Automatic battery cell conveying device for polymer lithium battery cell production

By designing the main conveyor belt and receiving components, the problems of inaccurate positioning and insufficient stability in the automated transfer of polymer lithium battery cells were solved, enabling precise adjustment and seamless transfer of the cells, thereby improving production efficiency and product consistency.

CN120942814APending Publication Date: 2025-11-14GANZHOU JUYING NEW ENERGY CO LTD
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Patent Information

Application Number
CN202511439611.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-10-10
Publication Date
2025-11-14

AI Technical Summary

Technical Problem

Existing automated transport systems for polymer lithium battery cells suffer from inaccurate positioning, difficulty in orientation adjustment, and insufficient transport stability. This leads to incorrect polarity positions of the cells during inspection or formation, requiring manual intervention or additional equipment for correction, which increases production complexity and cost. Furthermore, the cells are susceptible to vibration and impact during transport, causing positional shifts or physical damage.

Method used

The system employs a main conveyor belt and a receiving assembly. Through the cooperation of the buffer connector, locking screw, and locking block in the receiving assembly, combined with the coordinated work of the main lifting hydraulic cylinder and the main directional motor of the directional component, it achieves rapid installation, stable fixation, and precise adjustment of the battery cells. The inspection probe cooperates with the built-in adjusting conveyor belt to perform real-time quality monitoring and internal fine-tuning. The arc-shaped receiving plate of the receiving assembly is controlled by the receiving motor to ensure accurate introduction and seamless transfer of the battery cells.

Benefits of technology

It improves the positioning accuracy and orientation adjustment flexibility of battery cells in automated transmission, enhances production efficiency and product consistency, reduces damage and errors of battery cells during transmission, and strengthens the versatility and operational efficiency of the equipment.

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Abstract

The invention is applicable to the technical field of polymer lithium battery core production, and provides an automatic battery core conveying device for polymer lithium battery core production, which comprises a main conveyor belt and a material receiving assembly, and is characterized in that a plurality of storage assemblies are mounted and connected on the outer wall of the main conveyor belt; through the arrangement of the storage assembly, the positioning precision, the direction adjustment flexibility and the operation stability of the polymer lithium battery core in the automatic transmission process are remarkably improved; a buffer connecting piece in the mounting piece is combined with a locking screw rod and a locking block, so that rapid mounting and stable fixing of an insertion block in a mounting base slide way are realized; vibration and impact in operation of the main conveying belt are effectively buffered, and displacement or damage of the battery cells is avoided; the inspection probe is used in cooperation with the direction adjusting part, a main lifting hydraulic cylinder of the direction adjusting part and a main direction adjusting motor work in cooperation, the upper connecting platen and the storage part are driven to rotate by 180 degrees, the positions of the two poles of the battery cell are accurately adjusted, the requirements of different stations for the polarity direction are met, and extra steering equipment is not needed.
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Description

Technical Field

[0001] This invention belongs to the field of polymer lithium battery cell production technology, and particularly relates to an automated cell transfer device for polymer lithium battery cell production. Background Technology

[0002] Lithium polymer batteries, also known as high-molecular lithium batteries, are a type of chemical battery. Compared to previous batteries, they are characterized by high energy density, miniaturization, and lightweight design.

[0003] Existing automated transfer systems for polymer lithium-ion battery cells often face problems such as inaccurate positioning, difficulty in orientation adjustment, and insufficient transfer stability. Traditional systems lack effective cell orientation adjustment mechanisms, leading to incorrect polarity positions of cells when they enter the testing or formation stations, requiring manual intervention or additional equipment correction, increasing production complexity and cost. Simultaneously, cells are susceptible to vibration and impact during transfer, causing positional shifts or physical damage, and existing buffer designs are often insufficient to ensure stable cell holding. To avoid these problems, an automated cell transfer device for polymer lithium-ion battery cell production is provided. Summary of the Invention

[0004] This invention provides an automated cell transport device for polymer lithium battery cell production, aiming to solve the problems often encountered in the automated transport of polymer lithium battery cells, such as inaccurate positioning, difficulty in orientation adjustment, and insufficient transport stability. Traditional mechanical systems lack an effective cell orientation adjustment mechanism, resulting in incorrect polarity positions of cells when entering the testing or formation station, requiring manual intervention or additional equipment correction, increasing production complexity and cost. At the same time, cells are susceptible to vibration and impact during transport, causing positional shifts or physical damage, and existing buffer designs are often insufficient to ensure stable cell holding.

[0005] The present invention is implemented as follows: an automated cell transfer device for polymer lithium battery cell production, comprising a main conveyor belt and a receiving assembly: several storage assemblies are installed and connected to the outer wall of the main conveyor belt; The storage component includes an installation component, an adjusting component connected to the inner wall of the installation component, a storage component connected to the top of the adjusting component, a discharge gate on the inner wall of the storage component, and a receiving component on the top of the storage component. The storage component significantly improves the positioning accuracy, directional adjustment flexibility, and operational stability of polymer lithium battery cells in automated transmission. The buffer connector in the installation component, combined with a locking screw and locking block, enables rapid installation and stable fixation of the insertion block in the mounting base slide, effectively buffering vibrations and impacts during main conveyor belt operation and preventing cell displacement or damage. The inspection probe works in conjunction with the adjusting component; the main lifting hydraulic cylinder of the adjusting component and the main adjusting motor work together to drive the upper connecting platform and storage component to rotate 180°, precisely adjusting the positions of the two poles of the battery cell to meet the polarity requirements of different workstations without the need for additional steering equipment. The built-in adjustment conveyor belt and inspection probe of the storage unit work together to enable internal fine-tuning and real-time quality monitoring of the battery cells during transmission, improving testing efficiency and automation. The arc-shaped receiving plate of the receiving unit is controlled by a receiving motor to ensure accurate insertion of the battery cells into the storage unit during loading, reducing errors. Overall, the storage assembly optimizes the entire process of battery cell reception, transmission, and adjustment, improving production efficiency and product consistency. The steering component includes an insert block, a base plate is fixedly connected to the top of the insert block, a side support is fixedly connected to the top of the base plate, a main lifting hydraulic cylinder is fixedly connected to the inner wall of the base plate, a connecting plate is fixedly connected to one end of the main lifting hydraulic cylinder, a main steering motor is fixedly connected to the top of the connecting plate, and a rotating rod is fixedly connected to the output shaft of the main steering motor through a coupling. One end of the rotating rod is fixedly connected to an upper connecting platform.

[0006] Preferably, a number of auxiliary support rods are arranged in a ring at equal intervals at the bottom of the upper connecting plate, and the bottom of the auxiliary support rods is slidably connected to the top of the connecting plate; The bottom sides of the upper connecting platform are fitted and connected to the top of the side frame.

[0007] Preferably, the storage component includes a built-in adjustable conveyor belt and a side frame fixedly connected to the upper connecting platform. Inspection probes are symmetrically arranged on both sides of the inner wall of the side frame, and the inspection probes are miniature camera monitoring probes.

[0008] Preferably, a feeding motor is provided on one side of the side frame, a rotating shaft is provided on the inner wall of the discharge gate, and the side frame and the discharge gate are movably connected by the rotating shaft. The output shaft of the feeding motor is fixedly connected to one end of the rotating shaft by a coupling.

[0009] Preferably, the mounting component includes a mounting base fixedly connected to the main conveyor belt, the inner wall of the mounting base is provided with a slide rail, the inner wall of the slide rail is fixedly connected with a buffer connector, the outer wall of the mounting base is fixedly connected with a side assembly block, the inner wall of the side assembly block is threadedly connected with a locking screw, and one end of the locking screw is connected to a locking block. A limiting channel is fixedly connected to one side of the outer wall of the mounting base, and the inner wall of the limiting channel is slidably connected to the upper side of the locking block. The buffer connector includes a buffer spring and a damper fixedly connected to the inner wall of the slide. One end of the buffer spring and damper is fixedly connected to a stop plate. A rubber pad is fixedly connected to the outer wall of the stop plate. The inner wall of the slide is slidably connected to the outer wall of the insert block, and one end of the insert block is attached to the outer wall of the rubber pad on the stop plate. The outer wall of the insert block is attached to the outer wall of the locking block.

[0010] Preferably, the receiving component includes a side connecting frame fixedly mounted on the side frame. A receiving motor is fixedly connected to the outer wall of the side connecting frame. The output shaft of the receiving motor is fixedly connected to a connecting shaft via a coupling. An arc-shaped receiving plate is fixedly connected to one end of the connecting shaft. Through the setting of the receiving component, the adjustable and flexible docking design of the receiving component enables seamless and collision-free transfer of battery cells from the storage component to the downstream station, significantly improving the handover accuracy and adaptability of the transmission system. The directional hydraulic cylinder of the receiving base component can slightly adjust the angle of the discharge component to ensure perfect docking with the discharge gate of the storage component, avoiding jamming or falling of the battery cells during unloading and ensuring smooth transfer. The adjusting screw and limit baffle in the discharge component allow for flexible adjustment of the width of the receiving groove according to the size of the battery cells, adapting to the arrangement requirements of battery cells of different specifications, improving the versatility and operating efficiency of the equipment.

[0011] Preferably, the receiving assembly includes a receiving base, and the inner wall of the receiving base is provided with a discharge component.

[0012] Preferably, the discharge component includes a receiving trough frame, and adjusting screws are threadedly connected to the inner walls of both sides of the receiving trough frame, with a limit baffle connected to one end of the adjusting screws.

[0013] Preferably, the receiving base includes an external base, with ear plates fixedly connected to both sides of the external base, and an insert rod movably connected to the inner wall of the ear plates, the outer wall of the insert rod being movably connected to the inner wall of the receiving groove frame; A directional hydraulic cylinder is provided on the top side of one side of the external base. A connecting ball is fixedly connected to one end of the directional hydraulic cylinder. A spherical cover is provided at the bottom of the receiving trough frame. The inner wall of the spherical cover is slidably connected to the outer wall of the connecting ball.

[0014] Compared with the prior art, the embodiments of this application have the following main advantages: By incorporating storage components, the positioning accuracy, orientation adjustment flexibility, and operational stability of polymer lithium battery cells in automated transmission are significantly improved. The buffer connector in the mounting component, combined with locking screws and blocks, enables rapid installation and stable fixation of the insert in the mounting base slide, effectively buffering vibrations and impacts during main conveyor belt operation and preventing cell displacement or damage. The inspection probe works in conjunction with the directional adjustment component; the main lifting hydraulic cylinder and main directional adjustment motor of the directional adjustment component work together to drive the upper connecting plate and storage component to rotate 180°, precisely adjusting the positions of the two poles of the cell to meet the polarity requirements of different workstations without the need for additional steering equipment. The built-in adjustment conveyor belt and inspection probe in the storage component work together to achieve internal fine-tuning and real-time quality monitoring of the cell during transmission, improving inspection efficiency and automation. The arc-shaped receiving plate of the receiving component is controlled by a receiving motor, ensuring accurate insertion of the cell into the storage component during loading and reducing errors. Overall, the storage components optimize the entire process of cell reception, transmission, and adjustment, improving production efficiency and product consistency. By incorporating the adjustable and flexible docking design of the receiving component, seamless and collision-free transfer of battery cells from the receiving component to the downstream workstation is achieved, significantly improving the handover accuracy and adaptability of the transmission system. The directional hydraulic cylinder of the receiving base can slightly adjust the angle of the discharge component to ensure perfect docking with the discharge gate of the receiving component, preventing the battery cells from getting stuck or falling during unloading and ensuring smooth transfer. The adjusting screw and limit baffle in the discharge component allow for flexible adjustment of the width of the receiving groove according to the size of the battery cells, adapting to the arrangement requirements of battery cells of different specifications, improving the versatility and operational efficiency of the equipment. Attached Figure Description

[0015] Figure 1 This is the front view of the present invention; Figure 2 This is a side view of the present invention; Figure 3 This is a schematic diagram of the storage component structure of the present invention; Figure 4 This is a schematic diagram of the mounting component structure of the present invention; Figure 5 This is a schematic diagram of the orientation component structure of the present invention; Figure 6 This is a schematic diagram of the storage component structure of the present invention; Figure 7 This is a schematic diagram of the receiving component structure of the present invention; Figure 8 This is a schematic diagram of the receiving component structure of the present invention; Figure 9 This is a schematic diagram of the material receiving base component of the present invention.

[0016] In the diagram: 1. Main conveyor belt; 2. Storage assembly; 201. Mounting component; 2011. Mounting base; 2012. Buffer connector; 2013. Locking screw; 2014. Locking block; 202. Directional component; 2021. Insert block; 2022. Base plate; 2023. Side support frame; 2024. Main lifting hydraulic cylinder; 2025. Main directional motor; 2026. Auxiliary support rod; 2027. Upper connecting platform. 203. Storage component; 2031. Side frame; 2032. Built-in adjustable conveyor belt; 2033. Feeding motor; 2034. Inspection probe; 204. Discharge gate; 205. Receiving component; 2051. Arc-shaped receiving plate; 2052. Side connecting frame; 2053. Receiving motor; 3. Receiving assembly; 301. Receiving base component; 3011. External base; 3012. Directional hydraulic cylinder; 302. Discharge component. Detailed Implementation

[0017] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this application belongs; the terminology used herein in the specification of the application is for the purpose of describing particular embodiments only and is not intended to be limiting of the application; the terms "comprising" and "having," and any variations thereof, in the specification, claims, and foregoing drawings of this application are intended to cover non-exclusive inclusion. The terms "first," "second," etc., in the specification, claims, or foregoing drawings of this application are used to distinguish different objects, not to describe a particular order.

[0018] In this document, the term "embodiment" means that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of this application. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.

[0019] This invention provides an automated cell transfer device for polymer lithium battery cell production, including a main conveyor belt 1 and a receiving assembly 3: several storage assemblies 2 are installed and connected to the outer wall of the main conveyor belt 1; The storage component 2 includes a mounting component 201, an adjusting component 202 connected to the inner wall of the mounting component 201, a storage component 203 connected to the top of the adjusting component 202, a discharge door 204 provided on the inner wall of the storage component 203, and a receiving component 205 provided on the top of the storage component 203. The steering component 202 includes an insert block 2021, a base plate 2022 fixedly connected to the top of the insert block 2021, a side support frame 2023 fixedly connected to the top of the base plate 2022, a main lifting hydraulic cylinder 2024 fixedly connected to the inner wall of the base plate 2022, a connecting plate fixedly connected to one end of the main lifting hydraulic cylinder 2024, a main steering motor 2025 fixedly connected to the top of the connecting plate, a rotating rod fixedly connected to the output shaft of the main steering motor 2025 via a coupling, and an upper connecting platform 2027 fixedly connected to one end of the rotating rod.

[0020] Several auxiliary support rods 2026 are arranged in a ring at equal intervals at the bottom of the upper connecting plate 2027. The bottom of the auxiliary support rods 2026 is slidably connected to the top of the connecting plate. The bottom sides of the upper connecting platform 2027 are fitted and connected to the top of the side frame 2023.

[0021] The storage component 203 includes a built-in adjustable conveyor belt 2032 and a side frame 2031 fixedly connected to the upper connecting platform 2027. Inspection probes 2034 are symmetrically arranged on both sides of the inner wall of the side frame 2031. The inspection probes 2034 are miniature camera monitoring probes.

[0022] A feeding motor 2033 is provided on one side of the side frame 2031, and a rotating shaft is provided on the inner wall of the discharge gate 204. The side frame 2031 and the discharge gate 204 are movably connected by the rotating shaft, and the output shaft of the feeding motor 2033 is fixedly connected to one end of the rotating shaft through a coupling.

[0023] Mounting component 201 includes mounting base 2011 fixedly connected to main conveyor belt 1. The inner wall of mounting base 2011 is provided with a slide rail. A buffer connector 2012 is fixedly connected to the inner wall of the slide rail. A side assembly block is fixedly connected to the outer wall of mounting base 2011. A locking screw 2013 is threadedly connected to the inner wall of the side assembly block. A locking block 2014 is connected to one end of the locking screw 2013. A limiting channel is fixedly connected to one outer wall of the mounting base 2011, and the inner wall of the limiting channel is slidably connected to the upper side of the locking block 2014. The buffer connector 2012 includes a buffer spring and a damper fixedly connected to the inner wall of the slide. One end of the buffer spring and damper is fixedly connected to a backing plate, and a rubber pad is fixedly connected to the outer wall of the backing plate. The inner wall of the slide is slidably connected to the outer wall of the insert block 2021, and one end of the insert block 2021 is attached to the outer wall of the rubber pad on the backing plate. The outer wall of the insert block 2021 is attached to the outer wall of the locking block 2014.

[0024] The receiving component 205 includes a side connecting frame 2052 fixedly mounted on the side frame 2031. A receiving motor 2053 is fixedly connected to the outer wall of the side connecting frame 2052. The output shaft of the receiving motor 2053 is fixedly connected to a connecting shaft via a coupling. One end of the connecting shaft is fixedly connected to an arc-shaped receiving plate 2051.

[0025] It should be noted that existing automated transport systems for polymer lithium battery cells often face problems such as inaccurate positioning, difficulty in orientation adjustment, and insufficient transport stability. Traditional systems lack effective cell orientation adjustment mechanisms, leading to incorrect polarity positions of cells when they enter the testing or formation stations, requiring manual intervention or additional equipment correction, which increases production complexity and cost. At the same time, cells are susceptible to vibration and impact during transport, causing positional shifts or physical damage, and existing buffer designs are often insufficient to ensure stable cell holding.

[0026] Specifically, in this embodiment, the solution mainly utilizes the setup and coordination of the receiving component 3, the main conveyor belt 1, and the storage component 2. The first step is cell receiving and positioning: Installing the storage component 2: Insert the insert 2021 into the slide rail in the mounting base 2011, and rotate the locking screw 2013 to move the locking block 2014. The locking block 2014 limits the outer wall of one end of the insert 2021, while the buffer connector 2012 at the other end, under the action of the buffer spring, stably limits the insertion 2021, ensuring its stability in the slide rail. Ready: The unloaded storage component 2 moves with the main conveyor belt 1 to the cell loading station. The receiving motor 2053 is started and controlled. At this time, the arc-shaped receiving plate 2051 opens, and the receiving component 205 at its top is in an unfolded state. Guiding the receiving: Upstream equipment, such as a robotic arm, delivers the cell to be transferred to the top of the storage component. The receiving motor 2053 starts, driving the arc-shaped receiving plate 2051 to make fine adjustments, ensuring that the battery cell can slide accurately and smoothly into the built-in adjusting conveyor belt 2032 in the side frame 2031 of the storage component 203; the receiving motor 2053 is started and controlled to rotate the arc-shaped receiving plate 2051, and the receiving component 205 at its top is in a closed state. Step 2: In-transit transmission and quality monitoring: Stable transmission: The storage component 2 containing the battery cells is carried by the main conveyor belt 1 and moves to the next target station, such as the testing station or the formation station; Internal positioning and detection: During transmission or when paused, the inspection probe 2034 performs non-contact detection on the appearance, size or specific markings of the battery cells, and the data is uploaded to the central control system in real time, and the placement position of the battery cells in the storage component 203 is identified; Step 3: Cell Attitude and Orientation Adjustment: Receiving Instructions: When a cell needs to enter the next workstation in a specific direction or position, the control system sends an adjustment instruction to the target storage component; Executing Adjustment: The main lifting hydraulic cylinder 2024 first acts, lifting the entire upper connecting platform 2027 and the storage component 203 above it a short distance, separating it from the side support frame 2023 and releasing the rotation constraint; The main adjustment motor 2025 starts, driving the upper connecting platform 2027 and the entire storage component 203 to rotate 180° via the rotating rod. This is used to adjust the position of the two poles of the battery cell in the storage component 203 to ensure that the two poles are accurately positioned when the battery cell is discharged to the receiving component 3; the auxiliary support rod 2026 provides additional stable support during rotation to prevent swaying; after rotation to the position, the main lifting hydraulic cylinder 2024 retracts, so that the upper connecting platform 2027 falls back onto the side frame 2023 and is reliably supported; the built-in adjusting conveyor belt 2032 can move slightly to adjust the battery cell inside the storage component 203 to a precise center or side position alignment; Step 4: Precise unloading and handover: Positioning and docking: The storage component 2, which is loaded with battery cells, is carried by the main conveyor belt 1 to precisely align with the receiving component 3; Opening the discharge gate: The discharge motor 2033 starts, driving the discharge gate 204 to open around the rotating shaft, forming a discharge port, and falling onto the discharge component 302 under the action of gravity. Step 5: Fine-tuning at the receiving end: The directional hydraulic cylinder 3012 of the receiving component 3 can make a slight adjustment to the angle of the discharge component 302 to ensure perfect docking with the discharge gate of the storage component, so as to achieve seamless and collision-free transfer of the battery cells; the adjusting screw in the discharge component 302 can adjust the spacing of the limit baffle to accommodate battery cells of different sizes and ensure that the battery cells are arranged in an orderly manner in the receiving slot; Step 6: Empty return; After unloading is completed, the discharge gate 204 of the storage component closes, and the receiving component 205 resets. The empty storage component 2 continues to move with the main conveyor belt 1, returning to the receiving station of the first step, and begins the next work cycle.

[0027] In this embodiment, the placement accuracy, orientation adjustment flexibility, and operational stability of the polymer lithium battery cells in automated transmission are significantly improved by the inclusion of the storage component 2. The buffer connector 2012 in the mounting component 201, combined with the locking screw 2013 and the locking block 2014, enables the rapid installation and stable fixation of the insertion block 2021 in the slide of the mounting base 2011, effectively buffering the vibration and impact during the operation of the main conveyor belt 1 and preventing cell displacement or damage. The inspection probe 2034 works in conjunction with the directional component 202. The main lifting hydraulic cylinder 2024 of the directional component 202 and the main directional motor 2025 work together to drive the upper connecting plate 2027 and the storage component 203 to rotate 180°, precisely adjusting the position of the two poles of the battery cell to meet the polarity requirements of different workstations without the need for additional steering equipment. The built-in adjustment conveyor belt 2032 and inspection probe 2034 of the storage component 203 work together to realize internal fine-tuning and real-time quality monitoring of the battery cell during the transmission process, improving detection efficiency and automation level; the arc-shaped receiving plate 2051 of the receiving component 205 is controlled by the receiving motor 2053 to ensure that the battery cell is accurately guided into the storage component 203 when it is loaded, reducing errors; overall, the storage component 2 optimizes the entire process of battery cell from receiving, transmission to adjustment, improving production efficiency and product consistency.

[0028] In a further preferred embodiment of the present invention, the receiving component 3 includes a receiving base 301, and a discharge component 302 is provided on the inner wall of the receiving base 301.

[0029] The material discharge component 302 includes a receiving trough frame, with adjusting screws threaded to the inner walls on both sides of the receiving trough frame, and a limit baffle connected to one end of the adjusting screws.

[0030] The receiving base component 301 includes an outer base 3011, with ear plates fixedly connected to both sides of the outer base 3011. Insert rods are movably connected to the inner walls of the ear plates, and the outer walls of the insert rods are movably connected to the inner walls of the receiving trough frame. An adjusting hydraulic cylinder 3012 is provided on the top side of the external base 3011. A connecting ball is fixedly connected to one end of the adjusting hydraulic cylinder 3012. A spherical cover is provided at the bottom of the receiving trough frame. The inner wall of the spherical cover is slidably connected to the outer wall of the connecting ball.

[0031] In this embodiment, the receiving component 3, through its adjustable and flexible docking design, enables seamless and collision-free transfer of battery cells from the receiving component 2 to the downstream station, significantly improving the handover accuracy and adaptability of the transmission system. The directional hydraulic cylinder 3012 of the receiving base component 301 can slightly adjust the angle of the discharge component 302 to ensure perfect docking with the discharge gate 204 of the receiving component, preventing the battery cells from getting stuck or falling during unloading and ensuring smooth transfer. The adjusting screw and limit baffle in the discharge component 302 allow for flexible adjustment of the width of the receiving groove according to the size of the battery cells, adapting to the arrangement requirements of battery cells of different specifications, improving the versatility and operational efficiency of the equipment.

[0032] It should be noted that, for the sake of simplicity, the foregoing embodiments are all described as a series of actions. However, those skilled in the art should understand that the present invention is not limited to the described order of actions, as some steps may be performed in other orders or simultaneously according to the present invention. Furthermore, those skilled in the art should also understand that the embodiments described in the specification are preferred embodiments, and the actions and modules involved are not necessarily essential to the present invention.

[0033] It should be understood that the disclosed apparatus can be implemented in other ways, given the several embodiments provided in this application. For example, the apparatus embodiments described above are merely illustrative. For instance, the division of units described above may be implemented in other ways in practice. For example, multiple units or components may be combined or integrated into another system, or some features may be ignored or not executed. Furthermore, the coupling or communication connections shown or discussed may be through some interfaces; indirect coupling or communication connections between devices or units may be telecommunications or other forms.

[0034] The units described above as separate components may or may not be physically separate. The components shown as units may or may not be physical units; that is, they may be located in one place or distributed across multiple network units. Some or all of the units can be selected to achieve the purpose of this embodiment according to actual needs.

[0035] The above embodiments are only used to illustrate the technical solutions of the present invention, and are not intended to limit the scope of protection of the invention. Obviously, the described embodiments are only some embodiments of the present invention, not all embodiments. Based on these embodiments, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention. Although the present invention has been described in detail with reference to the above embodiments, those skilled in the art can still combine, add, delete, or otherwise adjust the features of the various embodiments of the present invention according to the circumstances without conflict or creative effort, thereby obtaining different technical solutions that do not fundamentally depart from the concept of the present invention. These technical solutions also fall within the scope of protection of the present invention.

Claims

1. An automated cell transfer device for polymer lithium battery cell production, characterized in that, Includes a main conveyor belt (1) and a receiving assembly (3): several receiving assemblies (2) are installed and connected to the outer wall of the main conveyor belt (1); The storage component (2) includes a mounting component (201), an adjusting component (202) is connected to the inner wall of the mounting component (201), a storage component (203) is connected to the top of the adjusting component (202), a discharge door (204) is provided on the inner wall of the storage component (203), and a receiving component (205) is provided on the top of the storage component (203). The steering component (202) includes a plug (2021), a base plate (2022) is fixedly connected to the top of the plug (2021), a side frame (2023) is fixedly connected to the top of the base plate (2022), a main lifting hydraulic cylinder (2024) is fixedly connected to the inner wall of the base plate (2022), a connecting plate is fixedly connected to one end of the main lifting hydraulic cylinder (2024), a main steering motor (2025) is fixedly connected to the top of the connecting plate, and a rotating rod is fixedly connected to the output shaft of the main steering motor (2025) through a coupling, and an upper connecting platform (2027) is fixedly connected to one end of the rotating rod.

2. The automated cell transfer device for polymer lithium battery cell production as described in claim 1, characterized in that, The bottom of the upper connecting plate (2027) is provided with several auxiliary support rods (2026) arranged in a ring at equal intervals, and the bottom of the auxiliary support rods (2026) is slidably connected to the top of the connecting plate. The bottom sides of the upper connecting platform (2027) are fitted and connected to the top of the side frame (2023).

3. The automated cell transfer device for polymer lithium battery cell production as described in claim 1, characterized in that, The storage component (203) includes a built-in adjustable conveyor belt (2032) and a side frame (2031) fixedly connected to the upper connecting platform (2027). Inspection probes (2034) are symmetrically arranged on both sides of the inner wall of the side frame (2031). The inspection probes (2034) are miniature camera monitoring probes.

4. The automated cell transfer device for polymer lithium battery cell production as described in claim 3, characterized in that, A feeding motor (2033) is provided on one side of the side frame (2031), and a rotating shaft is provided on the inner wall of the discharge gate (204). The side frame (2031) and the discharge gate (204) are movably connected by the rotating shaft. The output shaft of the feeding motor (2033) is fixedly connected to one end of the rotating shaft by a coupling.

5. The automated cell transfer device for polymer lithium battery cell production as described in claim 1, characterized in that, The mounting component (201) includes a mounting base (2011) fixedly connected to the main conveyor belt (1). The inner wall of the mounting base (2011) is provided with a slide rail. A buffer connector (2012) is fixedly connected to the inner wall of the slide rail. A side assembly block is fixedly connected to the outer wall of the mounting base (2011). A locking screw (2013) is threadedly connected to the inner wall of the side assembly block. A locking block (2014) is connected to one end of the locking screw (2013). A limiting channel is fixedly connected to one side of the outer wall of the mounting base (2011), and the inner wall of the limiting channel is slidably connected to the upper side of the locking block (2014). The buffer connector (2012) includes a buffer spring and a damper fixedly connected to the inner wall of the slide. One end of the buffer spring and damper is fixedly connected to a stop plate. A rubber pad is fixedly connected to the outer wall of the stop plate. The inner wall of the slide is slidably connected to the outer wall of the insert (2021). One end of the insert (2021) is attached to the outer wall of the rubber pad on the stop plate. The outer wall of the insert (2021) is attached to the outer wall of the locking block (2014).

6. The automated cell transfer device for polymer lithium battery cell production as described in claim 3, characterized in that, The receiving component (205) includes a side connecting frame (2052) fixedly installed on the side frame (2031). A receiving motor (2053) is fixedly connected to the outer wall of the side connecting frame (2052). The output shaft of the receiving motor (2053) is fixedly connected to a connecting shaft through a coupling. An arc-shaped receiving plate (2051) is fixedly connected to one end of the connecting shaft.

7. The automated cell transfer device for polymer lithium battery cell production as described in claim 1, characterized in that, The receiving assembly (3) includes a receiving base (301), and the inner wall of the receiving base (301) is provided with a discharge component (302).

8. The automated cell transfer device for polymer lithium battery cell production as described in claim 7, characterized in that, The discharge component (302) includes a receiving groove frame, and adjusting screws are threadedly connected to the inner walls on both sides of the receiving groove frame. One end of the adjusting screw is connected to a limit baffle.

9. The automated cell transfer device for polymer lithium battery cell production as described in claim 8, characterized in that, The receiving base component (301) includes an outer base (3011), with ear plates fixedly connected to both sides of the outer base (3011), and a plug rod movably connected to the inner wall of the ear plate, the outer wall of the plug rod being movably connected to the inner wall of the receiving groove frame. A directional hydraulic cylinder (3012) is provided on the top of one side of the external base (3011). A connecting ball is fixedly connected to one end of the directional hydraulic cylinder (3012). A spherical cover is provided at the bottom of the receiving trough frame. The inner wall of the spherical cover is slidably connected to the outer wall of the connecting ball.