Mounting equipment for wall-mounted energy storage device

By designing a wall-mounted energy storage device installation equipment that coordinates the lifting and traction components, the stability problem during the installation process of the wall-mounted energy storage device was solved, achieving efficient and stable installation without manual support, simplifying the installation process and improving the safety of the equipment.

CN223792870UActive Publication Date: 2026-01-13CONTEMPORARY NEBULA TECH ENERGY CO LTD
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Patent Information

Application Number
CN202520467284.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-18
Publication Date
2026-01-13
Estimated Expiration
2035-03-18

AI Technical Summary

Technical Problem

Wall-mounted energy storage devices suffer from poor stability during installation, especially due to the lack of an effective support system, which leads to swaying and unstable installation.

Method used

The installation equipment design includes a first frame, a lifting assembly, a traction assembly, and a support plate. One end of the support plate is hinged to the first fixed part of the lifting assembly, and the other end is movably connected to the traction assembly. The support plate is rotated by the traction assembly and raised to the installation height under the action of the drive component, ensuring stability.

Benefits of technology

It enables wall-mounted installation without manual support, reducing labor costs, simplifying installation, and preventing swaying through precise control of the traction components, thus improving installation stability and safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses mounting equipment for a wall-mounted energy storage device. The mounting equipment comprises a first frame, a lifting assembly, a traction assembly and a bearing disc, the lifting assembly comprises a second frame, a first fixing piece and a first driving piece. The first fixing pieces are symmetrically arranged on the two sides of the second frame. The second frame is movably connected with the first frame, and the first driving piece is used for driving the second frame to move in the vertical direction along the first frame; one end of the bearing disc is hinged to the first fixing piece, the other end of the bearing disc is movably connected with the traction assembly, and the bearing disc is used for fixing an energy storage device; the traction assembly is connected with the second frame and used for controlling the movable connecting end of the bearing disc to be close to or away from the second frame. Under the traction of the traction assembly, the bearing disc rotates around the hinged position of the first fixing piece, so that the bearing disc for fixing the energy storage device is changed into a vertical state from a horizontal state, finally, the bearing disc rises to the preset installation height under the action of the first driving piece, the manual installation cost is reduced, and meanwhile the installation difficulty is simplified.
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Description

Technical Field

[0001] This utility model relates to the field of installation, and in particular to an installation device for a wall-mounted energy storage device. Background Technology

[0002] With the widespread application of renewable energy, especially the rapid development of green energy such as solar and wind power, energy storage technology has become an important means to address energy fluctuations and improve energy efficiency. Wall-mounted energy storage devices are particularly popular in residential and small commercial settings due to their space-saving design and ease of installation. Wall-mounted energy storage devices are typically used to store electrical energy generated by devices such as solar panels to provide support during periods of high electricity demand.

[0003] However, the installation of wall-mounted energy storage devices still presents certain difficulties and challenges in the current technology. Because wall-mounted energy storage devices are typically bulky, installation requires multiple people and often lacks an effective support system to ensure stability. Traditional installation methods usually rely on manual assistance to fix the energy storage device to the wall, which is not only labor-intensive but also prone to instability, increasing the risk of equipment damage. Especially in the support design of the mounting plate, some traditional devices only fix the mounting plate at the bottom, which can easily cause the energy storage device to sway during installation, affecting installation accuracy and safety. Utility Model Content

[0004] The technical problem to be solved by this utility model is to provide an installation device for a wall-mounted energy storage device, thereby solving the problem of poor stability during the installation process of household wall-mounted energy storage devices.

[0005] To solve the above-mentioned technical problems, the technical solution adopted by this utility model is as follows:

[0006] An installation device for a wall-mounted energy storage device includes a first frame, a lifting assembly, a traction assembly, and a support plate;

[0007] The lifting assembly includes a second frame, a first fixing member, and a first driving member; the first fixing member is symmetrically arranged on both sides of the second frame; the second frame is movably connected to the first frame, and the first driving member is used to drive the second frame to move vertically along the first frame;

[0008] One end of the bearing disk is hinged to the first fixing member, and the other end of the bearing disk is movably connected to the traction assembly. The bearing disk is used to fix the energy storage device.

[0009] The traction component is connected to the second frame, and the traction component is used to control the movable connection end of the bearing plate to move closer to or away from the second frame.

[0010] In some embodiments, the traction assembly includes a second drive element, a traction element, and a cable;

[0011] The cable is connected to the traction member, which is movably connected to one end of the bearing plate. The second drive member is connected to the second frame. The second drive member is used to pull the cable to control the movable connection end of the bearing plate to move closer to or away from the second frame.

[0012] In some embodiments, the traction member includes a connecting arm and a traction arm, the traction arm being disposed at both ends of the connecting arm along its length and perpendicularly connected to the connecting arm, the connecting arm being connected to the cable, and the traction arm being hinged to one end of the bearing plate.

[0013] In some embodiments, the lifting assembly further includes a second fixing member, which is connected to the second frame and disposed parallel to the top of the first fixing member; the second fixing member is provided with a limiting groove, which is used to limit the movement of the traction arm.

[0014] In some embodiments, the vertical distance between the second fixing member and the first fixing member is matched with the position of the traction assembly at the movable connection of the bearing plate, so that the traction arm can be limited by the limiting groove.

[0015] In some embodiments, the traction arm is hinged to the bearing plate by a pin, and the pin cooperates with the limiting groove to limit the movement of the traction arm.

[0016] In some embodiments, a fixed pulley is provided at the top of the second frame, and the cable is wound around the fixed pulley and connected to the traction member.

[0017] In some embodiments, the second driving element is a winch mechanism.

[0018] In some embodiments, the second frame includes at least two symmetrically arranged tie rods, each of which is movably connected to the first frame; the first fixing member is symmetrically arranged on the two tie rods, and the first fixing member is hinged to both sides of the bottom end of the bearing plate.

[0019] In some embodiments, a caster wheel assembly is also included, which includes at least two main wheels and at least one auxiliary wheel. The main wheels are disposed parallel to the bottom of the first frame, and the auxiliary wheels are disposed away from the first frame and connected to the first frame via a connecting plate. A pedal is provided at the bottom of the first frame.

[0020] The beneficial effects of this utility model are as follows: It provides an installation device for a wall-mounted energy storage device, which uses a support plate to fix the energy storage device. One end of the support plate is hinged to the first fixing member in the lifting assembly, and the other end is movably connected to the traction assembly. Under the traction of the traction assembly, the support plate rotates around the hinge position of the first fixing member, thereby changing the support plate for fixing the energy storage device from a flat state to a vertical state. Finally, under the action of the first driving member, it rises to the preset installation height to complete the wall-mounted installation. No manual support is required, which reduces the labor cost of installation and simplifies the installation difficulty.

[0021] In addition, one end of the traction component is movably connected to the carrier plate to ensure the stability of the carrier plate during installation, avoid the shaking of the carrier plate when it is fixed at the bottom, and reduce the installation risk. Attached Figure Description

[0022] Figure 1 This is an unloaded schematic diagram of the installation equipment for a wall-mounted energy storage device according to an embodiment of this utility model;

[0023] Figure 2 This is a load diagram of the installation equipment for a wall-mounted energy storage device according to an embodiment of the present utility model;

[0024] Figure 3 This is a schematic diagram of the rising state of the energy storage device in the installation equipment of a wall-mounted energy storage device according to an embodiment of this utility model;

[0025] Figure 4 This is a schematic diagram showing the rotation state of the energy storage device in the installation equipment of a wall-mounted energy storage device according to an embodiment of this utility model;

[0026] Figure 5 This is a schematic diagram of the vertical state of the energy storage device in the installation equipment of a wall-mounted energy storage device according to an embodiment of the present utility model;

[0027] Figure 6 This is a schematic diagram of the unloading state of the installation equipment of a wall-mounted energy storage device in an embodiment of this utility model;

[0028] Label Explanation:

[0029] 1. First frame; 2. Lifting assembly; 21. Second frame; 22. First fixing component; 23. First driving component; 24. Second fixing component; 25. Fixed pulley; 26. Limiting groove; 3. Traction assembly; 31. Second driving component; 32. Traction component; 321. Connecting arm; 322. Traction arm; 33. Cable; 34. Pin; 4. Bearing plate; 5. Energy storage device; 6. Universal wheel assembly; 61. Main wheel; 62. Auxiliary wheel; 63. Pedal. Detailed Implementation

[0030] To explain in detail the technical content, objectives, and effects of this utility model, the following description is provided in conjunction with the embodiments and accompanying drawings.

[0031] Please refer to Figures 1 to 6 An installation device for a wall-mounted energy storage device includes a first frame 1, a lifting assembly 2, a traction assembly 3, and a support plate 4;

[0032] The lifting assembly 2 includes a second frame 21, a first fixing member 22, and a first driving member 23; the first fixing member 22 is symmetrically arranged on both sides of the second frame 21; the second frame 21 is movably connected to the first frame 1, and the first driving member 23 is used to drive the second frame 21 to move vertically along the first frame 1; specifically, the second frame 21 and the first frame 1 are movably connected through guide wheels.

[0033] One end of the bearing plate 4 is hinged to the first fixing member 22, and the other end of the bearing plate 4 is movably connected to the traction assembly 3. The bearing plate 4 is used to fix the energy storage device 5. The hinged connection can be achieved by using a pin 34, which facilitates the assembly and disassembly of the bearing plate 4 and the first fixing member 22.

[0034] The traction component 3 is connected to the second frame 21, and the traction component 3 is used to control the movable connection end of the bearing plate 4 to move closer to or further away from the second frame 21.

[0035] As can be seen from the above description, the beneficial effects of this utility model are as follows: the energy storage device 5 is fixed by the support plate 4, wherein one end of the support plate 4 is hinged to the first fixing member 22 in the lifting component 2, and the other end is movably connected to the traction component 3. Under the traction of the traction component 3, the support plate 4 rotates around the hinge position of the first fixing member 22, thereby changing the support plate 4 of the energy storage device 5 from a flat state to a vertical state. Finally, under the action of the first driving member 23, it rises to the preset installation height to complete the wall-mounted installation. No manual support is required, which reduces the labor installation cost and simplifies the installation difficulty.

[0036] It is understandable that this utility model adopts a hinged connection at one end of the bearing plate 4 and a traction method at the other end, so that the bearing plate 4 is always in a controllable state during rotation. At the same time, the traction method at one end of the bearing plate 4 is more labor-saving than simply using the hinged end to achieve rotation. In addition, the control effect of the traction end can ensure the stability of the bearing plate 4 during rotation, preventing the energy storage device 5 from shaking or even tipping over on the bearing plate 4, ensuring the stability of the bearing plate 4 during installation, and reducing installation risks.

[0037] Please refer to Figures 2 to 6 In some embodiments, the traction assembly 3 includes a second drive member 31, a traction member 32, and a cable 33;

[0038] The cable 33 is connected to the traction member 32, and the traction member 32 is movably connected to one end of the bearing plate 4. The second driving member 31 is connected to the second frame 21. The second driving member 31 is used to pull the cable 33 to control the movable connection end of the bearing plate 4 to move closer to or away from the second frame 21.

[0039] As described above, the traction assembly 3, through the combination of the second drive component 31, the traction component 32, and the cable 33, achieves precise control over the position of the carrying plate 4. The connection between the cable 33 and the traction component 32 ensures that the carrying plate 4 smoothly approaches or moves away from the second frame 21 during vertical lifting, providing flexible adjustment space for the installation of the energy storage device 5. The configuration of the second drive component 31 enables the traction assembly 3 to efficiently and stably control the entire installation process; whether lifting or lowering the equipment, the traction assembly 3 provides high stability based on precise positioning.

[0040] Specifically, the traction member 32 includes a connecting arm 321 and a traction arm 322. The traction arm 322 is located at both ends of the connecting arm 321 along its length and is perpendicularly connected to the connecting arm 321. The connecting arm 321 is connected to the cable 33, and the traction arm 322 is hinged to one end of the bearing plate 4.

[0041] As described above, the design of the traction component 32 combines the structures of the connecting arm 321 and the traction arm 322, enhancing the adjustability and flexibility of the equipment. The vertical connection between the connecting arm 321 and the traction arm 322, combined with the traction effect of the cable 33, further improves the ability of the bearing plate 4 to move precisely throughout the lifting process. Through this structural design, the traction component 3 can provide stronger support for the bearing plate 4, avoiding imbalance or deformation problems during lifting.

[0042] Meanwhile, cable 33 is directly connected to connecting arm 321, and the traction force is transmitted to the bearing plate 4 through traction arm 322. Through the transmission of the traction component 32, the traction force of cable 33 is prevented from directly acting on the bearing plate 4, thus avoiding swaying of the bearing plate 4 under complex traction forces and affecting the energy storage device 5. Instead, the traction component 32 acts as an intermediate component to absorb the traction force, and its own swing absorbs some of the non-directional traction force, making the bearing plate 4 more stable during traction. That is, during the movement of the bearing plate 4, the traction arm 322 can effectively balance the load, keeping the energy storage device 5 in a suitable position and avoiding structural damage or equipment failure caused by uneven load distribution. Through this optimized traction design, the stability and load-bearing capacity of the entire system are significantly improved, thereby ensuring the safety and reliability of the equipment.

[0043] Please refer to Figure 5 Furthermore, the lifting assembly 2 also includes a second fixing member 24, which is connected to the second frame 21 and is arranged parallel to the top of the first fixing member 22; the second fixing member 24 is provided with a limiting groove 26, which is used to limit the movement of the traction arm 322.

[0044] As described above, the connection design between the second fixing member 24 and the second frame 21 provides an effective limiting function for the traction assembly 3. By setting the limiting groove 26, the movement range of the traction arm 322 is precisely limited, avoiding damage or instability caused by exceeding the operating range. The limiting groove 26 not only improves equipment safety but also simplifies operation and reduces unnecessary adjustment time. For example, during operation, the limiting groove 26 ensures that the movement of the traction arm 322 does not exceed a predetermined safety range, making the movement of the bearing plate 4 more orderly. This design effectively avoids inaccurate installation position or instability of the energy storage device 5 caused by excessive movement of the traction arm 322, greatly improving operational accuracy and extending the equipment's lifespan.

[0045] Preferably, the vertical distance between the second fixing member 24 and the first fixing member 22 matches the position where the traction assembly 3 is movably connected to the bearing plate 4, so that the traction arm 322 can be limited by the limiting groove 26.

[0046] As described above, by ensuring the matching of the positions of the second fixing member 24 and the traction assembly 3, the operational stability of the equipment is further optimized. Specifically, the matching of the position of the traction assembly 3 and the carrier plate 4 in their movable connection with the spacing of the fixing member ensures that the traction arm 322 smoothly falls into the limiting groove 26 and is restricted from movement during the traction process, thus avoiding over-traction.

[0047] For example, the vertical distance between the second fixing member 24 and the first fixing member 22 is the first distance, and the distance between the position where the traction component 3 is movably connected to the bearing plate 4 and the position where the first fixing member 22 is hinged to the bearing plate 4 is the second distance. The values ​​of the first distance and the second distance are matched or approximately equal, thereby satisfying spatial geometry and ensuring that the traction arm 322 falls smoothly into the limiting groove 26 and is restricted from movement during the traction process. Preferably, in this embodiment, the lengths of the first fixing member 22 and the second fixing member 24 are equal, and the limiting groove 26 is located at the end of the second fixing member 24 away from the second frame 21. When the traction member 32 is limited by the limiting groove 26, it just ensures that the bearing plate 4 is perpendicular to the horizontal plane, without the need for manual adjustment, thus simplifying the installation difficulty.

[0048] Furthermore, the second fixing member 24 is slidably connected to the second frame 21, and its position can be flexibly adjusted according to the different sizes of the energy storage device 5 to complete the adjustment of the bearing plate 4 from flat to vertical. At the same time, the second fixing member 24 is a telescopic tie rod, which shortens the length of the second fixing member 24 after the traction arm 322 is limited by the limiting groove 26, so that the bearing plate 4 tilts in the direction of the installation equipment, thereby leaving an installation gap between the energy storage device 5 and the installation wall to facilitate the installation operation. The second fixing member can then be adjusted back to its original length to complete the installation.

[0049] In addition, the traction arm 322 is hinged to the bearing plate 4 via a pin 34, and the pin 34 cooperates with the limiting groove 26 to limit the movement of the traction arm 322.

[0050] As described above, while the traction arm 322 is hinged to the bearing plate 4 using the pin 34, the pin 34 also serves as a limiting component that engages with the fish-limiting groove 26. The protruding part of the pin 34 abuts against the limiting groove 26 to achieve a limiting effect. This achieves two functions with one component, saving manufacturing costs. Preferably, the limiting groove 26 is a U-shaped groove, and the groove opening direction matches the tangential direction of a certain rotation angle of the bearing plate 4. The area where the pin 34 engages with the U-shaped groove has a limiting design; for example, at least one side of the pin 34's abutting end is a plane, which engages with the U-shaped groove to further achieve the limiting effect.

[0051] In some embodiments, the top of the second frame 21 is provided with a fixed pulley 25, and the cable 33 is wound around the fixed pulley 25 and connected to the traction member 32.

[0052] As described above, a fixed pulley 25 is installed at the top of the second frame 21 to guide the movement of the cable 33, reducing friction and wear and extending the service life of the cable 33. This design provides a more stable operating environment for the traction assembly 3, preventing equipment failures caused by excessive wear or uneven movement of the cable 33. Furthermore, the use of the fixed pulley 25 further improves the stability of the entire system, making the operation of the traction assembly 3 smoother and enhancing the installation quality of the energy storage device.

[0053] In some embodiments, the second drive element 31 is a winch mechanism.

[0054] As described above, the winch mechanism, acting as the second driving component 31, possesses efficient and stable rope-pulling capabilities. It can precisely control the tension of the cable 33 through the operation of the winch, thereby achieving precise lifting and lowering of the carrying disc 4. This winch mechanism design not only effectively improves the control accuracy of the equipment but also simplifies operation steps and enhances the overall system efficiency. Specifically, the winch mechanism can be controlled electrically or manually; specifically, a hand drill can be used to insert into the drive shaft of the winch mechanism to control the cable 33.

[0055] In some embodiments, the second frame 21 includes at least two symmetrically arranged tie rods, which are movably connected to the first frame 1 respectively; the first fixing member 22 is symmetrically arranged on the two tie rods respectively, and the first fixing member 22 is hinged to both sides of the bottom end of the bearing plate 4 respectively.

[0056] As described above, by setting multiple symmetrical tie rods, the movable connection between the second frame 21 and the first frame 1 is strengthened, and the stability of the bearing plate 4 is ensured. The symmetrical tie rod structure not only improves the load-bearing capacity of the equipment, but also enables the lifting assembly 2 to maintain high stability in different environments, adapting to various installation requirements.

[0057] In some embodiments, a caster wheel assembly 6 is also included, which includes at least two main wheels 61 and at least one auxiliary wheel 62. The main wheels 61 are arranged parallel to the bottom of the first frame 1, and the auxiliary wheels 62 are arranged away from the first frame 1 and connected to the first frame 1 through a connecting plate. A pedal 63 is provided at the bottom of the first frame 1.

[0058] As described above, the omnidirectional wheel assembly 6 makes the movement of the entire device more flexible, especially in complex or confined working environments, providing greater maneuverability. The design of the auxiliary wheels 62 and the main wheels 61 allows the device to move more smoothly, and the pedal 63 provides additional stability, ensuring the device remains fixed in a suitable position during use, preventing slippage or tilting; furthermore, the pedal 63 suspends the auxiliary wheels 62, facilitating device installation and steering.

[0059] The installation method of the wall-mounted energy storage device 5 described above is as follows:

[0060] After fixing the energy storage device to the support plate 4, one end of the support plate 4 is hinged to the first fixing member 22;

[0061] Control the unloading of traction component 3 and movably connect traction component 3 to the other end of bearing plate 4;

[0062] The first driving component 23 is used to control the second frame 21 to rise to a preset height, so as to avoid interference between the bearing plate 4 and the ground when it rotates.

[0063] Control the traction component 3 to operate, so that the bearing plate 4 is close to the second frame 21 until the bearing plate 4 is perpendicular to the horizontal plane;

[0064] Move the mobile equipment to the installation area to complete the installation of the wall-mounted energy storage device.

[0065] Please refer to Figures 1 to 6 In some implementations, the above usage method is specifically as follows:

[0066] First: After fixing the energy storage device 5 to the carrier plate 4, use the pin 34 to hinge one end of the carrier plate 4 to the first fixing member 22, so that the carrier plate 4 and the lifting assembly 2 are assembled.

[0067] Second: Use an electric drill to insert into the drive shaft of the winch mechanism to loosen the cable 33 so that the traction component 32 and the bearing plate 4 can be hinged and fixed to the bearing plate 4 using the pin 34. After the fixing is completed, use the winch mechanism to tighten the cable 33.

[0068] Third: Use an electric drill to insert into the drive shaft of the lifting assembly 2 to raise the energy storage device 5 to a preset position (such as the pearl cotton at the bottom of the support plate 4). The purpose of this step is to prevent the energy storage device 5 from interfering with other accessories when it rotates in the next operation.

[0069] Fourth: Insert the electric drill into the drive shaft of the winch mechanism, causing the winch mechanism to tighten and pull the cable 33, thereby causing the bearing plate 4 to rotate around the hinge of the first fixing member 22 until the energy storage device 5 is rotated to a vertical position. At this time, the pin 34 is precisely engaged in the U-shaped groove of the second fixing member 24, preventing other parts of the energy storage device 5 from hitting the installation equipment when it is tightened.

[0070] Fifth: Move the lifting and installation equipment close to the wall where the energy storage device 5 is to be installed, and use an electric drill to rotate the drive shaft of the lifting assembly 2 to vertically adjust the up and down position of the energy storage device 5, so that the energy storage device 5 can be successfully hung on the wall (the wall is already equipped with hooks for hanging the energy storage device 5).

[0071] Sixth: Pull out the hinge pin 34 to separate the lifting installation vehicle from the energy storage device 5 and move and remove the installation equipment.

[0072] In summary, the wall-mounted energy storage device installation equipment provided by this utility model has significant beneficial effects, mainly reflected in simplifying the installation process, improving installation accuracy and stability, reducing labor costs, and improving the safety and reliability of the equipment.

[0073] Firstly, this invention innovatively designs a lifting and rotating mechanism for the support plate, utilizing the coordinated work of the lifting and traction components to ensure efficient and stable operation of the energy storage device during installation. One end of the support plate is hinged to the first fixed component, while the other end is controlled by the traction component to rotate around the hinge point, thereby adjusting the energy storage device from a horizontal to a vertical position. This design avoids the cumbersome manual operation required in traditional installation processes, significantly reducing labor input and improving installation efficiency. Through precise control of the traction component, the lifting and rotating process of the support plate can be accurately controlled, reducing potential errors during installation and ensuring the energy storage device remains stable and stable during installation, preventing damage or improper installation due to shaking or tilting.

[0074] Secondly, the design of the traction component enhances the stability and operability of the equipment. Through the cooperation of the cable and the traction element, the traction component allows the load-bearing plate to flexibly adjust its position during lifting and lowering. The structural design of the traction element, combined with the vertical connection between the connecting arm and the traction arm, not only effectively prevents the load-bearing plate from swaying or becoming unbalanced due to uneven force distribution, but also enhances the system's load-bearing capacity and stability. The movement of the traction component is controlled by the limiting groove set in the second fixing component, ensuring that the movement of the traction arm does not exceed the safe range, further improving the accuracy and safety of the installation process.

[0075] Furthermore, this invention specifically considers the flexibility and adaptability of the equipment. The symmetrical design of the second frame and the tie rod ensures the lifting assembly maintains high stability in various installation environments, accommodating the installation needs of energy storage devices of different sizes. Simultaneously, the omnidirectional wheel assembly allows the entire device to move flexibly in confined spaces or complex environments, greatly improving operational convenience and flexibility. The use of fixed pulleys reduces cable wear, extends the service life of the traction assembly, and ensures long-term stable operation of the equipment.

[0076] Furthermore, by combining the winch mechanism as a second driving component, this invention can precisely control the cable tension, ensuring the carrying disc remains stable and steady during lifting and lowering. The efficient operation of the winch mechanism makes the entire device more convenient to operate and can be adjusted manually or electrically to meet the needs of different working environments. The combined design of the pin and the limiting groove not only saves manufacturing costs but also achieves two functions with a single component, simplifying the installation process and enhancing the stability of the equipment.

[0077] The above description is merely an embodiment of this utility model and does not limit the patent scope of this utility model. Any equivalent modifications made based on the content of this utility model specification and drawings, or direct or indirect applications in related technical fields, are similarly included within the patent protection scope of this utility model.

Claims

1. An installation device for a wall-mounted energy storage device, characterized in that: Includes a first frame, lifting assembly, traction assembly, and load-bearing platform; The lifting assembly includes a second frame, a first fixing member, and a first driving member; the first fixing member is symmetrically arranged on both sides of the second frame; the second frame is movably connected to the first frame, and the first driving member is used to drive the second frame to move vertically along the first frame; One end of the bearing disk is hinged to the first fixing member, and the other end of the bearing disk is movably connected to the traction assembly. The bearing disk is used to fix the energy storage device. The traction component is connected to the second frame, and the traction component is used to control the movable connection end of the bearing plate to move closer to or away from the second frame.

2. The installation equipment for a wall-mounted energy storage device according to claim 1, characterized in that: The traction assembly includes a second drive component, a traction component, and a cable; The cable is connected to the traction member, which is movably connected to one end of the bearing plate. The second drive member is connected to the second frame. The second drive member is used to pull the cable to control the movable connection end of the bearing plate to move closer to or away from the second frame.

3. The installation equipment for a wall-mounted energy storage device according to claim 2, characterized in that: The traction component includes a connecting arm and a traction arm. The traction arm is located at both ends of the connecting arm along its length and is perpendicularly connected to the connecting arm. The connecting arm is connected to the cable, and the traction arm is hinged to one end of the bearing plate.

4. The installation equipment for a wall-mounted energy storage device according to claim 3, characterized in that: The lifting assembly further includes a second fixing member, which is connected to the second frame and is disposed parallel to the top of the first fixing member; the second fixing member is provided with a limiting groove, which is used to limit the movement of the traction arm.

5. The installation equipment for a wall-mounted energy storage device according to claim 4, characterized in that: The vertical distance between the second fixing member and the first fixing member matches the position of the traction assembly at the movable connection of the bearing plate, so that the traction arm can be limited by the limiting groove.

6. The installation equipment for a wall-mounted energy storage device according to claim 4, characterized in that: The traction arm is hinged to the bearing plate by a pin, and the pin cooperates with the limiting groove to limit the movement of the traction arm.

7. The installation equipment for a wall-mounted energy storage device according to claim 2, characterized in that: The top of the second frame is provided with a fixed pulley, and the cable is wound around the fixed pulley and connected to the traction member.

8. The installation equipment for a wall-mounted energy storage device according to claim 2, characterized in that: The second driving component is a winch mechanism.

9. The installation equipment for a wall-mounted energy storage device according to claim 1, characterized in that: The second frame includes at least two symmetrically arranged tie rods, which are movably connected to the first frame respectively; the first fixing member is symmetrically arranged on the two tie rods respectively, and the first fixing member is hinged to both sides of the bottom end of the bearing plate respectively.

10. The installation equipment for a wall-mounted energy storage device according to claim 1, characterized in that: It also includes a caster wheel assembly, which includes at least two main wheels and at least one auxiliary wheel. The main wheels are arranged parallel to the bottom of the first frame, and the auxiliary wheels are arranged away from the first frame and connected to the first frame through a connecting plate. A pedal is provided at the bottom of the first frame.