Energy storage power supply and processing device thereof
By combining water-cooled and air-cooled heat dissipation methods, the problem of poor heat dissipation effect of energy storage power supply is solved, efficient heat dissipation and automated detection of the battery panel are achieved, and the service life and installation reliability of the battery panel are improved.
Patent Information
- Application Number
- CN202510772040.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-11
- Publication Date
- 2025-07-11
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The heat dissipation effect of existing energy storage power supplies is average, especially high-power energy storage power supplies, which leads to a reduced service life.
The heat dissipation method combined with water cooling and air cooling is adopted, and the fan and water pump are driven by a dual-axis motor to drive the rotating shaft to realize the movement of the interlaced heat dissipation pipe, combined with the shaking component to improve the heat dissipation efficiency, and the installation firmness and connection effect of the battery panel are ensured through the detection component.
Effectively reduce the temperature of the panel, improve service life, and reduce manual operation through automated inspection and cleaning components, ensuring the reliability of panel installation and the effectiveness of heat sink connections.
Smart Images

Figure CN120300359A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of energy storage power supply, and in particular to an energy storage power supply and a processing device thereof. Background Art
[0002] Energy storage power supply is a device that can store electrical energy. It can convert excess electrical energy into chemical energy, mechanical energy or thermal energy and store it so that it can be converted into electrical energy for people to use when needed. Energy storage power supply is widely used in home backup power supply, electric vehicle charging piles, solar energy storage system, emergency lighting system and other fields; At present, most of the energy storage power supplies on the market have simple structures, and basically use air cooling or water cooling to dissipate heat, and the manufacturing cost is low. However, in the actual working process, especially for some energy storage power supplies with higher power, only using air cooling or water cooling to dissipate heat has a general heat dissipation effect, which will lead to a reduction in the service life of the energy storage power supply. Therefore, an energy storage power supply is provided; Moreover, the special energy storage power supply proposed in this scheme adopts a special combination of water cooling and air cooling to dissipate heat, and the water cooling and air cooling promote each other, so a unique energy storage power supply processing device is designed. Summary of the invention
[0003] The purpose of the present invention is to solve the shortcomings of the prior art and to propose an energy storage power supply and a processing device thereof.
[0004] The present invention adopts the following technical solutions: A power supply for energy storage comprises a box body, a box cover is clamped on the upper side of the box body, a mounting frame is fixedly connected inside the box body, a plurality of battery panels are evenly clamped on the upper side of the mounting frame, a heat dissipation component for the battery panels is installed in the box body, and the heat dissipation component comprises two fans and a water tank fixedly installed in the box body, a double-axis motor is fixedly connected in the box body, a rotating shaft is fixedly installed at the output ends of both sides of the double-axis motor, the two rotating shafts are transmission-connected to the fan blade shafts of the fans through a first pulley assembly, a circulation pipe is fixedly connected between the two water tanks, a circulation pump is fixedly connected to the outside of the two water tanks, a water outlet pipe is fixedly connected to the outside of the circulation pump, a fixed pipe is fixedly connected to the outside of the water outlet pipe, the fixed pipe is fixedly connected to the box body, a plurality of hoses are fixedly connected to the outside of the fixed pipe, the plurality of hoses are arranged in pairs, and a heat dissipation pipe is fixedly connected between each group of the hoses, and a shaking component for improving the heat dissipation efficiency of the heat dissipation pipe is installed in the box body.
[0005] Preferably, the shaking assembly includes two transmission rods rotatably installed in the box body, the two transmission rods and the outer side of the rotating shaft are fixedly connected with bevel gears, and the bevel gears are meshed with each other, four reciprocating screws are rotatably installed in the box body, and the two reciprocating screws on the same side are connected to the transmission rod through the second pulley assembly, and two moving frames are slidably connected in the box body, each of the heat dissipation pipes is fixedly passed through the moving frame, and reciprocating blocks are fixedly connected at both ends of the two moving frames, and the reciprocating screw threads pass through the reciprocating blocks.
[0006] Preferably, two handles are rotatably connected to the upper side of the box cover, and anti-slip rubber pads are fixedly connected to the inner sides of the two handles.
[0007] A processing device for an energy storage power source comprises a processing table, wherein an electric push rod is fixedly connected to the upper side of the processing table, a movable plate is fixedly connected to the output end of the electric push rod, a plurality of first fixed plates are fixedly connected to the lower side of the movable plate, the plurality of first fixed plates are grouped in pairs, each group of the first fixed plates is commonly fixedly connected to a second fixed plate, both sides of the second fixed plate are fixedly connected to telescopic cylinders, the ends of the two telescopic cylinders are fixedly connected to first clamping plates, a first spring is fixedly connected between the first clamping plates and the second fixed plates, a friction cleaning component for the surface of a battery pack is installed on the lower side of the movable plate, the friction cleaning component comprises a plurality of connecting plates, the number and position of the plurality of connecting plates are opposite to the second fixed plates, and a second spring is fixedly connected between each connecting plate and the second fixed plate. The cam is an axially coupled machine which is adapted to engage with the first gear of the control wheel, and the cam is adapted to engage with the first gear of the control wheel.
[0008] Preferably, a collision component for detecting the connection effect of the detection hose and the heat dissipation pipe is installed on the outer side of the sliding frame. The collision component includes an extension plate fixedly installed on the outer side of the sliding frame. Two limiting frames are symmetrically and fixedly connected to the lower side of the extension plate. A limiting plate is slidably connected between the two limiting frames. A third spring is fixedly connected between the limiting plate and the extension plate. A collision rod is fixedly connected to the lower side of the limiting plate. Two second clamping plates are fixedly connected to both ends of the connecting plate. A guide rod is rotatably connected between the two second clamping plates. A rotating plate is fixedly connected to the outer side of the guide rod. One end of the rotating plate is rotatably connected to a connecting cylinder. A sliding plate is fixedly connected to the outer side of the connecting cylinder. The sliding plate is slidably connected to the limiting plate. Two cams are fixedly connected to the outer sides of the two rotating shafts.
[0009] Preferably, a button is fixedly connected to the lower side of each second clamping plate.
[0010] Preferably, a detection component for detecting the battery panel and the firmness of the installation of the installation frame is installed in each connecting plate. The detection component includes a plurality of square cylinders slidably installed on both sides of the connecting plate. A fourth spring is fixedly connected between each square cylinder and the connecting plate. A square rod is fixedly connected to the lower side of each square cylinder. A third rack is fixedly connected to the lower side of the square rod. A plurality of third gears are fixedly connected to the outer sides of the two rotating shafts. The number and position of the third gears correspond to those of the third rack. The third gears are meshed with the third rack. An extrusion rod is slidably connected in each square cylinder. A fifth spring is fixedly connected between the extrusion rod and the square cylinder. A pressure sensor is also fixedly connected between the extrusion rod and the square cylinder.
[0011] Preferably, a plurality of rubber protrusions are fixedly connected to the outer side of each first clamping plate.
[0012] Preferably, a transportation component is installed on the upper side of the processing table. The transportation component includes two transmission plates fixedly installed on the upper side of the processing table. A plurality of transmission rods are fixedly connected between the two transmission plates. A transmission belt is sleeved on the outer sides of the plurality of transmission rods. A transmission motor is fixedly installed on the upper side of the processing table. One of the transmission rods is fixedly connected to the output end of the transmission motor.
[0013] The beneficial effects of the present invention are as follows: 1. First of all, the energy storage power supply designed in this solution combines two different heat dissipation methods of water cooling and air cooling, which can greatly reduce the temperature of the battery panel, keep the battery panel in a good working environment all the time, thereby improving the service life of the battery panel. And when working, the heat dissipation pipe is in a moving state, and the heat dissipation pipe is always located outside the battery panel. The heat dissipation pipe moving up and down can greatly promote the water cooling heat dissipation effect and keep the battery panel in a good working state; 2. Then, when processing the energy storage power supply, insert the battery panels to be installed between two adjacent first clamping plates. Start the electric push rod to drive the battery panels to move downward. Then, under the action of the cleaning cylinder, not only can the position adjustment operation of the battery panels be automatically completed, making all the battery panels at the same height, but also the rotating cleaning cylinder will form a cleaning effect on the surface of the battery panels due to the contact with the surface of the battery panels, maintaining the cleanliness of the battery panels and reducing the workload of workers; 3. Secondly, during the installation process of the battery panels, the collision rod will move up and down. The collision rod abuts against the hose outside the moving frame, causing the hose to move. During the installation process of the battery panels, the collision rod always abuts against the hose. After the installation of the battery panels is completed, the connection situation between the hose and the heat dissipation pipe can be observed. If there is a break between the hose and the heat dissipation pipe, it indicates that the connection effect between the hose and the heat dissipation pipe is poor, thus completing the detection operation of the connection effect between the hose and the heat dissipation pipe; 4. When the moving frame forms an obstructive effect on the button, the warning light lights up. At this time, the second clamping plate will exert a certain pressure on the moving frame. During this process, under the obstructive action of the reciprocating screw rod and the reciprocating block, the moving frame will not move. If the connection effect between the reciprocating block and the reciprocating screw rod is poor, the warning light will go out, thus reminding the staff and also indicating that the connection effect between the reciprocating block and the reciprocating screw rod is poor; 5. Finally, after the installation of the battery panels is completed, the extrusion rod abuts against the battery panels, and the pressure sensor emits corresponding electrical signals. During this process, the magnitudes of the electrical signals emitted by the pressure sensors on both sides of the battery panels can be compared. If the magnitudes of the electrical signals emitted by the pressure sensors on both sides of the battery panels are the same, it indicates that the connection effect between the battery panels and the mounting rack is good. If the magnitudes of the electrical signals emitted by the pressure sensors are different, it indicates that the connection effect between the battery panels and the mounting rack is average and timely inspection is required. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Figure 1 is a schematic structural diagram of an energy storage power supply proposed by the present invention; Figure 2 is an internal connection schematic diagram of an energy storage power supply proposed by the present invention; Figure 3 is a connection schematic diagram of a water tank, a fixed frame, and a heat dissipation pipe in an energy storage power supply proposed by the present invention; Figure 4 is a schematic structural diagram of a processing device for an energy storage power supply proposed by the present invention; Figure 5 is a schematic structural diagram of a processing table in a processing device for an energy storage power supply proposed by the present invention; Figure 6 is a connection schematic diagram of an electric push rod and a moving plate in a processing device for an energy storage power supply proposed by the present invention; Figure 7 The bottom view connection schematic diagram of the moving plate in a processing device for an energy storage power supply proposed by the present invention; Figure 8 The connection schematic diagram of the sliding frame and the connecting plate in a processing device for an energy storage power supply proposed by the present invention; Figure 9 The sectional view connection schematic diagram of the sliding frame in a processing device for an energy storage power supply proposed by the present invention; Figure 10 The connection schematic diagram of the extension plate, the collision rod, and the second clamping plate in a processing device for an energy storage power supply proposed by the present invention; Figure 11 The connection schematic diagram of the extension plate, the collision rod, and the second clamping plate from another angle in a processing device for an energy storage power supply proposed by the present invention; Figure 12 The connection schematic diagram of the detection component in a processing device for an energy storage power supply proposed by the present invention; Figure 13 The unfolded connection schematic diagram of the extrusion rod, the square cylinder, and the connecting plate in a processing device for an energy storage power supply proposed by the present invention.
[0015] In the figure: 1 box body, 2 box cover, 3 handle, 4 mounting rack, 5 battery panel, 6 fan, 7 water tank, 8 circulation pump, 9 reciprocating lead screw, 10 circulation pipe, 11 water outlet pipe, 12 fixed pipe, 13 hose, 14 heat dissipation pipe, 15 double-shaft motor, 16 helical gear, 17 first pulley assembly, 18 transmission rod, 19 rotating shaft, 20 second pulley assembly, 21 reciprocating block, 22 moving frame, 23 processing table, 24 electric push rod, 25 moving plate, 26 transfer plate, 27 conveyor belt, 28 sliding frame, 29 rotating rod, 30 first rack, 31 first fixing plate, 32 second fixing plate, 33 telescopic cylinder, 34 first spring, 35 first clamping plate, 36 connecting plate, 37 second spring, 38 rotating shaft, 39 cleaning cylinder, 40 extension plate, 41 round plate, 42 first gear, 43 third pulley assembly, 44 third fixing plate, 45 second gear, 46 cam, 47 second clamping plate, 48 guide rod, 49 limiting frame, 50 limiting plate, 51 third spring, 52 collision rod, 53 rotating plate, 54 connecting cylinder, 55 sliding plate, 56 button, 57 third gear, 58 square cylinder, 59 square rod, 60 third rack, 61 extrusion rod, 62 fourth spring, 63 fifth spring, 64 pressure sensor. Detailed implementation manners
[0016] Refer to Figures 1-3, a energy storage power supply, comprising a box body 1, a box cover 2 is clamped on the upper side of the box body 1, an installation frame 4 is fixedly connected inside the box body 1, a plurality of battery panels 5 are evenly clamped on the upper side of the installation frame 4, a heat dissipation component for the battery panels 5 is installed inside the box body 1, the heat dissipation component includes two fans 6 and a water tank 7 fixedly installed inside the box body 1, a double-shaft motor 15 is fixedly connected inside the box body 1, rotating shafts 19 are fixedly installed at both output ends of the double-shaft motor 15, the two rotating shafts 19 are drivingly connected to the fan blades shafts of the fans 6 through a first pulley assembly 17, a circulation pipe 10 is fixedly connected between the two water tanks 7, circulation pumps 8 are fixedly connected to the outer sides of the two water tanks 7, a water outlet pipe 11 is fixedly connected to the outer side of the circulation pump 8, a fixed pipe 12 is fixedly connected to the outer side of the water outlet pipe 11, the fixed pipe 12 is fixedly connected to the box body 1, a plurality of flexible hoses 13 are fixedly connected to the outer side of the fixed pipe 12, the plurality of flexible hoses 13 are arranged in pairs relatively, and a heat dissipation pipe 14 is fixedly connected between each pair of flexible hoses 13, a shaking component for improving the heat dissipation efficiency of the heat dissipation pipe 14 is installed inside the box body 1; First of all, the battery panels 5 are connected to the installation frame 4, and the box body 1 and the box cover 2 are all connected by means of spring clamping. A plug board is installed on the outer side of the box body 1, and the plug board is electrically connected to the installation frame 4 through a wire. A display screen is also fixedly installed on the front side of the box body 1. The display screen can display the overall power of the battery panels 5 in real time, thus playing a certain reminder effect. The above are all relatively mature technologies in real life, so no redundant explanations will be made. And, a plurality of heat dissipation holes are opened on the outer side of the box body 1. Then, the double-shaft motor 15 and the circulation pump 8 are both electrically connected to the controller through the wire and the display screen. When charging or discharging, the controller can automatically start the double-shaft motor 15. When the double-shaft motor 15 is working, the double-shaft motor 15 will drive the rotating shaft 19 to rotate. The rotating shaft 19 drives the fan blade shaft in the fan 6 to rotate through the first pulley assembly 17, thereby starting the fan 6 to work, thus accelerating the air circulation speed inside the box body 1, and thus playing an air-cooling heat dissipation effect. At the same time, the controller can also automatically start the circulation pump 8, so that the cooling water in the two water tanks 7 circulates in two different ways of "water outlet pipe 11 - fixed pipe 12 - flexible hose 13 - heat dissipation pipe 14" and the circulation pipe 10. Among them, the heat dissipation pipes 14 and the battery panels 5 are arranged in an alternating manner, thereby playing a water-cooling heat dissipation effect. The combination of the two different heat dissipation effects can greatly reduce the temperature of the battery panels 5, keep the battery panels 5 in a good working environment all the time, and thus improve the service life of the battery panels 5.
[0017] The shaking assembly includes two transmission rods 18 rotatably mounted in the box body 1, and the two transmission rods 18 and the outer sides of the rotating shaft 19 are fixedly connected with bevel gears 16, and the bevel gears 16 are meshed with each other. Four reciprocating screws 9 are rotatably mounted in the box body 1, and the two reciprocating screws 9 on the same side are transmission-connected to the transmission rods 18 through the second pulley assembly 20. Two moving frames 22 are slidably connected in the box body 1, and each heat dissipation pipe 14 is fixedly penetrated through the moving frame 22. Both ends of the two moving frames 22 are fixedly connected with reciprocating blocks 21, and the reciprocating screws 9 are threadedly penetrated through the reciprocating blocks 21; First, during the rotation of the rotating shaft 19, the rotating shaft 19 will drive the transmission rod 18 to rotate through the bevel gear 16, and the transmission rod 18 will drive the reciprocating screw 9 to rotate through the second pulley assembly 20. The reciprocating screw 9 drives the moving frame 22 to move up and down through the reciprocating block 21, and the moving frame 22 drives the fixedly connected heat dissipation pipe 14 to move up and down, so that the heat dissipation pipe 14 is in a moving state, and the heat dissipation pipe 14 is always located on the outside of the battery panel 5. The heat dissipation pipe 14 moving up and down can greatly promote the water cooling heat dissipation effect, so that the battery panel 5 is in a good working condition.
[0018] Two handles 3 are rotatably connected to the upper side of the box cover 2, and anti-skid rubber pads are fixedly connected to the inner sides of the two handles 3. The handles 3 can be used to drive the device as a whole to move, thereby completing the overall carrying effect of the box body 1, and under the action of the anti-skid rubber pads, the friction of the handles 3 can be improved, thereby better completing the overall carrying operation of the box body 1.
[0019] See also Figures 4-13 A processing device for energy storage power source includes a processing table 23, a transport assembly is installed on the upper side of the processing table 23, the transport assembly includes two transmission plates 26 fixedly installed on the upper side of the processing table 23, a plurality of transmission rods are fixedly connected between the two transmission plates 26, a transmission belt 27 is commonly sleeved on the outer sides of the plurality of transmission rods, a transmission motor is fixedly installed on the upper side of the processing table 23, and one of the transmission rods is fixedly connected to the output end of the transmission motor; First, when the energy storage power source is processed, the battery panel 5, the mounting frame 4, the water tank 7, the fan 6 and other objects that need to be processed can be placed on the conveyor belt 27, and the conveyor belt 27 is used to transport them to the corresponding workstation, thereby improving the work efficiency, and the mounting frame 4, the water tank 7, and the fan 6 are fixed in the box body 1 by welding. The above are all existing technologies and no redundant description is made; like Figure 6 , Figure 7 , Figure 8 , Figure 9, an electric push rod 24 is fixedly connected to the upper side of the processing table 23, a moving plate 25 is fixedly connected to the output end of the electric push rod 24, a plurality of first fixed plates 31 are fixedly connected to the lower side of the moving plate 25, a plurality of first fixed plates 31 are grouped in pairs, each group of first fixed plates 31 is fixedly connected to the second fixed plate 32, both sides of the second fixed plate 32 are fixedly connected to telescopic cylinders 33, the ends of the two telescopic cylinders 33 are fixedly connected to first clamping plates 35, a first spring 34 is fixedly connected between the first clamping plates 35 and the second fixed plate 32, a friction cleaning component for the surface of the battery pack is installed on the lower side of the moving plate 25, the friction cleaning component includes a plurality of connecting plates 36, the number and position of the plurality of connecting plates 36 are opposite to the second fixed plate 32, a second spring 37 is fixedly connected between each connecting plate 36 and the second fixed plate 32, two sliding frames 28 are fixedly connected to the upper side of each connecting plate 36, the two sliding frames 28 slide through the moving plate 25, and the two The upper side of the sliding frame 28 is rotatably connected with a rotating rod 29, and the outer side of the rotating rod 29 is fixedly connected with a first gear 42. A plurality of first racks 30 are evenly fixedly connected to the upper side of the moving plate 25, and the number and position of the plurality of first racks 30 are opposite to the first gear 42, and the first racks 30 are meshed with the first gear 42. Two third fixed plates 44 are symmetrically fixedly connected to the lower side of the connecting plate 36, and the two third fixed plates 44 are rotatably connected with two rotating shafts 38 together. The outer sides of the two rotating shafts 38 are fixedly connected with second gears 45, and two adjacent second gears 45 are meshed. One of the rotating shafts 38 is transmission-connected to the rotating rod 29 through the third pulley assembly 43, and the outer sides of the two rotating shafts 38 are fixedly connected with cleaning cylinders 39. The outer side of each first clamping plate 35 is fixedly connected with a plurality of rubber protrusions to improve the friction of the first clamping plate 35. When the first clamping plate 35 is used to clamp the battery panel 5, the battery panel 5 can be effectively prevented from falling off. First, when processing the energy storage power supply is required, first insert the battery panel 5 to be installed between two adjacent first clamping plates 35. Place the installed mounting frame 4, water tank 7, and fan 6 as a whole on the processing table 23, and make the positions of the battery panel 5 and the mounting frame 4 opposite. At this time, the first spring 34 is in a compressed state, and the battery panel 5 is also located between two adjacent cleaning cylinders 39. In the above description, two adjacent first clamping plates 35 refer to the first clamping plates 35 connected to different first fixing plates 31, rather than the first clamping plates 35 on both sides of the same first fixing plate 31. Two adjacent cleaning cylinders 39 refer to the cleaning cylinders 39 connected to different connecting plates 36, rather than the cleaning cylinders 39 under the same connecting plate 36. Then, start the electric push rod 24. The electric push rod 24 drives the first clamping plate 35 and the battery panel 5 to move downward through the moving plate 25, the first fixing plate 31, and the second fixing plate 32 until the battery panel 5 is inserted into the mounting frame 4. Use the clamping method to fixedly install the battery panel 5 and the mounting frame 4 together, thereby completing the installation operation of the battery panel 5; In the above working process, especially during the process of the moving plate 25 and the battery panel 5 moving downward as a whole, when the battery panel 5 moves downward, the connecting plate 36 will be stuck by the moving frame 22 (the reason and structure for the connecting plate 36 being stuck by the moving frame 22 will be described later). The connecting plate 36 stops moving. At this time, the moving plate 25 and the battery panel 5 move downward as a whole, which causes the connecting plate 36 to drive the sliding frame 28 to move upward relative to the moving plate 25. The connecting plate 36 compresses the second spring 37. Since the first gear 42 and the first rack 30 are in meshed connection, the first gear 42 will rotate clockwise, and the first gear 42 drives the rotating rod 29 to rotate clockwise, so that Figure 9 from the perspective of, the rotating rod 29 drives the left rotating shaft 38 to rotate clockwise through the third pulley assembly 43, and under the action of the engaged second gear 45, the left rotating shaft 38 drives the right rotating shaft 38 to rotate counterclockwise. The rotating shaft 38 drives the cleaning cylinder 39 to rotate. Since the cleaning cylinder 39 and the battery panel 5 are in contact with each other, the rotating cleaning cylinder 39 will cause the battery panel 5 to move upward relative to the moving plate 25. During this process, if the battery panel 5 and the moving plate 25 are not in contact, the battery panel 5 will move upward relative to the moving plate 25 under the action of the cleaning cylinder 39 until the battery panel 5 and the moving plate 25 are in contact. Thus, the position adjustment operation of the battery panel 5 can be automatically completed, making all the battery panels 5 at the same height. If the battery panel 5 and the moving plate 25 are in contact, the battery panel 5 will not move under the blocking action of the moving plate 25. At this time, the rotating cleaning cylinder 39, due to being in contact with the surface of the battery panel 5, will form a cleaning effect on the surface of the battery panel 5, maintaining the cleanliness of the battery panel 5 and reducing the workload of workers; In addition, a guide wheel is fixedly installed at the lower left side inside the sliding frame 28. During the transmission of the belt in the third pulley assembly 43, under the action of the guide wheel, the belt abuts against the guide wheel, enabling the belt to conduct normal transmission, that is, the belt does not abut against the inner wall of the sliding frame 28.
[0020] Such as Figure 10 , Figure 11 , a collision assembly for detecting the connection effect of the detection hose 13 and the heat dissipation pipe 14 is installed on the outer side of the sliding frame 28. The collision assembly includes an extension plate 40 fixedly installed on the outer side of the sliding frame 28. Two limiting frames 49 are symmetrically and fixedly connected to the lower side of the extension plate 40. A limiting plate 50 is slidably connected between the two limiting frames 49. A third spring 51 is fixedly connected between the limiting plate 50 and the extension plate 40. A collision rod 52 is fixedly connected to the lower side of the limiting plate 50. Two second clamping plates 47 are fixedly connected to both ends of the connecting plate 36. A guide rod 48 is rotatably connected between the two second clamping plates 47. A rotating plate 53 is fixedly connected to the outer side of the guide rod 48. One end of the rotating plate 53 is rotatably connected to a connecting cylinder 54. A sliding plate 55 is fixedly connected to the outer side of the connecting cylinder 54. The sliding plate 55 is slidably connected to the limiting plate 50. Two cams 46 are fixedly connected to the outer sides of the two rotating shafts 38; First of all, during the downward movement of the connecting plate 36, the connecting plate 36 drives the second clamping plate 47 to move downward. During the downward movement of the second clamping plate 47, when the second clamping plate 47 abuts against the moving frame 22, under the blocking action of the moving frame 22, the second clamping plate 47 stops moving, thereby causing the connecting plate 36 to stop moving, and further causing the rotating shaft 38 to rotate. When the rotating shaft 38 rotates, the rotating shaft 38 drives the cam 46 to rotate. The cam 46 always abuts against the rotating plate 53. Therefore, during the rotation of the cam 46, it causes the rotating plate 53 to rotate around the guide rod 48. Since the limiting plate 50 is slidably connected to the limiting frame 49 and the sliding plate 55 is slidably connected to the limiting plate 50, the rotating rotating plate 53 drives the limiting plate 50 to move up and down relative to the limiting frame 49 through the sliding plate 55. The limiting frame 49 causes the third spring 51 to deform and at the same time drives the collision rod 52 to move up and down. The collision rod 52 abuts against the hose 13 on the outer side of the moving frame 22, causing the hose 13 to move. During the installation of the battery panel 5, the collision rod 52 always abuts against the hose 13. After the battery panel 5 is installed, the connection situation between the hose 13 and the heat dissipation pipe 14 can be observed. If there is a break between the hose 13 and the heat dissipation pipe 14, it indicates that the connection effect between the hose 13 and the heat dissipation pipe 14 is poor, thereby completing the detection operation of the connection effect of the hose 13 and the heat dissipation pipe 14.
[0021] A button 56 is fixedly connected to the lower side of each second clamping plate 47. The multiple buttons 56 are electrically connected to the processing table 23 through wires; First, the button 56 has the same structure and function as a control switch in real life, and the button 56 is connected in series with the control circuit of the warning light through a wire. That is, in the control circuit of the warning light, the closing of the control circuit of the warning light can be controlled by the button 56. Then, the button 56 is located below the second clamping plate 47. When the second clamping plate 47 stops moving, the button 56 abuts against the moving frame 22. A plurality of warning lights are installed outside the processing table 23, and the button 56 can control the switch of the warning lights. When the moving frame 22 forms an obstructive effect on the button 56, the warning lights will light up. At this time, the second clamping plate 47 will exert a certain pressure on the moving frame 22. During this process, due to the obstructive effect of the reciprocating screw rod 9 and the reciprocating block 21, the moving frame 22 will not move. If the connection effect between the reciprocating block 21 and the reciprocating screw rod 9 is poor, the warning lights will go out, which can remind the staff and also indicate that the connection effect between the reciprocating block 21 and the reciprocating screw rod 9 is poor.
[0022] Such as Figure 12 , Figure 13 , a detection component for detecting the firmness of the installation of the detection battery panel 5 and the mounting bracket 4 is installed in each connecting plate 36. The detection component includes a plurality of square cylinders 58 slidably installed on both sides of the connecting plate 36. A fourth spring 62 is fixedly connected between each square cylinder 58 and the connecting plate 36. A square rod 59 is fixedly connected to the lower side of each square cylinder 58. A third rack 60 is fixedly connected to the lower side of the square rod 59. A plurality of third gears 57 are fixedly connected to the outer side of each rotating shaft 38. The number and position of the third gears 57 correspond to those of the third rack 60, and the third gears 57 are meshed with the third rack 60. A pressing rod 61 is slidably connected in each square cylinder 58. A fifth spring 63 is fixedly connected between the pressing rod 61 and the square cylinder 58. A pressure sensor 64 is also fixedly connected between the pressing rod 61 and the square cylinder 58; First, the pressure sensor 64 is a component that can sense pressure and convert it into an electrical signal for transmission, which belongs to the prior art. Second, during the installation process of the battery panel 5, the left rotating shaft 38 rotates clockwise, and the right rotating shaft 38 rotates counterclockwise. The rotating shaft 38 drives the square tube 58 to move away from the battery panel 5 through the third gear 57 and the third rack 60. While the square tube 58 compresses the fourth spring 62, it also drives the extrusion rod 61 to move through the fifth spring 63, so that the extrusion rod 61 will not abut against the battery panel 5, and thus will not affect the installation operation of the battery panel 5. After the battery panel 5 is installed, the electric push rod 24 drives the moving plate 25 to move upward, which causes the left rotating shaft 19 to rotate counterclockwise and the right rotating shaft 19 to rotate clockwise. At this time, under the action of the third gear 57 and the third rack 60, the square tube 58 moves towards the battery panel 5. While the square tube 58 stretches the fourth spring 62, it drives the extrusion rod 61 to move through the fifth spring 63. Since the third rack 60 is short, when the third gear 57 and the third rack 60 move to the end of the third rack 60, the third rack 60 will be in a certain area. At this time, the extrusion rod 61 abuts against the battery panel 5, and the pressure sensor 64 emits a corresponding electrical signal. During this process, the magnitudes of the electrical signals emitted by the pressure sensors 64 on both sides of the battery panel 5 can be compared. If the magnitudes of the electrical signals emitted by the pressure sensors 64 on both sides of the battery panel 5 are the same, it indicates that the connection effect between the battery panel 5 and the mounting bracket 4 is good. If the magnitudes of the electrical signals emitted by the pressure sensors 64 are different, it indicates that the connection effect between the battery panel 5 and the mounting bracket 4 is average, and timely inspection is required.
[0023] In the present invention, the solar panel 5 is connected to the mounting bracket 4, and the box body 1 is connected to the box cover 2 by means of spring clamping. A plug board is installed on the outer side of the box body 1, and the plug board is electrically connected to the mounting bracket 4 through a wire. A display screen is fixedly installed on the front side of the box body 1, and the display screen can display the overall power of the solar panel 5 in real time, thus playing a certain reminder effect. The above are all relatively mature technologies in real life, so no redundant explanations are made. Moreover, a plurality of heat dissipation holes are opened on the outer side of the box body 1. Then, the biaxial motor 15 and the circulation pump 8 are both electrically connected to the controller through the wire and the display screen. When charging or discharging, the controller can automatically start the biaxial motor 15. When the biaxial motor 15 is working, the biaxial motor 15 drives the rotating shaft 19 to rotate. The rotating shaft 19 drives the fan shaft in the fan 6 to rotate through the first pulley assembly 17, thereby causing the fan 6 to start working, accelerating the air circulation speed in the box body 1, and thus achieving an air-cooling heat dissipation effect. At the same time, the controller can also automatically start the circulation pump 8 to enable the cooling water in the two water tanks 7 to flow through two different ways of "the water outlet pipe 11 - the fixed pipe 12 - the hose 13 - the heat dissipation pipe 14" and the circulation pipe 10. Among them, the heat dissipation pipe 14 and the solar panel 5 are arranged in an alternating manner, thereby achieving a water-cooling heat dissipation effect. The combination of the two different heat dissipation effects can greatly reduce the temperature of the solar panel 5, keep the solar panel 5 in a good working environment all the time, and thus improve the service life of the solar panel 5; During the rotation of the rotating shaft 19, the rotating shaft 19 drives the transmission rod 18 to rotate through the helical gear 16. The transmission rod 18 drives the reciprocating lead screw 9 to rotate through the second pulley assembly 20. The reciprocating lead screw 9 drives the reciprocating block 21 to drive the moving frame 22 to move up and down. The moving frame 22 drives the fixedly connected heat dissipation pipe 14 to move up and down, making the heat dissipation pipe 14 in a moving state, and the heat dissipation pipe 14 is always located outside the solar panel 5. The moving heat dissipation pipe 14 up and down can greatly promote the water-cooling heat dissipation effect and keep the solar panel 5 in a good working state; When processing the energy storage power supply, the solar panel 5, the mounting bracket 4, the water tank 7, the fan 6 and other objects to be processed can be placed on the conveyor belt 27, and the conveyor belt 27 is used to transport them to the corresponding workstations, thereby improving the work efficiency. Moreover, the mounting bracket 4, the water tank 7, and the fan 6 are all fixed in the box body 1 by welding. The above are all existing technologies and no redundant elaboration is made; When processing the energy storage power supply is required, first insert the battery panel 5 to be installed between two adjacent first clamping plates 35. Place the installed mounting frame 4, water tank 7, and fan 6 as a whole on the processing table 23, and align the position of the battery panel 5 with that of the mounting frame 4. At this time, the first spring 34 is in a compressed state, and the battery panel 5 is also located between two adjacent cleaning cylinders 39. In the above description, two adjacent first clamping plates 35 refer to the first clamping plates 35 connected to different first fixing plates 31, rather than the first clamping plates 35 on both sides of the same first fixing plate 31. Two adjacent cleaning cylinders 39 refer to the cleaning cylinders 39 connected to different connecting plates 36, rather than the cleaning cylinders 39 under the same connecting plate 36. Then, start the electric push rod 24. The electric push rod 24 drives the first clamping plate 35 and the battery panel 5 to move downward through the moving plate 25, the first fixing plate 31, and the second fixing plate 32 until the battery panel 5 is inserted into the mounting frame 4. Fix the battery panel 5 and the mounting frame 4 together by means of clamping, thereby completing the installation operation of the battery panel 5; During the above working process, especially during the process of the moving plate 25 and the battery panel 5 moving downward as a whole, when the battery panel 5 moves downward, the connecting plate 36 will be stuck by the moving frame 22 (the reason and structure for the connecting plate 36 being stuck by the moving frame 22 will be described later). The connecting plate 36 stops moving. At this time, the moving plate 25 and the battery panel 5 continue to move downward as a whole, which causes the connecting plate 36 to drive the sliding frame 28 to move upward relative to the moving plate 25. The connecting plate 36 compresses the second spring 37. Since the first gear 42 and the first rack 30 are in meshed connection, the first gear 42 will rotate clockwise, and the first gear 42 drives the rotating rod 29 to rotate clockwise, so that Figure 9 from the perspective of, the rotating rod 29 drives the left rotating shaft 38 to rotate clockwise through the third pulley assembly 43. And under the action of the meshed second gear 45, the left rotating shaft 38 will drive the right rotating shaft 38 to rotate counterclockwise through the second gear 45. The rotating shaft 38 drives the cleaning cylinder 39 to rotate. Since the cleaning cylinder 39 is in contact with the battery panel 5, the rotating cleaning cylinder 39 will cause the battery panel 5 to move upward relative to the moving plate 25. During this process, if the battery panel 5 and the moving plate 25 are not in contact, the battery panel 5 will move upward relative to the moving plate 25 under the action of the cleaning cylinder 39 until the battery panel 5 is in contact with the moving plate 25. Thus, the position adjustment operation of the battery panel 5 can be automatically completed, making all the battery panels 5 at the same height. If the battery panel 5 is in contact with the moving plate 25, the battery panel 5 will not move under the blocking action of the moving plate 25. At this time, the rotating cleaning cylinder 39, due to being in contact with the surface of the battery panel 5, will form a cleaning effect on the surface of the battery panel 5, maintaining the cleanliness of the battery panel 5 and reducing the workload of workers; During the downward movement of the connecting plate 36, the connecting plate 36 drives the second clamping plate 47 to move downward. During the downward movement of the second clamping plate 47, when the second clamping plate 47 abuts against the moving frame 22, due to the blocking effect of the moving frame 22, the second clamping plate 47 stops moving, which in turn causes the connecting plate 36 to stop moving, and further causes the rotating shaft 38 to rotate. When the rotating shaft 38 rotates, the rotating shaft 38 drives the cam 46 to rotate. The cam 46 always abuts against the rotating plate 53. Therefore, during the rotation of the cam 46, the rotating plate 53 rotates around the guide rod 48. Since the limiting plate 50 is slidably connected to the limiting frame 49, and the sliding plate 55 is slidably connected to the limiting plate 50, the rotating rotating plate 53 drives the limiting plate 50 to move up and down relative to the limiting frame 49 through the sliding plate 55. While the limiting frame 49 causes the third spring 51 to deform, it drives the collision rod 52 to move up and down. The collision rod 52 abuts against the hose 13 outside the moving frame 22, causing the hose 13 to move. During the installation of the battery panel 5, the collision rod 52 always abuts against the hose 13. After the installation of the battery panel 5 is completed, the connection between the hose 13 and the heat dissipation pipe 14 can be observed. If there is a break between the hose 13 and the heat dissipation pipe 14, it indicates that the connection effect between the hose 13 and the heat dissipation pipe 14 is poor, thus completing the detection operation of the connection effect between the hose 13 and the heat dissipation pipe 14; During the installation of the battery panel 5, the left rotating shaft 38 rotates clockwise, and the right rotating shaft 38 rotates counterclockwise. The rotating shaft 38 drives the square tube 58 to move away from the battery panel 5 through the third gear 57 and the third rack 60. While compressing the fourth spring 62, the square tube 58 also drives the extrusion rod 61 to move through the fifth spring 63, so that the extrusion rod 61 does not abut against the battery panel 5, and thus does not affect the installation operation of the battery panel 5. After the installation of the battery panel 5 is completed, the electric push rod 24 drives the moving plate 25 to move upward, which in turn causes the left rotating shaft 19 to rotate counterclockwise and the right rotating shaft 19 to rotate clockwise. At this time, under the action of the third gear 57 and the third rack 60, the square tube 58 moves toward the battery panel 5. While stretching the fourth spring 62, the square tube 58 drives the extrusion rod 61 to move through the fifth spring 63. Since the third rack 60 is short, when the third gear 57 and the third rack 60 move to the end of the third rack 60, the third rack 60 is in a certain area. At this time, the extrusion rod 61 abuts against the battery panel 5, and the pressure sensor 64 emits a corresponding electrical signal. During this process, the magnitudes of the electrical signals emitted by the pressure sensors 64 on both sides of the battery panel 5 can be compared. If the magnitudes of the electrical signals emitted by the pressure sensors 64 on both sides of the battery panel 5 are the same, it indicates that the connection effect between the battery panel 5 and the mounting bracket 4 is good. If the magnitudes of the electrical signals emitted by the pressure sensors 64 are different, it indicates that the connection effect between the battery panel 5 and the mounting bracket 4 is average and timely inspection is required.
Claims
1. A energy storage power supply, comprising a box body (1), characterized in that, A box cover (2) is clamped on the upper side of the box body (1), a mounting frame (4) is fixedly connected inside the box body (1), a plurality of battery panels (5) are uniformly clamped on the upper side of the mounting frame (4), a heat dissipation component for the battery panels (5) is installed inside the box body (1), the heat dissipation component comprises two fans (6) and a water tank (7) fixedly installed inside the box body (1), a dual-axis motor (15) is fixedly connected inside the box body (1), a rotating shaft (19) is fixedly installed on both sides of the output end of the dual-axis motor (15), the two rotating shafts (19) are connected to each other through a first pulley assembly (17) and a fan blade shaft of the fan (6), and the two rotating shafts (19) are connected to each other through a first pulley assembly (17) and a fan blade shaft of the fan (6). A circulation pipe (10) is fixedly connected between the water tanks (7), a circulation pump (8) is fixedly connected to the outside of the two water tanks (7), a water outlet pipe (11) is fixedly connected to the outside of the circulation pump (8), a fixed pipe (12) is fixedly connected to the outside of the water outlet pipe (11), the fixed pipe (12) is fixedly connected to the box body (1), a plurality of hoses (13) are fixedly connected to the outside of the fixed pipe (12), the plurality of hoses (13) are arranged opposite to each other in groups of two, and a heat dissipation pipe (14) is fixedly connected between each group of hoses (13), and a shaking component for improving the heat dissipation efficiency of the heat dissipation pipe (14) is installed in the box body (1).
2. The energy storage power supply according to claim 1, wherein The shaking assembly comprises two transmission rods (18) rotatably mounted in a housing (1), the two transmission rods (18) and the outer sides of the rotating shaft (19) are fixedly connected with bevel gears (16), and the bevel gears (16) are meshed with each other. Four reciprocating screws (9) are rotatably mounted in the housing (1), and the two reciprocating screws (9) on the same side are transmission-connected to the transmission rods (18) via a second pulley assembly (20). Two moving frames (22) are slidably connected in the housing (1), and both ends of each heat dissipation pipe (14) are fixedly penetrated through the moving frame (22), and both ends of the two moving frames (22) are fixedly connected with a reciprocating block (21), and the reciprocating screws (9) are threadedly penetrated through the reciprocating block (21).
3. An energy storage power supply according to claim 2, characterized in that, The upper side of the box cover (2) is rotatably connected to two handles (3), and the inner sides of the two handles (3) are fixedly connected to anti-slip rubber pads.
4. A processing device for an energy storage power supply according to claim 3, comprising a processing table (23), characterized in that, An electric push rod (24) is fixedly connected to the upper side of the processing table (23); an output end of the electric push rod (24) is fixedly connected to a moving plate (25); a plurality of first fixed plates (31) are fixedly connected to the lower side of the moving plate (25); the plurality of first fixed plates (31) are arranged in groups of two, and each group of the first fixed plates (31) is fixedly connected to a second fixed plate (32); both sides of the second fixed plate (32) are fixedly connected to telescopic cylinders (33); the ends of the two telescopic cylinders (33) are fixedly connected to first clamping plates (35); a first spring (34) is fixedly connected between the first clamping plates (35) and the second fixed plates (32); a friction cleaning component for the surface of the battery pack is installed on the lower side of the moving plate (25); the friction cleaning component comprises a plurality of connecting plates (36); the number and position of the plurality of connecting plates (36) are opposite to the second fixed plates (32); a second spring (37) is fixedly connected between each connecting plate (36) and the second fixed plate (32); Two sliding frames (28) are fixedly connected to the upper side, and the two sliding frames (28) are slidably penetrated through the movable plate (25). The upper sides of the two sliding frames (28) are rotatably connected to a rotating rod (29), and the outer side of the rotating rod (29) is fixedly connected to a first gear (42). A plurality of first racks (30) are evenly fixedly connected to the upper side of the movable plate (25), and the number and position of the plurality of first racks (30) are opposite to the first gear (42), and the first racks (30) and the first gear (42) are meshed. Two third fixed plates (44) are symmetrically fixedly connected to the lower side of the connecting plate (36); the two third fixed plates (44) are rotatably connected to two rotating shafts (38); the outer sides of the two rotating shafts (38) are fixedly connected to second gears (45); two adjacent second gears (45) are meshed with each other; one of the rotating shafts (38) is transmission-connected to a rotating rod (29) via a third pulley assembly (43); and the outer sides of the two rotating shafts (38) are fixedly connected to cleaning cylinders (39).
5. The processing device for the energy storage power supply according to claim 4, characterized in that, A collision component for detecting the connection effect of a detection hose (13) and a heat dissipation tube (14) is installed on the outer side of the sliding frame (28). The collision component includes an extension plate (40) fixedly installed on the outer side of the sliding frame (28). Two limiting frames (49) are symmetrically and fixedly connected to the lower side of the extension plate (40). A limiting plate (50) is slidably connected between the two limiting frames (49). A third spring (51) is fixedly connected between the limiting plate (50) and the extension plate (40). A collision rod (52) is fixedly connected to the lower side of the limiting plate (50). Two second clamping plates (47) are fixedly connected to both ends of the connecting plate (36). A guiding rod (48) is rotatably connected between the two second clamping plates (47). A rotating plate (53) is fixedly connected to the outer side of the guiding rod (48). One end of the rotating plate (53) is rotatably connected to a connecting cylinder (54). A sliding plate (55) is fixedly connected to the outer side of the connecting cylinder (54). The sliding plate (55) is slidably connected to the limiting plate (50). Two cams (46) are fixedly connected to the outer sides of the two rotating shafts (38).
6. The processing device for the energy storage power supply according to claim 5, characterized in that, A button (56) is fixedly connected to the lower side of each second clamping plate (47).
7. The processing device for the energy storage power supply according to claim 4, characterized in that, A detection component for detecting the firmness of the installation of a detection battery panel (5) and a mounting rack (4) is installed in each connecting plate (36). The detection component includes a plurality of square cylinders (58) slidably installed on both sides of the connecting plate (36). A fourth spring (62) is fixedly connected between each square cylinder (58) and the connecting plate (36). A square rod (59) is fixedly connected to the lower side of each square cylinder (58). A third rack (60) is fixedly connected to the lower side of the square rod (59). A plurality of third gears (57) are fixedly connected to the outer sides of the two rotating shafts (38). The number and positions of the third gears (57) correspond to those of the third racks (60). The third gears (57) are meshed with the third racks (60). An extrusion rod (61) is slidably connected in each square cylinder (58). A fifth spring (63) is fixedly connected between the extrusion rod (61) and the square cylinder (58). A pressure sensor (64) is also fixedly connected between the extrusion rod (61) and the square cylinder (58).
8. The processing device for the energy storage power supply according to claim 4, characterized in that, A plurality of rubber protrusions are fixedly connected to the outer side of each first clamping plate (35).
9. The processing device for the energy storage power supply according to claim 4, characterized in that, A transportation component is installed on the upper side of the processing table (23). The transportation component includes two transmission plates (26) fixedly installed on the upper side of the processing table (23). A plurality of transmission rods are fixedly connected between the two transmission plates (26). A transmission belt (27) is sleeved on the outer sides of the plurality of transmission rods. A transmission motor is fixedly installed on the upper side of the processing table (23). One of the transmission rods is fixedly connected to the output end of the transmission motor.