Battery pack pressurization and resting apparatus and battery processing system

By designing a battery pack pressurization and stabilization device with an adjustable-spacing lifting plate and a precise positioning detection component, the problems of low efficiency and inaccurate positioning in battery pack pressurization and stabilization devices were solved, enabling efficient and stable processing of multiple battery pack models.

CN117293378BActive Publication Date: 2026-05-19江苏烽禾升智能科技有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
江苏烽禾升智能科技有限公司
Filing Date
2023-10-31
Publication Date
2026-05-19

AI Technical Summary

Technical Problem

Existing battery pack pressurization and static settling equipment suffers from low production efficiency and inaccurate positioning. In particular, when dealing with different battery pack models, it requires frequent module replacement and parameter adjustment, resulting in complex processing and inconsistent quality.

Method used

A battery pack pressurization and static placement device was designed, comprising a support mechanism, a lifting mechanism, a positioning plate, a positioning detection component, and a pressurization and static placement mechanism. The lifting mechanism eliminates the need to transfer battery packs, and the device utilizes an adjustable-spacing lifting plate and a precise positioning detection component to achieve stable pressurization and static placement of various battery pack models.

Benefits of technology

It shortens the production cycle, improves the efficiency and accuracy of battery pack pressurization and static setting, adapts to various battery pack models, reduces operational complexity, and enhances product quality consistency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application provides a battery pack pressurizing and standing device and a battery processing system, which comprises a supporting mechanism, the inside of the supporting mechanism being a working area; a jacking mechanism arranged in the working area, the jacking mechanism comprising a jacking beam, the jacking beam moving up and down along the height direction of the supporting mechanism; a positioning plate, the positioning plate moving synchronously with the jacking beam, the positioning plate being provided with a first sliding rail, a second sliding rail and a battery pack mounting plate positioning element, wherein the first sliding rail extends along a first direction, the second sliding rail extends along a second direction and moves along the first sliding rail, and the battery pack mounting plate positioning element is connected to the second sliding rail and moves along the second sliding rail; a positioning detection assembly, the positioning detection assembly being connected to the supporting mechanism and being arranged around the positioning plate, the positioning detection assembly comprising a plurality of detectors; and a pressurizing and standing mechanism, the pressurizing and standing mechanism being arranged in the working area, the pressurizing and standing mechanism comprising at least one pressing plate and at least one pressurizing driver, the pressing plate being connected to the pressurizing driver and moving towards or away from the jacking mechanism.
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Description

Technical Field

[0001] This invention relates to the field of battery processing technology, specifically to a battery pack pressurization and static setting device and a battery processing system. Background Technology

[0002] The pressurized formation process during battery pack production can improve battery capacity and consistency, and also make the battery appearance more upright and compact. Therefore, pressurized static processing of battery packs has become an essential step at present.

[0003] Currently, most battery pack heating and settling processes in the industry require transferring the battery packs from AGV carts to dedicated pressurization equipment. This setup requires at least two production cycles and necessitates additional handling equipment before and after the transfer, significantly increasing processing costs. Furthermore, due to differences in battery pack capacity, usage scenarios, and weight, their dimensions vary. Therefore, different pressurization modules must be replaced or pressurization equipment parameters adjusted before each use, severely complicating the operation and reducing processing efficiency. Additionally, differences in battery pack models and operational errors in handling equipment prevent precise pressurization positioning, further reducing the effectiveness and resulting in inconsistent product quality. Therefore, developing a pressurization equipment that shortens production cycles, is compatible with various battery packs, and provides stable pressurization results is crucial for improving the overall production efficiency of battery packs. Summary of the Invention

[0004] Therefore, the technical problem to be solved by the present invention is to overcome the problems of low efficiency and inaccurate positioning of battery pack pressurization and static placement in the prior art, and to provide a battery pack pressurization and static placement device and a battery processing system.

[0005] To solve the above-mentioned technical problems, the present invention provides a battery pack pressurization and settling device, comprising: a support mechanism, the interior of which is a working area; a lifting mechanism disposed within the working area, comprising a lifting beam that moves up and down along the height direction of the support mechanism; a positioning plate connected to the lifting beam and moving synchronously therewith, having at least one first slide rail, at least one second slide rail, and multiple battery pack mounting plate positioning members thereon, wherein the first slide rail extends along a first direction, the second slide rail is connected to the first slide rail and extends along a second direction and moves along the first slide rail, and the battery pack mounting plate positioning members are connected to the second slide rail and move along the second slide rail; a positioning detection component connected to the support mechanism and disposed around the positioning plate, comprising multiple detectors; and a pressurization and settling mechanism disposed within the working area, comprising at least one pressure plate and at least one pressurization actuator, the pressure plate being connected to the pressurization actuator and moving toward / away from the lifting mechanism.

[0006] In one embodiment of the present invention, the lifting mechanism further includes a lateral adjustment mechanism and a longitudinal adjustment mechanism. The lateral adjustment mechanism extends along the second direction, and the longitudinal adjustment mechanism is connected to the lateral adjustment mechanism, extends along a third direction, and moves along the lateral adjustment mechanism. The lifting beam is connected to the longitudinal adjustment mechanism and moves along the longitudinal adjustment mechanism.

[0007] In one embodiment of the present invention, the lateral adjustment mechanism includes a third slide rail extending along a second direction, and the longitudinal adjustment mechanism includes a fourth slide rail extending along the third direction. The fourth slide rail is connected to the third slide rail and moves along the third slide rail. The lifting beam is connected to the fourth slide rail and moves synchronously with the fourth slide rail and moves up and down along the fourth slide rail.

[0008] In one embodiment of the present invention, the lifting beam is provided with a plurality of positioning plates and positioning components.

[0009] In one embodiment of the present invention, the positioning detection component includes a plurality of connecting plates, at least one of the connecting plates is provided with at least one detector slide rail, the detector slide rail extends in the same direction as the connecting plate to which it is connected, and the at least one detector is slidably connected to the detector slide rail.

[0010] In one embodiment of the present invention, the pressurized static mechanism further includes a mounting frame and a fixing plate. The mounting frame is connected to the support mechanism, and the fixing plate is connected to the mounting frame along a third direction. The fixing plate has a guide groove extending in the same direction as the mounting frame at its center.

[0011] In one embodiment of the present invention, a plurality of pressure strips are provided at intervals on the working surface of the pressure plate.

[0012] In one embodiment of the present invention, it further includes a control mechanism, which is connected to the lifting mechanism and the pressurized stationary mechanism respectively, and includes a controller and a sensing component.

[0013] To address the aforementioned technical problems, the present invention also provides a battery processing system, which includes the aforementioned battery pack pressurization and static placement equipment and an AGV trolley, with the battery pack mounting plate supported on the AGV trolley.

[0014] In one embodiment of the present invention, it further includes a feeding device and a discharging device, wherein the feeding device and the discharging device are respectively disposed on both sides of the working area.

[0015] The technical solution of the present invention has the following advantages compared with the prior art:

[0016] The battery pack pressurization and settling equipment and battery processing system described in this invention uses a lifting mechanism to lift the battery pack mounting plate carrying the battery pack, eliminating the need for separate transport of the battery pack and reducing the processing cycle time for pressurization and settling. This initially reduces the usage time of the pressurization and settling process. Furthermore, the adjustable-spacing lifting plate in this equipment allows it to be used with various battery pack models, enabling operators to continuously perform pressurization and settling processing on multiple battery packs without repeatedly changing components. In addition, the positioning detection component in this invention enables precise positioning of the battery pack processing location, thereby greatly improving the effectiveness of the pressurization and settling process. Therefore, this invention provides a pressurization and settling equipment that can shorten the production cycle time, is compatible with various battery packs, and provides stable pressurization and settling results. Attached Figure Description

[0017] To make the content of this invention easier to understand, the invention will be further described in detail below with reference to specific embodiments and accompanying drawings.

[0018] Figure 1 This is a three-dimensional schematic diagram of the battery pack pressurization and stabilization device in a preferred embodiment of the present invention;

[0019] Figure 2 yes Figure 1 A three-dimensional schematic diagram of the lifting beam, the lateral adjustment mechanism, and the longitudinal adjustment mechanism in the battery pack pressurization and static placement device shown.

[0020] Figure 3 yes Figure 1 A three-dimensional schematic diagram of the positioning plate in the battery pack pressurization and stabilization device shown;

[0021] Figure 4 yes Figure 1A three-dimensional schematic diagram of the positioning detection component in the battery pack pressurization and static setting device shown;

[0022] Figure 5 yes Figure 1 A three-dimensional schematic diagram of the pressurization and settling mechanism in the battery pack pressurization and settling device shown;

[0023] Figure 6 yes Figure 1 A three-dimensional schematic diagram of the pressurizing and settling mechanism in the battery pack pressurizing and settling device shown from another perspective.

[0024] Explanation of reference numerals in the accompanying drawings: 100, Lifting mechanism; 110, Lifting beam; 111, Positioning plate positioning component; 120, Lateral adjustment mechanism; 121, Lateral actuator; 122, Third slide rail; 130, Longitudinal adjustment mechanism; 131, Longitudinal actuator; 132, Fourth slide rail; 140, Positioning plate; 141, First slide rail; 142, Battery pack mounting plate positioning component; 143, Second slide rail; 150, Positioning detection component; 151, Detector; 152, Detector slide rail; 153, Connecting plate; 200, Pressurized stationary mechanism; 210, Mounting frame; 220, Pressurized actuator; 230, Pressure plate; 231, Pressure strip; 240, Fixing plate; 241, Guide groove; 300, Support mechanism; 310, Support frame; 320, Working area; 400, Control mechanism; 410, Controller; 420, Sensing component. Detailed Implementation

[0025] The present invention will be further described below with reference to the accompanying drawings and specific embodiments, so that those skilled in the art can better understand and implement the present invention. However, the embodiments described are not intended to limit the present invention. Example 1

[0026] This embodiment provides a battery pack pressurization and static placement device, which includes: a support mechanism 300, the interior of which is a working area 320; a lifting mechanism 100, disposed within the working area 320, which includes a lifting beam 110 that moves vertically and vertically along the height direction of the support mechanism 300; and a positioning plate 140 connected to the lifting beam 110 and moving synchronously therewith, which is provided with at least one first slide rail 141, at least one second slide rail 143, and multiple battery pack mounting plate positioning members 142, wherein the first slide rail 141 extends along a first direction, and the second slide rail 143... A battery pack mounting plate positioning component 142 is connected to a first slide rail 141, extends along a second direction, and moves along the first slide rail 141. A positioning detection component 150 is connected to the support mechanism 300 and arranged around the positioning plate 140, and includes multiple detectors 151. A pressurizing and settling mechanism 200 is arranged within the working area 320, and includes at least one pressure plate 230 and at least one pressurizing actuator 220. The pressure plate 230 is connected to the pressurizing actuator 220 and moves toward / away from the lifting mechanism 100. For ease of description, in this embodiment, the length direction of the device is defined as the first direction, the width direction as the second direction, and the height direction as the third direction, and the first, second, and third directions are perpendicular to each other.

[0027] The battery pack pressurization and settling equipment of the present invention uses a lifting mechanism 100 to lift the battery pack mounting plate carrying the battery pack, eliminating the need for separate transport of the battery pack and reducing the processing cycle time for pressurization and settling. This initially reduces the time required for the pressurization and settling process. Furthermore, the adjustable-spacing lifting plate in this equipment allows it to be used with various battery pack models, enabling operators to continuously perform pressurization and settling processing on multiple battery packs without repeatedly changing components. In addition, the positioning detection component 150 in this invention enables precise positioning of the battery pack processing location, thereby greatly improving the effectiveness of the pressurization and settling process. Therefore, the present invention is a battery pack pressurization and settling equipment that can shorten the production cycle time, is compatible with various battery packs, and provides stable pressurization and settling results.

[0028] See Figure 1As shown, in this embodiment, the support mechanism 300 is preferably a cubic support frame 310, the interior of which is a working area 320. The lifting mechanism 100 and the pressurizing and stationary mechanism 200 are both disposed within the working area 320. During use, the AGV trolley carrying the battery pack mounting plate enters the working area 320 from one end of the support frame 310 along a first direction, and leaves the processing area along the opposite end of the first direction after processing. Furthermore, the structure of the support frame 310 in this application allows observers to monitor the operation inside the working area 320 in real time, facilitating timely maintenance and debugging. In addition, this embodiment also includes a control mechanism 400, which is connected to the lifting mechanism 100 and the pressurizing and stationary mechanism 200 respectively. It includes a controller 410 and a sensing component 420. Specifically, in this embodiment, the control mechanism 400 controls the lifting mechanism 100 and the pressurizing and stationary mechanism 200 through signal connection. The sensing component 420 is preferably an infrared scanner, which can perform real-time scanning and monitoring of the interior of the working area 320, thereby further improving the operational accuracy and controllability of the equipment.

[0029] In this embodiment, in the third direction, the lifting beam 110 is supported below the positioning plate 140. During use, the battery pack mounting plate is driven into the working area 320 by the AGV trolley and then transported to the positioning plate 140. The lifting beam 110 drives the positioning plate 140 and the battery pack mounting plate on it to rise synchronously, thus realizing the cooperative operation between the lifting mechanism 100 and the pressurized stationary mechanism 200.

[0030] See Figure 2 As shown, the lifting mechanism 100 also includes a lateral adjustment mechanism 120 and a longitudinal adjustment mechanism 130. The lateral adjustment mechanism 120 extends along a second direction, and the longitudinal adjustment mechanism 130 is connected to the lateral adjustment mechanism 120, extends along a third direction, and moves along the lateral adjustment mechanism 120. The lifting beam 110 is connected to the longitudinal adjustment mechanism 130 and moves along the longitudinal adjustment mechanism 130. Further, the lateral adjustment mechanism 120 includes a third slide rail 122 extending along the second direction, and the longitudinal adjustment mechanism 130 includes a fourth slide rail 132 extending along a third direction. The fourth slide rail 132 is connected to the third slide rail 122 and moves along the third slide rail 122. The lifting beam 110 is connected to the fourth slide rail 132, moves synchronously with the fourth slide rail 132, and moves up and down along the fourth slide rail 132. In this embodiment, in the second direction, two sets of lifting beams 110 are symmetrically arranged on both sides of the working area 320. Correspondingly, the bottom of each set of lifting beams 110 is connected to a lateral adjustment mechanism 120 and a longitudinal adjustment mechanism 130. For ease of description, this section will use one set of lifting beams 110, the lateral drive mechanism, and the longitudinal drive mechanism as an example. See [link to documentation]. Figure 2As shown, in this embodiment, the lateral drive mechanism includes a lateral mounting plate and a plurality of third slide rails 122 disposed thereon. Each third slide rail 122 is connected to a lateral driver 121. The lateral mounting plate extends along a first direction and its upper surface is horizontally disposed. The plurality of third slide rails 122 are arranged at intervals along the first direction and all extend parallel to each other along a second direction. The lateral driver 121 is preferably a motor, which is used to provide a driving force for the longitudinal drive mechanism to move along the third slide rails 122. In this embodiment, the longitudinal drive mechanism includes a longitudinal mounting plate and a plurality of fourth slide rails 132 disposed thereon. The bottom of the longitudinal mounting plate is provided with a groove that can cooperate with the third slide rail 122, which is used to drive the fourth slide rail 132 and the lifting beam 110 connected thereon to move synchronously along the second direction, thereby achieving the purpose of adjusting the spacing between the two sets of lifting beams 110 in the second direction. Furthermore, the plurality of fourth slide rails 132 are arranged at intervals along the first direction and extend parallel to the third direction. Each fourth slide rail 132 is connected to a longitudinal driver 131. The bottom surface of the lifting beam 110 is connected to the fourth slide rail 132 and moves reciprocally up and down through the fourth slide rail 132, thereby achieving the purpose of adjusting the lifting height of the lifting beam 110. Furthermore, in this embodiment, the longitudinal drive mechanism is also preferably a motor. Specifically, multiple positioning plate positioning elements 111 for positioning and connecting positioning plates 140 are provided at intervals at the top of any lifting beam 110. Each positioning plate positioning element 111 is configured as a protrusion protruding from the surface of the lifting beam 110. In use, the distance and height between two lifting beams 110 can be adjusted to fit the corresponding positioning plate 140, thereby improving the overall compatibility of the device. In other embodiments, the lateral drive mechanism and the longitudinal drive mechanism can be configured as cylinders or other components with driving functions. The connection position and number of the lifting beam 110, the lateral drive mechanism, and the longitudinal drive mechanism can be adjusted according to the size, weight, and other parameters of the battery pack to be lifted. This invention does not impose specific limitations on these parameters.

[0031] See Figure 3As shown, the positioning plate 140 is a rectangular plate that cooperates with the battery pack mounting plate. Its bottom end is provided with a positioning point for the lifting beam 110 to pass through and connect. In the above process, the lifting beam 110 realizes the initial adjustment of the positioning plate 140 through the horizontal adjustment mechanism 120 and the vertical adjustment mechanism 130. Next, the positioning plate 140 can be adjusted and adapted to the applicable battery pack in the second direction through the interconnected second slide rail 143 and the first slide rail 141, so that it can be tightly clamped to the battery pack. This fundamentally avoids factors such as positional displacement or shaking of the battery pack during the pressurized and static process, thereby greatly improving the finished product quality of the battery pack after compression and static. Accordingly, in this embodiment, the second slide rail 143 and the third slide rail 122 extend in the same direction, and the first slide rail 141 and the second slide rail 143 are located in the same plane and are perpendicular to each other. Further, in this embodiment, two second slide rails 143 extending along the second direction are provided at both ends of the first direction, and multiple first slide rails 141 are arranged at intervals between the two second slide rails 143, thereby achieving simultaneous adaptation in both the length and width directions of the battery pack. Further, in this embodiment, four battery pack mounting plate positioning members 142 are connected at intervals on each of the first slide rails 141, and each battery pack mounting plate positioning member 142 can be finely adjusted again along the first direction on the second slide rail 143. Accordingly, the present invention does not limit the specific number or connection method of the first slide rails 141, the second slide rails 143, and the battery pack mounting plate positioning members 142.

[0032] See Figure 4As shown, the positioning detection component 150 includes multiple connecting plates 153. At least one connecting plate 153 is provided with at least one detector slide rail 152. The detector slide rail 152 extends in the same direction as the connecting plate 153 to which it is connected. At least one detector 151 is slidably connected to the detector slide rail 152. In this embodiment, the positioning detection component 150 is connected to the side surface of the support frame 310. It includes a connecting plate 153 connected to opposite sides in the second direction and extending along the first direction, and another connecting plate 153 located at the exit of the working area 320 and extending along the second direction. The above three connecting plates 153 are arranged around the positioning plate 140, and multiple detectors 151 capable of real-time monitoring of the battery pack position on the positioning plate 140 are respectively connected to them. In this embodiment, the detector 151 is preferably an infrared positioning detector, which is connected to an external display. The display can convert the detected position information into electrical signals and display them intuitively. Furthermore, to more flexibly display specific values ​​and reduce blind spots in the monitoring of detector 151, in this embodiment, two detector slide rails 152 are provided on the mounting plate extending along the second direction. A detector 151 is slidably connected to each detector slide rail 152. Specifically, both detector slide rails 152 extend along the second direction and are spaced apart along the first direction. This structure can minimize detection blind spots, thereby achieving precise positioning of the actual processing position of the battery pack mounting plate. Furthermore, the detector 151 in this embodiment can also be connected to the controller 410, so that when it detects a positional shift in the battery pack mounting plate, the controller 410 can automatically adjust the position of the lifting mechanism 100, thereby achieving fully automated operation of the equipment.

[0033] See Figure 5 and Figure 6As shown, the pressurized static mechanism 200 also includes a mounting frame 210 and a fixing plate 240. The mounting frame 210 is connected to the support mechanism 300, and the fixing plate 240 is connected to the mounting frame 210 in a third direction. The fixing plate 240 has a guide groove 241 extending in the same direction as the mounting frame 210 at its center. In this embodiment, four pressure plates 230 are spaced apart in the second direction. Each pressure plate 230 is independently connected to a pressure driver 220, thereby achieving its individual lifting and pressing purpose. This structural arrangement can not only simultaneously pressurize and fix multiple battery packs, but also achieve the purpose of adaptive processing for battery packs of different sizes and models. Furthermore, the fixing plate 240 is preferably a rectangular frame extending along the first direction, which is connected to the side beam of the support frame 310. Two mounting frames 210 are symmetrically arranged near both ends inside the fixing plate 240. A slider connected to the fixing plate 240 passes through the mounting frame 210. Specifically, the bottom end of the mounting frame 210 is fixedly connected to the pressure plate 230. When the pressure driver 220 applies pressure to the pressure plate 230, the fixing plate 240 can move down synchronously with the pressure plate 230. At this time, the slider can ensure that the pressure plate 230 always moves up and down along the third direction through the guide groove 241, thereby achieving the purpose of keeping the working surface of the pressure plate 230 horizontal, thus making the pressure on the battery pack uniform and improving the pressing and fixing effect of the battery pack. See Figure 6 As shown in this embodiment, multiple pressure strips 231 are spaced apart on the working surface of the pressure plate 230. The multiple pressure strips 231 extend along the second direction and protrude from the surface of the pressure plate 230, which can further improve the squeezing effect of the device on the battery pack. In addition, the present invention does not impose specific restrictions on the specific number, extension direction and connection position of the pressure plate 230 and the pressure strips 231.

[0034] The following describes the specific usage process and principle of the battery pack pressurization and stabilization device in this embodiment:

[0035] Before use, the AGV trolley needs to carry the battery pack mounting plate with the battery pack into the working area 320. Then, the battery pack mounting plate is transferred to the positioning plate 140. The positioning plate 140 rises along the third direction under the drive of the lifting beam 110. At the same time, the pressure plate 230 in the pressure settling mechanism 200 descends along the third direction. The two work together to achieve the pressure settling process of the battery pack. After that, all components can return to their initial positions. Finally, the AGV trolley carries the pressure settling battery pack away from the working area 320, thus completing one battery pack pressure settling process.

[0036] In summary, the battery pack pressurization and settling equipment of the present invention uses a lifting mechanism 100 to lift the battery pack mounting plate carrying the battery pack, eliminating the need for separate transport of the battery pack and reducing the processing cycle time for pressurization and settling. This initially reduces the time required for the pressurization and settling process. Furthermore, the adjustable-spacing lifting plate in this equipment allows it to be used with various battery pack models, enabling operators to continuously perform pressurization and settling processing on multiple battery packs without repeatedly changing components. In addition, the positioning detection component 150 in this invention enables precise positioning of the battery pack processing location, thereby greatly improving the effectiveness of the pressurization and settling process. Therefore, the present invention is a battery pack pressurization and settling equipment that can shorten the production cycle time, is compatible with various battery packs, and provides stable pressurization and settling results. Example 2

[0037] This embodiment provides a battery processing system, which includes the battery pack pressurization and static placement equipment and AGV trolley as described in Embodiment 1. The battery pack mounting plate is supported on the AGV trolley. Furthermore, this battery processing system also includes a loading device and a unloading device, which are respectively arranged on both sides of the working area 320.

[0038] Obviously, the above embodiments are merely illustrative examples for clear explanation and are not intended to limit the implementation. Those skilled in the art will recognize that other variations or modifications can be made based on the above description. It is neither necessary nor possible to exhaustively list all possible implementations here. However, obvious variations or modifications derived therefrom are still within the scope of protection of this invention.

Claims

1. A battery pack pressurization and settling device, characterized in that: include: Support mechanism, the interior of which is the working area; A lifting mechanism, disposed within the working area, is used to lift the battery pack mounting plate carrying the battery pack. The lifting mechanism includes: A lifting beam that moves up and down along the height direction of the support mechanism; A positioning plate is connected to the lifting beam and moves synchronously therewith. It is provided with at least one first slide rail, at least one second slide rail, and multiple battery pack mounting plate positioning components. The first slide rail extends along a first direction, the second slide rail is connected to the first slide rail, extends along a second direction and moves along the first slide rail, and the battery pack mounting plate positioning components are connected to the second slide rail and move along the second slide rail. The lifting mechanism further includes a lateral adjustment mechanism and a longitudinal adjustment mechanism. The lateral adjustment mechanism extends along a second direction, and the longitudinal adjustment mechanism is connected to the lateral adjustment mechanism, extends along a third direction, and moves along the lateral adjustment mechanism. The lifting beam is connected to the longitudinal adjustment mechanism and moves along the longitudinal adjustment mechanism. The lateral adjustment mechanism includes a third slide rail extending along the second direction, and the longitudinal adjustment mechanism includes a fourth slide rail extending along a third direction. The fourth slide rail is connected to the third slide rail and moves along the third slide rail. The lifting beam is connected to the fourth slide rail, moves synchronously with the fourth slide rail, and moves up and down along the fourth slide rail. The lifting beam achieves preliminary adjustment of the positioning plate through the lateral adjustment mechanism and the longitudinal adjustment mechanism. A positioning detection component, which is connected to the support mechanism and arranged around the positioning plate, includes multiple detectors; A pressurized stationary mechanism is provided in the working area, and includes at least one pressure plate and at least one pressurized actuator. The pressure plate is connected to the pressurized actuator and moves toward / away from the lifting mechanism. In this device, the length direction of the battery pack pressurization and static placement device is defined as the first direction, the width direction of the device is defined as the second direction, and the height direction of the device is defined as the third direction, and the first direction, the second direction, and the third direction are perpendicular to each other.

2. The battery pack pressurization and settling device according to claim 1, characterized in that: The lifting beam is equipped with multiple positioning plates and positioning components.

3. The battery pack pressurization and settling device according to claim 1, characterized in that: The positioning detection component includes multiple connecting plates, at least one of the connecting plates is provided with at least one detector slide rail, the detector slide rail extends in the same direction as the connecting plate to which it is connected, and the at least one detector is slidably connected to the detector slide rail.

4. The battery pack pressurization and settling device according to claim 1, characterized in that: The pressurized static mechanism also includes a mounting frame and a fixing plate. The mounting frame is connected to the support mechanism, and the fixing plate is connected to the mounting frame along a third direction. The fixing plate has a guide groove extending in the same direction as the mounting frame at its center.

5. The battery pack pressurization and settling device according to claim 1, characterized in that: Multiple pressure strips are spaced apart on the working surface of the pressure plate.

6. The battery pack pressurization and settling device according to claim 1, characterized in that: It also includes a control mechanism, which is connected to the lifting mechanism and the pressurized stationary mechanism respectively, and includes a controller and a sensing component.

7. A battery processing system, characterized in that: The device includes the battery pack pressurization and static placement equipment as described in any one of claims 1 to 6 and the AGV trolley, wherein the battery pack mounting plate is supported on the AGV trolley.

8. The battery processing system according to claim 7, characterized in that: It also includes a feeding device and a discharging device, which are respectively located on both sides of the working area.