Transfer device for energy storage battery module

By designing a transfer device for components such as the outer frame bracket and drive displacement wheels, the problem of low efficiency in manual handling of new energy battery modules is solved, mechanized transfer is realized, and efficiency and safety are improved.

CN223444586UActive Publication Date: 2025-10-17JIANGSU ZHONGJUN POWER TECH CO LTD
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
CN202422994513.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-05
Publication Date
2025-10-17
Estimated Expiration
2034-12-05

AI Technical Summary

Technical Problem

In the existing technology, the handling and transfer of new energy battery modules mainly rely on manual operation, which consumes huge manpower, is inefficient, and is easy to fall.

Method used

A transfer device was designed, which includes components such as an outer frame bracket, connecting struts, connecting vertical poles, drive rollers and drive displacement wheels. It uses mechanized means to achieve stable support, lifting and transfer of battery modules, reducing manual operations.

Benefits of technology

The mechanized transfer of battery modules is realized, which reduces the burden of manual handling, improves transfer efficiency, avoids batteries from falling, and ensures the safety of the transfer process.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223444586U_ABST
    Figure CN223444586U_ABST
Patent Text Reader

Abstract

The utility model provides a transfer device for an energy storage battery module, which comprises a battery module supporting mechanism, the battery module supporting mechanism comprises an outer frame support which is supported on the ground, a plurality of connecting supporting rods are sequentially distributed on the surface of the outer frame support, and the connecting supporting rods are uniformly distributed on the surface of the outer frame support. Connecting vertical rods used for linkage are vertically installed at the four corners of the tops of the outer frame supports, pushing movement is achieved through the adopted driving displacement wheels and the arc-shaped attaching supports, the X-shaped supports are controlled to slide up and down along the outer walls of the connecting supporting rods, lifting is achieved, preparation is made for subsequent transfer of batteries from the ground to a battery box, and through the combination of the sliding rails, the connecting vertical rods and the X-shaped supports are combined. It is ensured that batteries placed on the ground are dragged to stretch out and draw back by starting the pressure cylinder, the placement position of a battery module is changed, manual carrying and unloading into a transfer device are replaced from the ground, the transfer pressure is relieved, the carrying and unloading efficiency is improved, and it is ensured that manual operation is completely replaced by mechanization in the carrying and unloading process of the battery module in the transfer stage.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The utility model relates to a transfer device for energy storage battery module. BACKGROUND

[0002] The battery module is a modular unit composed of one or more battery monomers, and forms a whole battery pack by being combined together. These modules usually connect the battery monomers in series, parallel or series-parallel connection mode, and each module has a positive and negative output terminal. The application number CN202323176900.5, a transfer device for energy storage battery module, includes a main body, several layers of frame bodies are arranged on the main body, the frame body has a folding state and a flat state, several groups of rolling supports are arranged on each layer of frame body, the energy storage battery module is placed on the rolling supports of each layer, when the energy storage battery module needs to be placed or taken out on the rolling supports, the frame body of the upper layer can be in the folding state, at this time, the frame body of the upper layer will not hinder any action of the worker, so that the work of placing or taking out the energy storage battery module becomes more convenient, the flat state of the frame body can block the energy storage battery module placed on the rolling supports, and the energy storage battery module will not fall off from the rolling supports during the transfer process, so that the transfer work of the energy storage battery module becomes easy and efficient.

[0003] The conventional new energy battery moving and transferring is usually manually moving the battery from the ground, using the shoulder of the person to carry or carry the battery, realizing the stacking of the battery module on the transfer device. However, this kind of original carrying method relying on manpower consumes a lot of manpower, and the moving and transferring efficiency of the battery module is not good, the battery module is easy to fall, and it is necessary to use machinery instead of manpower in the link of moving the battery from the ground to the transfer device. Utility model content

[0004] The utility model aims at providing a transfer device for energy storage battery module, to solve the problem of conventional new energy battery moving and transferring, which is usually manually moving the battery from the ground, using the shoulder of the person to carry or carry the battery, realizing the stacking of the battery module on the transfer device. However, this kind of original carrying method relying on manpower consumes a lot of manpower, and the moving and transferring efficiency of the battery module is not good, the battery module is easy to fall, and it is necessary to use machinery instead of manpower in the link of moving the battery from the ground to the transfer device.

[0005] The utility model discloses an intertransferring device for energy storage battery module, including battery module support mechanism, the battery module support mechanism includes with ground support's outer frame support, the surface of outer frame support is sequentially arranged with a plurality of connecting struts, a plurality of connecting struts are evenly arranged on the surface of outer frame support, the top four corners of a plurality of outer frame supports are vertically installed with the connecting vertical rod for linkage, the top middle part of a plurality of connecting vertical rods is installed with upper frame, the lateral wall of upper frame is equipped with assembly frame in proper order.

[0006] As a preferred scheme of the utility model: the top of upper frame is installed with support mechanism;

[0007] The support mechanism includes the support frame arranged on the top surface of connecting strut, the middle part of support frame is equipped with the drive roller shaft, the end of drive roller shaft is installed with the concave support, the end of concave support is equipped with the few type support end and is equipped with the shelter support.

[0008] As a preferred scheme of the utility model: the top of support frame is installed with the link buckle, the end of link buckle is installed with L type support, the end of L type support is sleeved with the limiting sleeve, the both sides of limiting sleeve are equipped with trapezoidal support respectively, and the bottom of trapezoidal support is connected with the surface of L type support.

[0009] As a preferred scheme of the utility model: the middle part of link buckle is equipped with dispatch support, and the surface of dispatch support is installed with inclined support.

[0010] As a preferred scheme of the utility model: the top middle part of assembly frame is installed with connecting mechanism;

[0011] The connecting mechanism includes the access strut installed on the both sides of the top of assembly frame, the top of access strut is installed with telescopic strut, the output end of telescopic strut is equipped with pneumatic pressure cylinder, and the telescopic end of cylinder body of pneumatic pressure cylinder is installed with X type support.

[0012] As a preferred scheme of the utility model: the bottom of X type support is installed with hinged support, the four corner positions of hinged support are equipped with link frame, the end of hinged support is installed with link frame, the end of link frame is equipped with hinged movable joint, the end of hinged movable joint is equipped with lifting pressure cylinder, and the output end of lifting pressure cylinder and the bottom end of lower end are installed with telescopic rod.

[0013] As a preferred scheme of the utility model: the bottom of telescopic rod is installed with energy storage mechanism:

[0014] The energy storage mechanism: including the energy storage battery box installed on the top of upper frame, and the battery module is embedded in the box body inside of energy storage battery box.

[0015] As a preferred scheme of the utility model: the bottom of the outer frame support is set up with the surface of the energy storage battery box, the bottom surface of the outer frame support is installed with a lifting mechanism:

[0016] The lifting mechanism comprises an arc-shaped fitting support installed on the bottom surface of the outer frame support in sequence, a driving displacement wheel is installed at the bottom end of the arc-shaped fitting support, push supports are respectively installed on both sides of the upper frame, and a push rod is arranged at the end of the push support.

[0017] Compared with the prior art, the utility model has the beneficial effects that:

[0018] 1) the outer frame support, the connecting support rod and the connecting vertical rod are adopted, the battery module is stably supported by the connecting support rod, the weight of the module transfer stage is shared, the transfer pressure is reduced, the driving displacement wheel and the arc-shaped fitting support are adopted, the battery is moved along the ground by the driving displacement wheel in the battery transfer stage, the energy storage battery module is transferred for a short distance, the X-shaped support is controlled to slide up and down along the outer wall of the connecting support rod with the help of the connecting support rod and the telescopic support rod, lifting is realized, preparation for transferring the subsequent battery from the ground to the battery box is made, the battery placed on the ground is ensured to be pulled and stretched by starting the pressure cylinder in combination with the sliding rail, the placement position of the battery module is changed, the battery is manually lifted and unloaded into the transfer device from the ground, the transfer pressure is reduced, the lifting and unloading efficiency is improved, and the lifting and unloading process of the battery module transfer stage is completely replaced by mechanization.

[0019] 2) the fixed placement of the battery is achieved through the L-shaped support, the snap fastener and the limiting sleeve, at this time, the battery pack transferred over receives the placement support of the L-shaped support, the weight of the battery lock under pressure is shared, the interval between the adjacent trapezoidal supports is changed according to the hinge structure between the shielding support and the inclined support, when the battery pack is transferred from the L-shaped support area, it is directly placed into the transfer space, the surrounding recessed supports bear the weight of the battery, the final lifting of the battery is completed, the battery is prevented from falling and causing accidental damage. DRAWINGS

[0020] The drawings are used to provide a further understanding of the utility model, and constitute a part of the specification, are used together with the embodiments of the utility model to explain the utility model, and do not constitute a limitation on the utility model. In the drawings:

[0021] Figure 1 It is a structural schematic view of the utility model;

[0022] Figure 2 It is a structural schematic view of the battery module support mechanism of the utility model;

[0023] Figure 3 It is a structural schematic view of the connecting mechanism of the utility model;

[0024] Figure 4 is a structural schematic view of the lifting mechanism of the utility model;

[0025] Figure 5 is a structural schematic view of the X-shaped support of the utility model;

[0026] Figure 6 is a structural schematic view of the pushing support of the utility model;

[0027] Figure 7 is a structural schematic view of the dispatching support of the utility model;

[0028] Figure 8 is a structural schematic view of the supporting mechanism of the utility model;

[0029] Figure 9 is a structural schematic view of the driving displacement wheel of the utility model.

[0030] In the figure: 1, battery module supporting mechanism; 11, outer frame support; 12, connecting support rod; 13, connecting vertical rod; 14, upper frame; 15, assembly frame;

[0031] 3, supporting mechanism; 31, supporting frame; 32, driving roller shaft; 33, concave support; 34, several character support; 35, shielding support; 37, connecting hasp; 38, L-shaped support; 39, limiting sleeve; 391, trapezoidal support; 392, dispatching support; 393, inclined support;

[0032] 4, connecting mechanism; 41, access support rod; 42, telescopic support rod; 43, pneumatic pressure cylinder; 44, X-shaped support; 45, hinged support; 46, connecting frame; 47, hinged movable joint; 48, lifting pressure cylinder; 49, telescopic rod;

[0033] 5, energy storage mechanism; 51, energy storage battery box;

[0034] 6, lifting mechanism; 61, arc-shaped matching support; 62, driving displacement wheel; 63, pushing support; 64, pushing rod. DETAILED DESCRIPTION

[0035] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the protection scope of the utility model.

[0036] EMBODIMENT

[0037] Please refer to Figures 1-9The utility model provides a kind of technical scheme: a transfer device for energy storage battery module, including battery module support mechanism 1, battery module support mechanism 1 includes with the outer frame support 11 of ground support, the surface of outer frame support 11 is sequentially laid with several connecting struts 12, several connecting struts 12 are evenly arranged on the surface of outer frame support 11, the top four corners of several outer frame supports 11 are vertically installed with the connecting vertical rod 13 for linkage, the top end middle part of several connecting vertical rods 13 is installed with upper frame 14, the side wall of upper frame 14 is sequentially provided with assembly frame 15.

[0038] In the embodiment: the top end of upper frame 14 is installed with support mechanism 3;

[0039] Support mechanism 3 includes the support frame 31 being arranged on the top surface of connecting strut 12, the middle part of support frame 31 is equipped with drive roller shaft 32, the end of drive roller shaft 32 is installed with concave bracket 33, the end of concave bracket 33 is equipped with several character brackets 34, and the end of several character brackets 34 is equipped with shielding bracket 35.

[0040] In the embodiment: the top end of support frame 31 is installed with link buckle 37, the end of link buckle 37 is installed with L-shaped bracket 38, the end of L-shaped bracket 38 is sleeved with limit sleeve 39, and the two sides of limit sleeve 39 are respectively equipped with trapezoidal bracket 391, and the bottom of trapezoidal bracket 391 is connected with the surface of L-shaped bracket 38.

[0041] L-shaped bracket 38 and limit sleeve 39 are used, when battery group is placed, ensure that the weight of battery is completely pulled by L-shaped bracket 38 and dispersed.

[0042] In the embodiment: the middle part of link buckle 37 is equipped with dispatch bracket 392, and the surface of dispatch bracket 392 is installed with inclined bracket 393.

[0043] Dispatch bracket 392 and inclined bracket 393 are used, according to the number of battery placement, the opening size of adjacent L-shaped bracket 38 and shielding bracket 35 is changed, so as to adapt battery and play the role of clamping battery.

[0044] In the embodiment: the top end middle part of assembly frame 15 is installed with connecting mechanism 4;

[0045] Connecting mechanism 4 includes that access strut 41 is installed on the top two sides of assembly frame 15, the top end of access strut 41 is installed with telescopic strut 42, the output end of telescopic strut 42 is equipped with pneumatic pressure cylinder 43, and the cylinder telescopic end of pneumatic pressure cylinder 43 is installed with X-shaped bracket 44.

[0046] The pneumatic pressure cylinder 43 is controlled by electricity to control the position of the X-shaped support 44, complete the up and down movement, change the position of the energy storage battery module, pull up from the ground and place it into the transfer device.

[0047] In this embodiment: the bottom of the X-shaped support 44 is provided with a hinged support 45, the four corners of the hinged support 45 are provided with a connection frame 46, the end of the hinged support 45 is provided with a connection frame 46, the end of the connection frame 46 is provided with a hinged movable joint 47, the end of the hinged movable joint 47 is provided with a lifting pressure cylinder 48, and the output end of the lifting pressure cylinder 48 is provided with a telescopic rod 49 at the bottom end.

[0048] The hinged movable joint 47 and the lifting pressure cylinder 48 are used to disperse the weight of the battery concentrated in one place to the support point position of the four lifting pressure cylinders 48, and then the telescopic support rod 42 is used to complete the battery transfer.

[0049] In this embodiment: the bottom of the telescopic rod 49 is provided with an energy storage mechanism 5:

[0050] The energy storage mechanism 5 includes an energy storage battery box 51 installed on the top of the upper frame 14, and the box body of the energy storage battery box 51 is embedded with a battery module.

[0051] The energy storage battery box 51 is used as a storage place for the storage battery, and plays a role in rain protection when encountering bad weather.

[0052] In this embodiment: the bottom of the outer frame support 11 is provided with a surface lifting device for the energy storage battery box 51, and the bottom surface of the outer frame support 11 is provided with a lifting mechanism 6:

[0053] The lifting mechanism 6 includes an arc-shaped fitting support 61 installed on the bottom surface of the outer frame support 11, a driving displacement wheel 62 installed at the bottom end of the arc-shaped fitting support 61, a pushing support 63 installed on both sides of the upper frame 14, and a pushing rod 64 provided at the end of the pushing support 63.

[0054] The driving displacement wheel 62 and the pushing support 63 are used to drive the displacement wheel 62 along the ground to transfer the energy storage battery.

[0055] Step one: lower the energy storage battery module;

[0056] According to the connection of the support rod 41, the telescopic support rod 42 is powered, the lifting of the connection support rod 41 is realized by the cylinder body of the pneumatic pressure cylinder 43, the X-shaped support 44 is driven to move linearly, the battery pack is clamped, or the battery transfer is completed by using a binding band, and at this time one end of the connection support rod 41 moves back and forth along the position of the upper frame 14.

[0057] Step two: store the battery;

[0058] By driving the roller shaft 32 hinge, change the concave bracket 33 interval position, according to the position between L-shaped bracket 38 and trapezoidal bracket 391, using the interval of scheduling bracket 392 cooperation, placed to the surface of the energy storage battery box 51 complete support;

[0059] Step three: transfer movement;

[0060] By arc-shaped fitting bracket 61 and drive displacement wheel 62 around the ground to other areas, handheld push bracket 63 and push rod 64 surface to achieve push transfer.

[0061] The contents not described in detail in the description belong to the prior art known to those skilled in the art, although the utility model has been described in detail with reference to the foregoing embodiments, for those skilled in the art, still can modify the technical scheme recorded in the foregoing embodiments, or equivalent replacement to part of the technical features, any modification, equivalent replacement, improvement etc. made within the spirit and principles of the utility model, should be included in the protection scope of the utility model.

Claims

1. A transport device for an energy storage battery module, comprising a battery module support mechanism (1), characterized in that: The battery module support mechanism (1) includes an outer frame bracket (11) supported by the ground, a plurality of connecting struts (12) are sequentially arranged on the surface of the outer frame bracket (11), and the plurality of connecting struts (12) are evenly arranged on the surface of the outer frame bracket (11), and connecting vertical rods (13) for linkage are vertically installed at the four corners of the top of the plurality of outer frame brackets (11), and an upper frame (14) is installed at the middle of the top of the plurality of connecting vertical rods (13), and the side walls of the upper frame (14) are sequentially provided with assembly frames (15).

2. The transport device for energy storage battery modules according to claim 1, characterized in that: A support mechanism (3) is installed on the top of the upper frame (14); The support mechanism (3) comprises a support frame (31) arranged on the top surface of the connecting support rod (12), a driving roller shaft (32) is provided in the middle of the support frame (31), a concave bracket (33) is installed at the end of the driving roller shaft (32), and a "F" bracket (34) is provided at the end of the concave bracket (33), and a shielding bracket (35) is provided at the end of the concave bracket (33).

3. The transport device for energy storage battery modules according to claim 2, characterized in that: A connecting buckle (37) is installed at the top of the support frame (31), an L-shaped bracket (38) is installed at the end of the connecting buckle (37), the end of the L-shaped bracket (38) is sleeved with a limiting sleeve (39), and trapezoidal brackets (391) are respectively provided on both sides of the limiting sleeve (39), and the bottom of the trapezoidal bracket (391) is fitted and connected to the surface of the L-shaped bracket (38).

4. The transport device for energy storage battery modules according to claim 3, characterized in that: An adjustment bracket (392) is provided in the middle of the engagement buckle (37), and an inclined bracket (393) is installed on the surface of the adjustment bracket (392).

5. The transport device for energy storage battery modules according to claim 1, characterized in that: A connecting mechanism (4) is installed at the middle of the top end of the assembly frame (15); The connecting mechanism (4) includes access struts (41) installed on both sides of the top of the assembly frame (15), a telescopic strut (42) installed on the top of the access strut (41), a pneumatic cylinder (43) installed at the output end of the telescopic strut (42), and an X-shaped bracket (44) installed at the telescopic end of the cylinder body of the pneumatic cylinder (43).

6. The transport device for energy storage battery modules according to claim 5, characterized in that: An articulated bracket (45) is installed at the bottom of the X-shaped bracket (44), and connecting brackets (46) are installed at the four corners of the articulated bracket (45). The end of the articulated bracket (45) is installed with a connecting bracket (46), and the end of the connecting bracket (46) is provided with an articulated movable joint (47). The end of the articulated movable joint (47) is provided with a lifting cylinder (48), and a telescopic rod (49) is installed at the output end and the bottom end of the lower end of the lifting cylinder (48).

7. The transport device for energy storage battery modules according to claim 6, characterized in that: An energy storage mechanism (5) is installed at the bottom of the telescopic rod (49): The energy storage mechanism (5) comprises an energy storage battery box (51) mounted on the top of the upper frame (14), wherein a battery module is embedded in the box body of the energy storage battery box (51).

8. The transport device for energy storage battery modules according to claim 1, characterized in that: The bottom of the outer frame bracket (11) is supported by the surface of the energy storage battery box (51), and a supporting mechanism (6) is installed on the bottom surface of the outer frame bracket (11): The lifting mechanism (6) comprises an arc-shaped fitting bracket (61) mounted on the bottom surface of the outer frame bracket (11), a driving displacement wheel (62) being mounted on the bottom end of the arc-shaped fitting bracket (61), and pushing brackets (63) being mounted on both sides of the upper frame (14), and a pushing rod (64) being mounted at the end of the pushing bracket (63).

Citation Information

Patent Citations

  • Transfer device for energy storage battery module

    CN220924189U