating heat from the energy storage power supply again. And the wind in the gas channel is also in the cooling plate. Therefore, the cooling plate has both low-temperature coolant and cold wind passing through, so that the temperature below the energy storage power supply is reduced, which is convenient for the cooling and heat dissipation work of the energy storage power supply. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 It is a schematic front view of the whole of the present invention.
[0022] Figure 2 It is a schematic rear view of the whole of the present invention.
[0023] Figure 3 It is a schematic diagram of the overall structure of the automatic ejection mechanism of the present invention.
[0024] Figure 4 It is a schematic diagram of the structure of the automatic ejection mechanism of the present invention.
[0025] Figure 5 It is a schematic diagram of the structure of the sliding component and the ejection component of the present invention.
[0026] Figure 6 It is a schematic diagram of the internal structure of the automatic ejection mechanism of the present invention in the energy storage power supply.
[0027] Figure 7 It is a schematic exploded view of the sliding component and the ejection component of the present invention.
[0028] Figure 8 It is a schematic diagram of the liquid cooling mechanism of the present invention.
[0029] Figure 9 It is a schematic diagram of the air cooling mechanism of the present invention.
[0030] Figure 10 It is a schematic sectional view of the cooling plate of the present invention.
[0031] The reference numerals are: 1, energy storage power supply; 2, handle; 3, five-hole AC socket; 4, automatic ejection mechanism; 401, sliding ring groove; 402, L-shaped groove; 403, gear avoidance groove; 404, first limiting groove; 405, second limiting groove; 406, sliding assembly; 4061, manual rotating plate; 4062, connecting shaft; 4063, limiting cylinder; 4064, limiting plate; 4065, connecting rod; 4066, first slider; 4067, spring; 4068, second slider; 4069, fixed rod; 4070, output gear; 407, ejection assembly; 4071, driving gear; 4072, threaded rod; 4073, L-shaped plate; 4074, ejection rod; 4075, limiting rod; 5, liquid cooling mechanism; 501, liquid storage tank; 502, water pump; 503, connecting channel; 504, first cooling pipe; 505, second cooling pipe; 6, air cooling mechanism; 601, support block; 602, cooling plate; 603, filter screen; 604, servo motor; 605, output shaft; 606, blade group; 607, filter plate; 608, gas channel; 609, gas branch pipe; 610, drain hole; 7, LCD display screen; 8, main switch; 9, USB interface; 10, TYPE-C interface; 11, vehicle charger interface; 12, three-hole AC socket; 13, LED switch; 14, LED lamp. Detailed implementation manners
[0032] The technical solutions in the present invention will be clearly and completely described below in conjunction with the accompanying drawings in the present invention. In addition, the forms of each structure described in the following embodiments are merely examples. A modular mobile energy storage power supply according to the present invention is not limited to the structures described in the following embodiments. All other embodiments obtained by those of ordinary skill in the art without creative efforts fall within the scope of protection of the present invention.
[0033] Refer to Figure 1 With Figure 2, the present invention provides a modular mobile energy storage power supply, which includes an energy storage power supply 1. One end of the side of the energy storage power supply 1 is fixedly connected with a five-hole AC socket 3, and the other side of the side of the energy storage power supply 1 is fixedly connected with a vehicle charger interface 11. An automatic ejection mechanism 4 is provided on the side of the five-hole AC socket 3. The automatic ejection mechanism 4 is located on the side of the energy storage power supply 1 and is movably connected to the energy storage power supply 1. One side of the bottom end of the energy storage power supply 1 is fixedly connected with a liquid cooling mechanism 5, and the other side of the bottom end of the energy storage power supply 1 is fixedly connected with an air cooling mechanism 6. The side of the vehicle charger interface 11 close to the five-hole AC socket 3 is successively provided with a USB interface 9 and a TYPE-C interface 10. The top end of the side of the energy storage power supply 1 where the five-hole AC socket 3 is located is fixedly connected with an LCD display screen 7, and the middle part of the side of the energy storage power supply 1 where the five-hole AC socket 3 is located is fixedly connected with a main switch 8. The top end of the energy storage power supply 1 is movably connected with a handle 2. The top end of the side of the energy storage power supply 1 away from the five-hole AC socket 3 is fixedly connected with an LED lamp 14, and the middle part of the side of the energy storage power supply 1 away from the five-hole AC socket 3 is fixedly connected with an LED switch 13. A three-hole AC socket 12 is fixedly connected to the side of the energy storage power supply 1.
[0034] In the embodiment of the present application, when the energy storage power supply 1 of the present application is in use, the five-hole AC socket 3, the USB interface 9, the TYPE-C interface 10, the vehicle charger interface 11 and the three-hole AC socket 12 can adapt to different devices for power supply, making the adaptability of the present application stronger when in use. And the LCD display screen 7 can display the usage situation of the energy storage power supply 1, facilitating the user to understand the situation of the energy storage power supply 1 itself. And when the LED switch 13 is pressed, the LED lamp 14 will emit light, playing a role in lighting. Therefore, the present invention can be used well in different environments.
[0035] Referring to Figure 3 , Figure 4 , Figure 5 and Figure 6 , the automatic ejection mechanism 4 includes a sliding ring groove 401 opened on the side of the energy storage power supply 1. Both sides of the sliding ring groove 401 are provided with L-shaped grooves 402. An ejection component 407 is movably connected in the L-shaped grooves 402. A first limiting groove 404 is opened on the side of the sliding ring groove 401 close to the energy storage power supply 1, and a second limiting groove 405 is opened on the side of the sliding ring groove 401 away from the energy storage power supply 1. A gear avoidance groove 403 is opened inside the sliding ring groove 401. A sliding component 406 is movably connected in the sliding ring groove 401. The ejection component 407 is movably connected to the energy storage power supply 1, and the ejection component 407 is located at the position where the five-hole AC socket 3 is located. The number of the ejection components 407 is four, and the number of the five-hole AC sockets 3 is two. The four ejection components 407 are respectively located at the socket holes of the two five-hole AC sockets 3. The automatic ejection mechanism 4 is located in the middle of the two five-hole AC sockets 3, and the four ejection components 407 are mirror-symmetrical about the center of the two five-hole AC sockets 3.
[0036] In the embodiment of the present application, the sliding ring groove 401 opened on the side of the energy storage power supply 1 allows the sliding component 406 to move. When the sliding component 406 moves in the sliding ring groove 401, it can be respectively connected to the four ejecting components 407 to eject the plugs at different positions on the side of the five-hole AC socket 3. The number of five-hole AC sockets 3 is two, and there are four plug-connectable positions in total for the two five-hole AC sockets 3. The four plug-connectable positions respectively correspond to the ejecting components 407. When the sliding component 406 moves, it selects to connect with the appropriate ejecting component 407 to avoid ejecting the plugs that do not need to be separated, making the application more flexible when in use. Moreover, by means of the movement of one sliding component 406 to adapt to the ejecting component 407 instead of directly using four sliding components 406, it avoids the problem that when the space is insufficient, the sliding component 406 is designed to be small and difficult to operate during work.
[0037] Refer to Figure 5 、 Figure 6 And Figure 7 , the sliding component 406 includes a manually rotatable manual rotating plate 4061. A connecting shaft 4062 is fixedly connected to the side of the manual rotating plate 4061 close to the energy storage power supply 1. A limiting cylinder 4063 is movably sleeved on the side of the connecting shaft 4062 away from the manual rotating plate 4061. A limiting plate 4064 is movably connected inside the limiting cylinder 4063. A connecting rod 4065 is fixedly connected to the side of the limiting plate 4064 away from the connecting shaft 4062. A first slider 4066 is fixedly connected to the side of the connecting rod 4065 away from the limiting cylinder 4063. A spring 4067 is sleeved on the side of the connecting rod 4065. The side of the first slider 4066 is adapted to the first limiting groove 404. A fixed rod 4069 is fixedly connected inside the limiting cylinder 4063. A limiting hole adapted to the fixed rod 4069 is opened in the limiting plate 4064. An output gear 4610 is fixedly connected to the side of the connecting shaft 4062. A second slider 4068 is movably sleeved on the side of the connecting shaft 4062. The side of the second slider 4068 is adapted to the second limiting groove 405. The gear avoidance groove 403 allows the output gear 4610 to move without contacting the energy storage power supply 1.
[0038] In the embodiment of the present application, when the manual turning plate 4061 is pressed down, it drives the connecting shaft 4062, the limiting cylinder 4063 and the output gear 4610 to move and compress the connecting rod 4065. When the output gear 4610 moves, it meshes with the transmission gear 4071. At this time, when the manual turning plate 4061 is rotated, the output gear 4610 will be driven to rotate by the connecting shaft 4062. When the output gear 4610 rotates, the ejecting assembly 407 will operate to perform the ejecting work. When the manual turning plate 4061 is released, the compressed connecting rod 4065 resets, causing the output gear 4610 to move outward. The output gear 4610 separates from the transmission gear 4071. At this time, rotating the manual turning plate 4061 will not cause the ejecting rod 4074 to suddenly eject. And when the gear avoidance groove 403 allows the entire sliding assembly 406 to move in the sliding ring groove 401, the output gear 4610 will not contact the energy storage power supply 1. Also, when the output gear 4610 moves as the manual turning plate 4061 is pressed down, it will not contact the energy storage power supply 1. The side surface of the first slider 4066 is adapted to the first limiting groove 404, and the side surface of the second slider 4068 is adapted to the second limiting groove 405, so that the entire sliding assembly 406 will not tilt when it moves. And the first slider 4066 and the second slider 4068 are in a certain direction. Therefore, when the manual turning plate 4061 rotates, the first slider 4066 and the second slider 4068 will not rotate, and the connecting rod 4065 and the limiting plate 4064 connected to the first slider 4066 will not rotate either. And the limiting plate 4064 is connected to the limiting cylinder 4063 through two fixing rods 4069, and the limiting cylinder 4063 will not rotate either. Therefore, neither side of the spring 4067 will rotate, avoiding damage to the spring 4067.
[0039] Refer to Figure 5 , Figure 6 and Figure 7 , the ejecting assembly 407 includes a transmission gear 4071 that meshes with the output gear 4610 inside the sliding assembly 406. A threaded rod 4072 is fixedly connected to the side surface of the transmission gear 4071. An L-shaped plate 4073 is threadedly connected to the side surface of the threaded rod 4072 away from the transmission gear 4071. An ejecting rod 4074 is fixedly connected to the side surface of the L-shaped plate 4073 away from the energy storage power supply 1. A limiting rod 4075 is movably connected inside the L-shaped plate 4073.
[0040] In the embodiment of the present application, when the output gear 4610 meshes with the transmission gear 4071, the threaded rod 4072 can be rotated, and then the L-shaped plate 4073 drives the ejector rod 4074 to move, so as to eject the plug head. The limiting rod 4075 can keep the position of the L-shaped plate 4073, making the movement of the L-shaped plate 4073 more stable. In addition, it should be noted that through holes for the transmission gear 4071 to come out of the L-shaped groove 402 and connect with the output gear 4610 are opened on the side of the L-shaped groove 402. Therefore, after the sliding assembly 406 moves, it can mesh with different fixed transmission gears 4071.
[0041] Referring to Figure 2 With Figure 8 , the liquid cooling mechanism 5 includes a liquid storage tank 501 that can store coolant. A water pump 502 is fixedly connected to the bottom end inside the liquid storage tank 501. A connection channel 503 is fixedly connected to the top end of the water pump 502. A first cooling pipe 504 and a second cooling pipe 505 are fixedly connected to the two ends of the side of the connection channel 503 away from the water pump 502 in sequence. The first cooling pipe 504 and the second cooling pipe 505 surround the side of the energy storage power supply 1, and the outlets of the first cooling pipe 504 and the second cooling pipe 505 are located at the top end of the liquid storage tank 501.
[0042] In the embodiment of the present application, the coolant in the liquid storage tank 501 is pumped into the connection channel 503. After passing through the connection channel 503, the coolant enters the first cooling pipe 504 and the second cooling pipe 505. After the coolant in the first cooling pipe 504 and the second cooling pipe 505 cools down the energy storage power supply 1, the coolant flows back into the liquid storage tank 501 again, and the coolant can be recycled. The first cooling pipe 504 surrounds the side of the energy storage power supply 1 to ensure the cooling and heat dissipation effect of the energy storage power supply 1.
[0043] Referring to Figure 2 , Figure 9 And Figure 10 , the air cooling mechanism 6 includes a support block 601 for support. A cooling plate 602 is fixedly connected to the side of the support block 601 close to the liquid cooling mechanism 5. A servo motor 604 is fixedly connected to the inside of the support block 601. An output shaft 605 is fixedly connected to the side of the servo motor 604 close to the cooling plate 602. A blade group 606 is fixedly connected to the side of the output shaft 605 away from the servo motor 604. An air passage 608 is opened inside the cooling plate 602. The blade group 606 is located in the air passage 608. Air distribution pipes 609 are fixedly connected to the two ends of the side of the air passage 608 away from the blade group 606. A filter net 603 is fixedly connected to the top end of the air distribution pipe 609. Drainage holes 610 are opened at the bottom end of the side of the air distribution pipe 609 away from the output shaft 605. Air intake grooves are opened on both sides of the output shaft 605, and filter plates 607 are fixedly connected to the inside of the air intake grooves.
[0044] In the embodiment of the present application, when the servo motor 604 starts and the output shaft 605 drives the blade group 606 to rotate, the wind generated when the blade group 606 rotates will blow into the gas passage 608, and blow upward through the gas branch pipe 609. The start of the gas branch pipe 609 is carried out on the side of the gas passage 608 far from the blade group 606, so that the wind moves a longer distance in the cooling plate 602, which is convenient for cooling the cooling plate 602. A filter screen 603 is provided above the gas branch pipe 609 to prevent dust from entering the gas branch pipe 609 and blocking the gas branch pipe 609. A blocking block is provided inside the drain hole 610. When the blocking block is placed inside the drain hole 610, gas can be prevented from being discharged from the drain hole 610. When there is a certain amount of water vapor in the drain hole 610, the blocking block is taken out to facilitate the discharge of the water vapor.
[0045] Working principle of the present invention: When the energy storage power supply 1 is in use, press the main switch 8 to make the energy storage power supply 1 in the on state. At this time, the five-hole AC socket 3, TYPE-C interface 10, USB interface 9, car charger interface 11 and three-hole AC socket 12 on the side of the energy storage power supply 1 can all perform power supply work. When in use, connect the plug of the device to be used to the five-hole AC socket 3. At this time, the energy storage power supply 1 can supply power to the device;
[0046] When the device is not in use, at this time, the plug needs to be separated from the five-hole AC socket 3. There are two five-hole AC sockets 3 on the side of the energy storage power supply 1, and each five-hole AC socket 3 can perform power supply use. Move the sliding component 406 in the sliding ring groove 401 to the position of the five-hole AC socket 3 where the plug needs to be separated. The sliding ring groove 401 is annular, as Figure 3 and Figure 4 shown. Take the five-hole AC socket 3 close to the TYPE-C interface 10 as the left five-hole AC socket 3. There are a total of four plug-connectable positions above, below, above and below the right five-hole AC socket 3. Move the sliding component 406 to the four corners of the sliding ring groove 401 respectively. At this time, it is adapted to all the plug-connectable positions of the five-hole AC socket 3.
[0047] Select the position of the plug to be separated. At this time, move the sliding component 406 to the corresponding position, press the manual rotating plate 4061 in the sliding component 406 into the energy storage power supply 1. When the manual rotating plate 4061 is pressed, it drives the connecting shaft 4062, the limiting cylinder 4063 and the output gear 4610 to move and compress the connecting rod 4065. When the output gear 4610 moves and meshes with the transmission gear 4071, when the manual rotating plate 4061 is rotated at this time, the output gear 4610 will be driven to rotate by the connecting shaft 4062. When the output gear 4610 rotates, it will drive the transmission gear 4071 to rotate. When the transmission gear 4071 rotates, it drives the threaded rod 4072 to rotate and the threaded rod 4072 drives the ejector rod 4074 to move. When the ejector rod 4074 moves, it moves from the position where the five-hole AC socket 3 is located to the outside of the energy storage power supply 1, so as to eject the plug connected to the five-hole AC socket 3, realizing the separation of the plug from the five-hole AC socket 3. After the plug is separated, release the manual rotating plate 4061, and the compressed connecting rod 4065 resets to move the output gear 4610 outward. The output gear 4610 is separated from the transmission gear 4071. At this time, rotating the manual rotating plate 4061 will not cause the ejector rod 4074 to suddenly eject;
[0048] When the energy storage power supply 1 works, the water pump 502 starts to pump the coolant in the liquid storage tank 501 into the connection channel 503. After passing through the connection channel 503, the coolant enters the first cooling pipe 504 and the second cooling pipe 505. After the coolant entering the first cooling pipe 504 and the second cooling pipe 505 cools down the energy storage power supply 1, the coolant flows back into the liquid storage tank 501 again, and the coolant can be recycled. And the first cooling pipe 504 and the second cooling pipe 505 will pass through the cooling plate 602 to cool down the cooling plate 602. When the servo motor 604 starts, it drives the blade group 606 to rotate through the output shaft 605. The wind generated when the blade group 606 rotates will blow into the gas channel 608 and blow upward through the gas branch pipe 609, so as to dissipate heat from the energy storage power supply 1. And the gas blown out by the blade group 606 will move in the cooling plate 602, so that the inside of the cooling plate 602 always maintains a relatively low temperature state. Therefore, when the energy storage power supply 1 works, the temperature below it is relatively low, which is convenient for reducing the temperature of the energy storage power supply 1.
[0049] Finally: The above are only the preferred embodiments of the present invention and are not used to limit the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.
Claims
1. A modular mobile energy storage power supply, comprising an energy storage power supply (1), characterized in that: One end of the side of the energy storage power supply (1) is fixedly connected to a five-hole AC socket (3), and the other side of the side of the energy storage power supply (1) is fixedly connected to a vehicle charger interface (11). An automatic ejection mechanism (4) is provided on the side of the five-hole AC socket (3). The automatic ejection mechanism (4) is located on the side of the energy storage power supply (1) and is movably connected to the energy storage power supply (1). One side of the bottom end of the energy storage power supply (1) is fixedly connected to a liquid cooling mechanism (5), and the other side of the bottom end of the energy storage power supply (1) is fixedly connected to an air cooling mechanism (6). The automatic ejection mechanism (4) includes a sliding ring groove (401) opened on the side of the energy storage power supply (1). L-shaped grooves (402) are provided on both sides of the sliding ring groove (401). A top ejection component (407) is movably connected in the L-shaped groove (402). A first limit groove (404) is opened on the side of the sliding ring groove (401) close to the energy storage power supply (1), and a second limit groove (405) is opened on the side of the sliding ring groove (401) away from the energy storage power supply (1). A gear avoidance groove (403) is opened inside the sliding ring groove (401). A sliding component (406) is movably connected in the sliding ring groove (401). The top ejection component (407) is movably connected to the energy storage power supply (1), and the top ejection component (407) is located at the position where the five-hole AC socket (3) is located.
2. The modular mobile energy storage power supply according to claim 1, characterized in that: A USB interface (9) and a TYPE-C interface (10) are successively provided on the side of the vehicle charger interface (11) close to the five-hole AC socket (3). An LCD display screen (7) is fixedly connected to the top end of the side of the energy storage power supply (1) where the five-hole AC socket (3) is located, and a main switch (8) is fixedly connected to the middle of the side of the energy storage power supply (1) where the five-hole AC socket (3) is located. A handle (2) is movably connected to the top end of the energy storage power supply (1). An LED lamp (14) is fixedly connected to the top end of the side of the energy storage power supply (1) away from the five-hole AC socket (3), and an LED switch (13) is fixedly connected to the middle of the side of the energy storage power supply (1) away from the five-hole AC socket (3). A three-hole AC socket (12) is fixedly connected to the side of the energy storage power supply (1).
3. A modular mobile energy storage power supply according to claim 1, characterized in that: The number of the top ejection components (407) is four, and the number of the five-hole AC sockets (3) is two. The four top ejection components (407) are respectively located at the socket holes of the two five-hole AC sockets (3). The automatic ejection mechanism (4) is located in the middle of the two five-hole AC sockets (3), and the four top ejection components (407) are mirror-symmetrical about the center of the two five-hole AC sockets (3).
4. A modular mobile energy storage power supply according to claim 1, characterized in that: The sliding component (406) includes a manually rotatable manual rotating plate (4061). A connecting shaft (4062) is fixedly connected to the side of the manual rotating plate (4061) close to the energy storage power supply (1). A limiting cylinder (4063) is movably sleeved on the side of the connecting shaft (4062) away from the manual rotating plate (4061). A limiting plate (4064) is movably connected inside the limiting cylinder (4063). A connecting rod (4065) is fixedly connected to the side of the limiting plate (4064) away from the connecting shaft (4062). A first slider (4066) is fixedly connected to the side of the connecting rod (4065) away from the limiting cylinder (4063). A spring (4067) is sleeved on the side of the connecting rod (4065). The side of the first slider (4066) is adapted to the first limiting groove (404).
5. A modular mobile energy storage power supply according to claim 4, characterized in that: A fixed rod (4069) is fixedly connected inside the limiting cylinder (4063). A limiting hole adapted to the fixed rod (4069) is formed inside the limiting plate (4064). An output gear (4610) is fixedly connected to the side of the connecting shaft (4062). A second slider (4068) is movably sleeved on the side of the connecting shaft (4062). The side of the second slider (4068) is adapted to the second limiting groove (405). The gear avoidance groove (403) allows the output gear (4610) to move without contacting the energy storage power supply (1).
6. The modular mobile energy storage power supply according to claim 1, wherein: The ejecting component (407) includes a transmission gear (4071) meshing with the output gear (4610) inside the sliding component (406). A threaded rod (4072) is fixedly connected to the side of the transmission gear (4071). An L-shaped plate (4073) is threadedly connected to the side of the threaded rod (4072) away from the transmission gear (4071). An ejecting rod (4074) is fixedly connected to the side of the L-shaped plate (4073) away from the energy storage power supply (1). A limiting rod (4075) is movably connected inside the L-shaped plate (4073).
7. A modular mobile energy storage power supply according to claim 1, characterized in that: The liquid cooling mechanism (5) includes a liquid storage tank (501) capable of storing coolant. A water pump (502) is fixedly connected to the bottom end inside the liquid storage tank (501). A connecting channel (503) is fixedly connected to the top end of the water pump (502). A first cooling pipe (504) and a second cooling pipe (505) are fixedly connected to the two ends of the side of the connecting channel (503) away from the water pump (502) in sequence. The first cooling pipe (504) and the second cooling pipe (505) surround the side of the energy storage power supply (1). The outlets of the first cooling pipe (504) and the second cooling pipe (505) are located at the top end of the liquid storage tank (501).
8. A modular mobile energy storage power supply according to claim 1, characterized in that: The air-cooling mechanism (6) includes a support block (601) for support. A cooling plate (602) is fixedly connected to the side of the support block (601) close to the liquid-cooling mechanism (5). A servo motor (604) is fixedly connected to the inside of the support block (601). An output shaft (605) is fixedly connected to the side of the servo motor (604) close to the cooling plate (602). A blade group (606) is fixedly connected to the side of the output shaft (605) away from the servo motor (604). A gas passage (608) is formed inside the cooling plate (602), and the blade group (606) is located inside the gas passage (608).
9. A modular mobile energy storage power supply according to claim 8, characterized in that: Gas branch pipes (609) are fixedly connected to both ends of the side of the gas passage (608) away from the blade group (606). A filter net (603) is fixedly connected to the top of the gas branch pipe (609). A drain hole (610) is formed at the bottom of the side of the gas branch pipe (609) away from the output shaft (605). Air intake grooves are formed on both sides of the output shaft (605), and a filter plate (607) is fixedly connected to the inside of the air intake grooves.