A battery assembling device for wind-solar energy storage
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-29
- Publication Date
- 2026-08-11
AI Technical Summary
[0002]风光储能电池是一种装置,旨在存储由风力发电机或光伏板产生的电能,以装备有光伏板的新能源汽车为例,其利用自身电池组高效储存光伏电能,展现了极高的环保性能,这些电池组通常由多个单体电池组合而成,在电池组装过程中,电池治具扮演着至关重要的角色,电池治具结构包含上框与下框,工作时,上框内部会按等间距排列多个电池支架,支架与上框间预置镍片,为后续电池焊接做准备,随着生产线的运行,上框被移送至电池上料工位,此时所有电池支架均被插入电池,随后,上框继续沿生产线前进,途经多个操作站,由人工逐一安装电池上端的支架,并再次铺设镍片,最终,手动将上框与下框合并,但由于上框对电池支架及镍片的固定能力不足,现有设计需在生产线上设置多个操作站,这在一定程度上造成了资源的冗余与效率的损耗,为此,我们提出一种用于风光储能的电池组装设备
[0023] Workers can pre-place the nickel sheets into the slots of perforated tray one and perforated tray two, and then place the battery bracket on perforated tray one and perforated tray two, and lock it with the locking components. At the same time, the nickel sheets are pressed and fixed, thus the upper frame can be pre-assembled. When the production line is running, workers only need to fasten the upper frame to the lower frame, reducing the installation steps and facilitating the production process.
Smart Images

Figure CN119400926B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of battery assembly technology, specifically to a battery assembly device for wind and solar energy storage. Background Technology
[0002] A wind and solar energy storage battery is a device designed to store electrical energy generated by wind turbines or photovoltaic panels. Taking new energy vehicles equipped with photovoltaic panels as an example, they utilize their own battery packs to efficiently store photovoltaic energy, demonstrating extremely high environmental performance. These battery packs are typically composed of multiple individual cells. During the battery assembly process, the battery fixture plays a crucial role. The battery fixture structure includes an upper frame and a lower frame. During operation, multiple battery supports are arranged at equal intervals inside the upper frame. Nickel sheets are pre-placed between the supports and the upper frame to prepare for subsequent battery welding. As the production line runs, the upper frame is moved to the battery loading station, where all battery supports are inserted into the batteries. Subsequently, the upper frame continues to move along the production line, passing through multiple operating stations, where the supports at the top of the batteries are installed manually one by one, and nickel sheets are laid again. Finally, the upper frame and lower frame are manually merged. However, due to the insufficient fixing capacity of the upper frame for the battery supports and nickel sheets, existing designs require multiple operating stations on the production line, which to some extent causes resource redundancy and efficiency loss. Therefore, we propose a battery assembly equipment for wind and solar energy storage. Summary of the Invention
[0003] One of the technical problems to be solved by this application is: how to set up an upper frame structure that can pre-install and fix the battery bracket.
[0004] To address the aforementioned technical problems, embodiments of this application provide a battery assembly device for wind and solar energy storage, including a lower frame, an upper frame, and further comprising:
[0005] A perforated tray 1 is set inside the upper frame, and multiple perforated trays 2 are slidably connected inside the upper frame. Both the perforated tray 1 and the perforated tray 2 have multiple placement slots evenly spaced at equal intervals for placing nickel sheets.
[0006] The locking component is set inside the upper frame to fit the battery bracket with the perforated tray 1 and the perforated tray 2, and at the same time, the locking component locks the battery bracket.
[0007] The unlocking component is set on the upper frame, and the multiple perforated trays 2 and 1 adopt a stepped design. During the process of aligning the upper frame and the lower frame, the battery brackets on the multiple perforated trays 2 and 1 are inserted into the battery one after another. At the same time, the unlocking component is used to unlock the battery brackets on the perforated trays 2 and 1 in sequence.
[0008] In some embodiments, the perforated support plate one is fixedly connected to the upper frame, the perforated support plate two is fixedly connected to a slide plate, the upper frame is fixedly connected to a slide rod that slides through the slide plate, and a tension spring is sleeved on the slide rod. The two ends of the tension spring are fixed to the slide rod and the slide plate respectively. Pressing down the perforated support plate two simultaneously stretches the tension spring to provide it with self-recovering elasticity.
[0009] Furthermore, limit blocks are fixedly connected to all four sides of the perforated support plate 1 and the perforated support plate 2 to guide and limit the battery bracket.
[0010] In some embodiments, the locking assembly includes an L-shaped locking block slidably connected to one end of a perforated support plate and the other end of the perforated support plate. One end of the L-shaped locking block has a beveled design. A guide rod is fixedly connected inside the upper frame. The guide rod is slidably connected to the L-shaped locking block. A rectangular plate is slidably connected inside the side wall of the upper frame. A connecting rod is rotatably connected between the rectangular plate and the L-shaped locking block through a pivot. An elastic element is provided on one side of the rectangular plate. The elastic element is connected to the upper frame and pushes the L-shaped locking block to drive the rectangular plate to slide. At the same time, the elastic element is compressed and contracts to provide self-recovering elastic force.
[0011] Furthermore, a rectangular block is fixedly connected to the bottom of the L-shaped card block located on one side of the perforated support plate, which is used to support the battery bracket. The rectangular block is slidably connected to the upper frame. Multiple rectangular blocks also adopt a stepped design, and one end of the guide rod slides through the rectangular block.
[0012] In some embodiments, the elastic element includes a deflection block rotatably connected to the rectangular plate via a rotating shaft. A deflection block is also rotatably connected inside the upper frame. A telescopic rod is fixedly connected between the two deflection blocks. A spring is sleeved on the telescopic rod. The two ends of the spring contact and abut against the two deflection blocks respectively. During the movement of the rectangular plate, the telescopic rod is deflected to compress the spring and provide it with a self-recovering elastic force.
[0013] In some embodiments, the unlocking component includes a cylindrical protrusion fixedly connected to a rectangular plate, and a top rod is slidably connected to the side wall of the upper frame. A transmission component is provided between the top rod and the multiple cylindrical protrusions. During the process of fastening the upper frame and the lower frame, the lower frame contacts the top rod and pushes it to move, while the transmission component drives the multiple cylindrical protrusions to move sequentially.
[0014] In some embodiments, the transmission component includes a strip plate slidably connected to the side wall of the upper frame, and a plurality of right-angled trapezoidal plates are provided on the strip plate. Moving the strip plate causes the inclined surfaces of the plurality of right-angled trapezoidal plates to sequentially push the plurality of cylindrical protrusions to move.
[0015] Furthermore, an elastic band is fixedly connected between one end of the strip plate and the inner wall of the upper frame, and the strip plate is moved while the elastic band is stretched to provide it with self-rebound force;
[0016] A guide wheel is rotatably connected within the upper frame via a rotating shaft. A pull rope is fixedly connected to one end of the strip plate, and one end of the pull rope passes around the guide wheel and is fixed to the end of the top rod.
[0017] In some embodiments, a guide plate is fixedly connected to the upper frame, and a rectangular groove is provided on the lower frame, so that the upper frame and the lower frame are aligned to drive the guide plate to insert into the rectangular groove.
[0018] In some embodiments, the guide plate is designed with an inclined end;
[0019] The guide plate surface is made of rubber.
[0020] In some embodiments, a handle is slidably connected to the side wall of the upper frame, and a push plate is slidably connected to the inside of the side wall of the upper frame. A linkage is provided between the push plate and the handle, and pushing the handle to drive the push plate to move and reset multiple cylindrical protrusions by using the linkage.
[0021] In some embodiments, the linkage includes a lever rotatably connected to the upper frame via a pivot, a shaft three is fixedly connected to the end of the handle, a shaft three is also fixedly connected to the end of the push plate, and guide grooves are respectively opened at both ends of the lever, with the two shaft threes correspondingly located in the guide grooves.
[0022] The present invention has at least the following beneficial effects:
[0023] Workers can pre-place the nickel sheets into the slots of perforated tray one and perforated tray two, and then place the battery bracket on perforated tray one and perforated tray two, and lock it with the locking components. At the same time, the nickel sheets are pressed and fixed, thus the upper frame can be pre-assembled. When the production line is running, workers only need to fasten the upper frame to the lower frame, reducing the installation steps and facilitating the production process.
[0024] Meanwhile, the battery holders fixed by this device adopt a stepped design, which allows multiple battery holders to be inserted into the batteries in sequence when the workers are aligning the upper and lower frames, which is more labor-saving and facilitates the production process. Attached Figure Description
[0025] Figure 1 This is a schematic diagram of the overall structure of Embodiment 1 of the present invention;
[0026] Figure 2 This is a schematic diagram of the upper frame structure of the present invention;
[0027] Figure 3 For the present invention Figure 2 Schematic diagram of partial cross-section;
[0028] Figure 4 For the present invention Figure 3Schematic diagram of the structure of area A in the middle;
[0029] Figure 5 For the present invention Figure 3 Schematic diagram of partial cross-section;
[0030] Figure 6 This is a schematic diagram of the structure of Embodiment 2 of the present invention;
[0031] Figure 7 For the present invention Figure 6 Schematic diagram of the structure of area B in the middle.
[0032] In the diagram: 1-Lower frame; 2-Upper frame; 3-Perforated support plate one; 4-Perforated support plate two; 5-Placement slot; 6-Locking component; 7-Unlocking component; 31-Slide plate; 32-Slide rod; 33-Tension spring; 34-Limit block; 35-L-shaped locking block; 36-Guide rod; 37-Rectangular plate; 38-Connecting rod; 39-Elastic component; 41-Rectangular block; 42-Deflection block; 43-Telescopic rod; 44-Spring one; 45-Cylindrical protrusion; 46-Top rod; 47-Transmission component; 48-Strip plate; 49-Right-angled trapezoidal plate; 51-Elastic band; 52-Guide wheel; 53-Pull rope; 54-Guide plate; 55-Rectangular groove; 56-Handle; 57-Push plate; 58-Linkage component; 59-Lever; 61-Shaft three; 62-Guide groove. Detailed Implementation
[0033] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present invention.
[0034] Example 1: Please refer to Figures 1-5 This invention provides a technical solution: a battery assembly device for wind and solar energy storage, comprising a lower frame 1 and an upper frame 2. Specifically, the upper frame 2 and the lower frame 1 are fitted together to form a complete battery fixture, and the device also includes:
[0035] A perforated tray 3 is set inside the upper frame 2, and multiple perforated trays 4 are slidably connected inside the upper frame 2. Multiple placement slots 5 are evenly spaced on both the perforated tray 3 and the perforated tray 4 for placing nickel sheets.
[0036] Locking component 6 is set inside the upper frame 2 to fit the battery bracket with the perforated tray 3 and the perforated tray 4, and locks the battery bracket using locking component 6.
[0037] Unlocking component 7 is set on the upper frame 2, and multiple perforated trays 2 4 and tray 1 adopt a stepped design. During the process of aligning the upper frame 2 and the lower frame 1, the battery brackets on multiple perforated trays 2 4 and the battery brackets on perforated tray 1 3 are inserted into the battery one after another. At the same time, the unlocking component 7 is used to unlock the battery brackets on perforated trays 2 4 and perforated tray 1 3 in sequence.
[0038] Specifically, when using this device, the lower frame 1 is the same as in the prior art. The operator can lay the nickel sheet in the lower frame 1 in advance, and then place the battery bracket in the lower frame 1 to limit the nickel sheet. Similarly, the operator can place the nickel sheet in the placement groove 5 of the perforated support plate 1 3 and the perforated support plate 2 4 in advance, and then place the battery bracket on the perforated support plate 1 3 and the perforated support plate 2 4, and lock it with the locking component 6. At the same time, the nickel sheet is pressed and fixed, so the upper frame 2 can be pre-assembled. Thus, when the production line is running, the operator only needs to fasten the upper frame 2 to the lower frame 1, which reduces the installation steps and facilitates the production work. After the battery is assembled, the upper frame 2 can be opened directly to remove the battery, which is more convenient.
[0039] Meanwhile, the battery holders fixed by this device adopt a stepped design, so that when the workers align the upper frame 2 and the lower frame 1, multiple battery holders can be inserted into the batteries in sequence, which is more labor-saving and also facilitates the production process.
[0040] The perforated support plate 3 is fixedly connected to the upper frame 2. The perforated support plate 4 is fixedly connected to the slide plate 31. The upper frame 2 is fixedly connected to the slide rod 32 that slides through the slide plate 31. The slide rod 32 is fitted with a tension spring 33. The two ends of the tension spring 33 are fixedly connected to the slide rod 32 and the slide plate 31 respectively. Pressing down the perforated support plate 4 stretches the spring to provide it with self-recovery force, which is beneficial to the deformation function of the tension spring 33 so that the nickel sheet of the battery bracket will always be pressed against the battery bracket by the perforated support plate 4 during the movement.
[0041] Furthermore, limit blocks 34 are fixedly connected to all four sides of the perforated support plate 3 and the perforated support plate 4 to guide and limit the battery bracket, making it easy to quickly and conveniently install the battery bracket into the designated position.
[0042] The locking assembly 6 includes an L-shaped locking block 35 slidably connected to the ends of the perforated support plate 3 and the perforated support plate 4. One end of the L-shaped locking block 35 has a beveled design. A guide rod 36 is fixedly connected inside the upper frame 2. The guide rod 36 is slidably connected to the L-shaped locking block 35. A rectangular plate 37 is slidably connected inside the side wall of the upper frame 2. A connecting rod 38 is rotatably connected between the rectangular plate 37 and the L-shaped locking block 35 through a pivot. An elastic element 39 is provided on one side of the rectangular plate 37. The elastic element 39 is connected to the upper frame 2. Specifically, during the installation of the battery bracket, the battery bracket contacts and pushes the L-shaped locking block 35 to move, thereby driving the connecting rod 38 to move, which in turn drives the rectangular plate 37 to slide. At the same time, the elastic element 39 is compressed and contracts to provide self-recovery force. When the battery bracket is disengaged from the hook of the L-shaped locking block 35, the elastic element 39 resets and drives the L-shaped locking block 35 to move, thereby locking the battery bracket.
[0043] Furthermore, a rectangular block 41 is fixedly connected to the bottom end of the L-shaped card block 35 located on one side of the perforated tray 2 4, which is used to support the battery bracket. The rectangular block 41 is slidably connected to the upper frame 2. Multiple rectangular blocks 41 also adopt a stepped design. One end of the guide rod 36 slides through the rectangular block 41, and the guide rod 36 also slides through the L-shaped card block 35 corresponding to the perforated tray 3.
[0044] The elastic element 39 includes a deflection block 42 rotatably connected to the rectangular plate 37 via a rotating shaft. A deflection block 42 is also rotatably connected inside the upper frame 2. A telescopic rod 43 is fixedly connected between the two deflection blocks 42. A spring 44 is sleeved on the telescopic rod 43. The two ends of the spring 44 contact and abut against the two deflection blocks 42 respectively. During the movement of the rectangular plate 37, the telescopic rod 43 is deflected to compress the spring 44 and provide it with self-recovering elastic force.
[0045] The unlocking component 7 includes cylindrical protrusions 45 fixedly connected to the rectangular plate 37, and a top rod 46 is slidably connected to the side wall of the upper frame 2. A transmission component 47 is provided between the top rod 46 and the multiple cylindrical protrusions 45. During the process of fastening the upper frame 2 and the lower frame 1, the lower frame 1 contacts the top rod 46 and pushes it to move. At the same time, the transmission component 47 drives the multiple cylindrical protrusions 45 to move in turn.
[0046] The transmission component 47 includes a strip plate 48 slidably connected to the side wall of the upper frame 2. Multiple right-angled trapezoidal plates 49 are fixedly connected to the strip plate 48, and the distance between the inclined surface of the multiple right-angled trapezoidal plates 49 and the multiple cylindrical protrusions 45 is arranged from small to large. Moving the strip plate 48 drives the inclined surface of the multiple right-angled trapezoidal plates 49 to push the multiple cylindrical protrusions 45 to move in sequence.
[0047] Furthermore, an elastic band 51 is fixedly connected between one end of the strip plate 48 and the inner wall of the upper frame 2. Moving the strip plate 48 simultaneously stretches the elastic band 51 to provide it with self-rebound force.
[0048] A guide wheel 52 is rotatably connected to the upper frame 2 via a rotating shaft. A pull rope 53 is fixedly connected to one end of the strip plate 48. One end of the pull rope 53 passes around the guide wheel 52 and is fixedly connected to the end of the top rod 46.
[0049] Specifically, during the process of aligning the upper frame 2 and the lower frame 1, the lower frame 1 contacts the top rod 46 and pushes it to move. Simultaneously, the battery holder, away from the perforated tray 3, also contacts the battery and inserts it. Then, during the battery insertion process, the pull rope 53 moves synchronously, thereby moving the strip plate 48 to push the corresponding cylindrical protrusion 45 to move, which in turn moves the rectangular plate 37 to cause the telescopic rod 43 to deflect. With the L-shaped locking block 35 in the locked state, the angle between the telescopic rod 43 and the rectangular plate 37 is an acute angle. When the battery is installed... When the battery bracket is installed, the battery holder will push the L-shaped locking block 35 to move, which will also cause the telescopic rod 43 to deflect. However, during the deflection process, the angle between the telescopic rod 43 and the rectangular plate 37 will always be an acute angle. When the battery is fully inserted into the battery bracket, the telescopic rod 43 will deflect synchronously and the angle between it and the rectangular plate 37 will change from an acute angle to a right angle and then back to an acute angle. As a result, the spring 44 will reset and drive the rectangular block 41 to move and avoid the battery bracket. Then, the staff will continue to press down the upper frame 2 to complete the installation of the subsequent battery brackets.
[0050] A guide plate 54 is fixedly connected to the upper frame 2, and a rectangular groove 55 is provided on the lower frame 1. The upper frame 2 and the lower frame 1 are aligned so that the guide plate 54 can be inserted into the rectangular groove 55, which is used to guide and limit the alignment process of the upper frame 2 and the lower frame 1.
[0051] The guide plate 54 has an inclined design at its end, which facilitates the alignment of the upper frame 2 and the lower frame 1;
[0052] The guide plate 54 is made of rubber. After the upper and lower frames 1 are aligned, the friction between the guide plate 54 and the rectangular groove 55 can temporarily lock the upper frame 2 and the lower frame 1.
[0053] Example 2: Please refer to Figures 1-7 The present invention provides a technical solution: Embodiment 2 is an optimization based on Embodiment 1;
[0054] A handle 56 is slidably connected to the side wall of the upper frame 2, and a push plate 57 is slidably connected to the inside of the side wall of the upper frame 2. A linkage 58 is provided between the push plate 57 and the handle 56. Pushing the handle 56 will drive the push plate 57 to move by using the linkage 58 to push multiple cylindrical protrusions 45 to move and reset, thereby enabling the main body of the device to be quickly reset for easy use next time.
[0055] The linkage 58 includes a lever 59 rotatably connected to the upper frame 2 via a rotating shaft. A shaft 61 is fixedly connected to the end of the handle 56, and a shaft 61 is also fixedly connected to the end of the push plate 57. Guide grooves 62 are respectively opened at both ends of the lever 59, and the two shafts 61 are located in the guide grooves 62 respectively. In specific operation, the operator pushes the handle 56 to move, and then uses the lever 59 to drive the push plate 57 to move, thereby pushing multiple cylindrical protrusions 45 to move, and then driving the L-shaped locking block 35 to move and reset.
[0056] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.
[0057] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention.
Claims
1. A battery assembly device for wind and solar energy storage, comprising a lower frame (1) and an upper frame (2), characterized in that: It also includes: A perforated tray 1 (3) is set inside the upper frame (2), and multiple perforated trays 2 (4) are slidably connected inside the upper frame (2). Multiple placement slots (5) are evenly and equidistantly opened on both the perforated tray 1 (3) and the perforated tray 2 (4) for placing nickel sheets. The locking component (6) is set inside the upper frame (2) to attach the battery bracket to the perforated tray 1 (3) and the perforated tray 2 (4) and lock the battery bracket using the locking component (6). The unlocking component (7) is set on the upper frame (2), and the multiple perforated trays (4) and tray 1 adopt a stepped design. During the process of aligning the upper frame (2) and the lower frame (1), the battery brackets on the multiple perforated trays (4) and the battery brackets on the perforated tray 1 (3) are inserted into the battery one after the other. At the same time, the unlocking component (7) unlocks the battery brackets on the perforated trays (4) and the perforated tray 1 (3) in sequence.
2. The battery assembly equipment for wind and solar energy storage according to claim 1, characterized in that: The perforated support plate one (3) is fixedly connected to the upper frame (2), and a slide plate (31) is fixedly connected to the perforated support plate two (4). A slide rod (32) that slides through the slide plate (31) is fixedly connected inside the upper frame (2), and a tension spring (33) is sleeved on the slide rod (32). The two ends of the tension spring (33) are fixed to the slide rod (32) and the slide plate (31) respectively. Pressing down the perforated support plate two (4) simultaneously stretches the tension spring (33) to provide it with self-recovering elasticity. Furthermore, limit blocks (34) are fixedly connected to all four sides of the perforated support plate one (3) and the perforated support plate two (4) to guide and limit the battery bracket.
3. The battery assembly equipment for wind and solar energy storage according to claim 2, characterized in that: The locking assembly (6) includes an L-shaped locking block (35) slidably connected to the ends of the perforated support plate one (3) and the perforated support plate two (4). One end of the L-shaped locking block (35) is designed with a bevel. A guide rod (36) is fixedly connected inside the upper frame (2). The guide rod (36) is slidably connected to the L-shaped locking block (35). A rectangular plate (37) is slidably connected inside the side wall of the upper frame (2). A connecting rod (38) is rotatably connected between the rectangular plate (37) and the L-shaped locking block (35) through a pivot. An elastic element (39) is provided on one side of the rectangular plate (37). The elastic element (39) is connected to the upper frame (2) and pushes the L-shaped locking block (35) to drive the rectangular plate (37) to slide. At the same time, the elastic element (39) is compressed and contracts to provide self-recovering elastic force. Furthermore, a rectangular block (41) is fixedly connected to the bottom end of the L-shaped card block (35) located on one side of the perforated support plate (4) for supporting the battery bracket. The rectangular block (41) is slidably connected to the upper frame (2). Multiple rectangular blocks (41) also adopt a stepped design. One end of the guide rod (36) slides through the rectangular block (41).
4. The battery assembly equipment for wind and solar energy storage according to claim 3, characterized in that: The elastic element (39) includes a deflection block (42) rotatably connected to the rectangular plate (37) via a rotating shaft. A deflection block (42) is also rotatably connected inside the upper frame (2). A telescopic rod (43) is fixedly connected between the two deflection blocks (42). A spring (44) is sleeved on the telescopic rod (43). The two ends of the spring (44) respectively contact and abut against the two deflection blocks (42). During the movement of the rectangular plate (37), the telescopic rod (43) is deflected to compress the spring (44) and provide it with self-recovering elastic force.
5. The battery assembly equipment for wind and solar energy storage according to claim 4, characterized in that: The unlocking component (7) includes cylindrical protrusions (45) fixedly connected to a rectangular plate (37), and a top rod (46) is slidably connected to the side wall of the upper frame (2). A transmission component (47) is provided between the top rod (46) and the multiple cylindrical protrusions (45). During the process of fastening the upper frame (2) and the lower frame (1), the lower frame (1) contacts the top rod (46) and pushes it to move. At the same time, the transmission component (47) drives the multiple cylindrical protrusions (45) to move in sequence.
6. The battery assembly equipment for wind and solar energy storage according to claim 5, characterized in that: The transmission component (47) includes a strip plate (48) slidably connected to the side wall of the upper frame (2). The strip plate (48) is provided with multiple right-angled trapezoidal plates (49). Moving the strip plate (48) causes the inclined surfaces of the multiple right-angled trapezoidal plates (49) to sequentially push multiple cylindrical protrusions (45) to move. Furthermore, an elastic band (51) is fixedly connected between one end of the strip plate (48) and the inner wall of the upper frame (2). Moving the strip plate (48) simultaneously stretches the elastic band (51) to provide it with self-rebound force. A guide wheel (52) is rotatably connected to the upper frame (2) via a rotating shaft. A pull rope (53) is fixedly connected to one end of the strip plate (48). One end of the pull rope (53) passes around the guide wheel (52) and is fixed to the end of the top rod (46).
7. The battery assembly equipment for wind and solar energy storage according to claim 6, characterized in that: A guide plate (54) is fixedly connected to the upper frame (2), and a rectangular groove (55) is provided on the lower frame (1). The upper frame (2) and the lower frame (1) are aligned to drive the guide plate (54) to be inserted into the rectangular groove (55).
8. The battery assembly equipment for wind and solar energy storage according to claim 7, characterized in that: The guide plate (54) is designed with an inclined end; The surface of the guide plate (54) is made of rubber.
9. The battery assembly equipment for wind and solar energy storage according to claim 8, characterized in that: A handle (56) is slidably connected to the side wall of the upper frame (2), and a push plate (57) is slidably connected inside the side wall of the upper frame (2). A linkage (58) is provided between the push plate (57) and the handle (56). Pushing the handle (56) will drive the push plate (57) to move by means of the linkage (58) to push multiple cylindrical protrusions (45) to move and reset.
10. The battery assembly equipment for wind and solar energy storage according to claim 9, characterized in that: The linkage (58) includes a lever (59) rotatably connected to the upper frame (2) via a rotating shaft. The handle (56) is fixedly connected to a shaft three (61) at its end. The push plate (57) is also fixedly connected to a shaft three (61) at its end. Guide grooves (62) are respectively opened at both ends of the lever (59), and the two shaft threes (61) are located in the guide grooves (62) respectively.
Citation Information
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