An automatic feeding mechanism for cell glue nails
Patent Information
- Application Number
- CN202521550678.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-24
- Publication Date
- 2026-09-04
- Estimated Expiration
- 2035-07-24
AI Technical Summary
[0004]本实用新型的目的是在于克服现有技术中存在的不足,提供了一种电芯胶钉自动上料机构,适用于不同规格、尺寸电芯胶钉的上料,能够解决电芯注液口插胶钉漏插、效率问题,有效稳定产品质量、缩短制造周期、提高工作效率、降低制造成本、改善工人劳动条件、减轻劳动强度,同时可实现柔性化制造
[0016] 1) The automatic feeding mechanism for battery cell glue nails of this utility model is applicable to feeding battery cell glue nails of various specifications and sizes. The length and width of the equipment are equipped with positioning and dual-track feeding for feeding battery cell glue nails, which can effectively improve the feeding rate of glue nails.
Smart Images

Figure CN224715737U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a new energy battery cell production equipment, and more particularly to an automatic feeding mechanism for battery cell adhesive nails. Background Technology
[0002] In the manufacturing process of logistics conveying equipment, component assembly is a crucial step that directly determines the product's quality, efficiency, and cost. Equipment products such as vibrator assemblies and vacuum tilting assemblies are often customized to meet specific customer requirements; their structure and dimensions must be tailored to individual specifications.
[0003] In non-standard industries, most manufacturers rely on manual labor for product production and handling due to frequent changes in product specifications and dimensions. This leads to difficulties in equipment assembly, safety hazards, and low work efficiency. Utility Model Content
[0004] The purpose of this utility model is to overcome the shortcomings of the existing technology and provide an automatic feeding mechanism for battery cell glue nails. It is suitable for feeding battery cell glue nails of different specifications and sizes, and can solve the problems of missing glue nails at the battery cell injection port and inefficiency. It can effectively stabilize product quality, shorten the manufacturing cycle, improve work efficiency, reduce manufacturing costs, improve workers' working conditions, reduce labor intensity, and realize flexible manufacturing.
[0005] To achieve the above technical objectives, the technical solution adopted in this utility model embodiment is as follows:
[0006] An automatic feeding mechanism for battery cell adhesive nails includes a linear vibrator assembly, a vacuum suction and flipping assembly, a linear vibrating plate assembly, and a PLC controller;
[0007] The vacuum suction flipping assembly is vertically mounted on the base frame, and the straight vibrating plate assembly is horizontally mounted on the straight vibrator assembly. The straight vibrating plate assembly and the vacuum suction flipping assembly are connected in the horizontal direction. The PLC controller controls the vibration of the straight vibrator assembly, which drives the battery cell adhesive nails to enter the positioning groove of the vacuum suction flipping assembly in the horizontal direction in the double track groove of the straight vibrating plate assembly. The PLC controller controls the vacuum suction flipping assembly to flip, thereby realizing the automatic feeding of the battery cell adhesive nails.
[0008] Furthermore, the linear vibrator assembly includes a powered linear vibrator, a linear vibrator base plate, and a linear vibrator adjustment plate. The linear vibrator plate assembly is disposed on the powered linear vibrator, the powered linear vibrator is disposed on the linear vibrator adjustment plate, and the linear vibrator adjustment plate is disposed on the linear vibrator base plate. The PLC controller controls the vibration of the powered linear vibrator, driving the battery cell adhesive nail to move in the double track groove of the linear vibrator plate assembly.
[0009] Furthermore, the vacuum suction flipping assembly includes a flipping base, a flipping adjustment plate is fixedly connected to the flipping base, a rotary cylinder upright plate is fixedly connected to the flipping adjustment plate, a power rotary cylinder is fixedly connected to the rotary cylinder upright plate, and the power rotary cylinder is provided with a rubber nail positioning groove block.
[0010] The flip adjustment plate is also equipped with a vacuum generator. The connecting air pipe of the vacuum generator is installed on the glue nail positioning slot block. The vacuum generator is used to adsorb the battery cell glue nails that enter the glue nail positioning slot block from the double track groove of the straight vibration plate assembly. The power rotary cylinder drives the glue nail positioning slot block to rotate until the battery cell glue nails stand vertically to ensure smooth feeding.
[0011] Furthermore, the vacuum suction flipping assembly also includes a material absence detection sensor, which is fixed on the glue nail positioning slot block and is used to detect whether there are battery cell glue nails in the glue nail positioning slot block.
[0012] Furthermore, the linear vibrating plate assembly includes a linear vibrating plate body, a cover plate, and a material presence / absence photoelectric detection assembly. The cover plate is fixed on the linear vibrating plate body, and the material presence / absence photoelectric sensor is fixed on both sides of the double track groove of the linear vibrating plate body to detect whether there are battery cell adhesive nails passing through the double track groove of the linear vibrating plate body.
[0013] Furthermore, it also includes a hopper and a circular vibrating track. A hopper straight vibrator is provided below the hopper to drive the hopper to vibrate. The outlet of the hopper is located above the circular vibrating track. A circular vibrating assembly is provided below the circular vibrating track to drive the circular vibrating track to vibrate. The outlet of the circular vibrating track is connected to the straight vibrating plate assembly.
[0014] The PLC controller controls the vibration of the circular vibration assembly.
[0015] The beneficial effects of the technical solution provided by this utility model embodiment are:
[0016] 1) The automatic feeding mechanism for battery cell glue nails of this utility model is applicable to feeding battery cell glue nails of various specifications and sizes. The length and width of the equipment are equipped with positioning and dual-track feeding for feeding battery cell glue nails, which can effectively improve the feeding rate of glue nails.
[0017] 2) The surface of the straight vibrating plate track is sprayed with Teflon coating, which allows the rubber nails to move smoothly into the rotating positioning groove and reduces material jamming. Attached Figure Description
[0018] Figure 1 This is a structural schematic diagram of the automatic feeding mechanism for battery cell adhesive nails of this utility model.
[0019] Figure 2This is an axonometric view of the main structure of the automatic feeding mechanism for battery cell adhesive nails of this utility model.
[0020] Figure 3 yes Figure 2 A schematic diagram of the structure of the straight vibration device assembly.
[0021] Figure 4 yes Figure 2 A schematic diagram of the structure of the vacuum suction flipping assembly.
[0022] Figure 5 yes Figure 2 Top view of the straight vibrating plate assembly.
[0023] Explanation of reference numerals in the attached drawings: 1-Straight vibrator assembly; 2-Vacuum suction flipping assembly; 3-Straight vibrating plate assembly; 4-Hopper; 5-Circular vibrating track; 6-Hopper straight vibrator; 7-Circular vibrating assembly; 101-Powered straight vibrator; 102-Straight vibrator base plate; 103-Straight vibrator adjusting plate; 201-Powered rotary cylinder; 202-Rotary cylinder upright plate; 203-Vacuum generator; 204-Flipping base; 205-Flipping adjusting plate; 206-Glue nail positioning slot; 207-Pressure sensor for material presence / absence; 301-Straight vibrating plate body; 302-Cover plate; 303-Pressure photoelectric detection assembly for material presence / absence. Detailed Implementation
[0024] In the description of this utility model, it should be understood that the directional terms such as "inner" and "outer", "upper" and "lower", "left" and "right" indicate the orientation or positional relationship, which are usually based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description. Unless otherwise stated, these directional terms do not indicate or imply that the device or element referred to must have a specific orientation or be constructed and operated in a specific orientation, and therefore should not be construed as limiting the scope of protection of this utility model.
[0025] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain this utility model and are not intended to limit this utility model.
[0026] Example 1
[0027] like Figure 1 and 2 As shown, an automatic feeding mechanism for battery cell adhesive nails includes a straight vibrator assembly 1, a vacuum suction and flipping assembly 2, a straight vibrating plate assembly 3, and a PLC controller.
[0028] The vacuum suction flipping assembly 2 is vertically installed on the base frame, and the straight vibrating plate assembly 3 is horizontally installed on the straight vibrator assembly 1. The straight vibrating plate assembly 3 and the vacuum suction flipping assembly 2 are connected in the horizontal direction. The PLC controller controls the vibration of the straight vibrator assembly 1, which drives the battery cell glue nails to enter the positioning groove of the vacuum suction flipping assembly 2 in the horizontal direction in the double track groove of the straight vibrating plate assembly 3. The PLC controller controls the vacuum suction flipping assembly 2 to flip, realizing the automatic feeding of the battery cell glue nails.
[0029] like Figure 3 As shown, the vertical vibrator assembly 1 includes a powered vertical vibrator 101, a vertical vibrator base plate 102, and a vertical vibrator adjustment plate 103. The vertical vibrator plate assembly 3 is mounted on the powered vertical vibrator 101, the powered vertical vibrator 101 is mounted on the vertical vibrator adjustment plate 103, and the vertical vibrator adjustment plate 103 is mounted on the vertical vibrator base plate 102. The PLC controller controls the vibration of the powered vertical vibrator 101, which drives the battery cell adhesive nails to move in the double track groove of the vertical vibrator plate assembly 3.
[0030] like Figure 4 As shown, the vacuum suction flipping assembly 2 includes a flipping base 204, a flipping adjustment plate 205 fixedly connected to the flipping base 204, a rotary cylinder upright plate 202 fixedly connected to the flipping adjustment plate 205, a power rotary cylinder 201 fixedly connected to the rotary cylinder upright plate 202, and a rubber nail positioning groove block 206 provided on the power rotary cylinder 201.
[0031] A vacuum generator 203 is also provided on the flip adjustment plate 205. The connecting air pipe of the vacuum generator 203 is installed on the glue nail positioning slot block 206. The vacuum generator 203 is used to adsorb the battery cell glue nails that enter the glue nail positioning slot block 206 from the double track slot of the self-vibrating plate assembly 3. The power rotary cylinder 201 drives the glue nail positioning slot block 206 to rotate 90° counterclockwise, so that the battery cell glue nails stand up vertically to ensure smooth feeding.
[0032] The vacuum suction flipping assembly 2 also includes a material absence detection sensor 207, which is fixed on the glue nail positioning slot 206 and is used to detect whether there are battery core glue nails in the glue nail positioning slot 206.
[0033] like Figure 5 As shown, the linear vibrating plate assembly 3 includes a linear vibrating plate body 301, a cover plate 302, and a material presence / absence photoelectric detection assembly 303. The cover plate 302 is fixed on the linear vibrating plate body 301, and the material presence / absence photoelectric sensor 303 is fixed on both sides of the double track groove of the linear vibrating plate body 301 to detect whether there are battery cell adhesive nails passing through the double track groove of the linear vibrating plate body 301.
[0034] The automatic feeding mechanism for battery cell glue nails also includes a hopper 4 and a circular vibration track 5. A hopper direct vibrator 6 is installed below the hopper 4 to drive the hopper 4 to vibrate. The outlet of the hopper 4 is located above the circular vibration track 5. A circular vibration assembly 7 is installed below the circular vibration track 5 to drive the circular vibration track 5 to vibrate. The outlet of the circular vibration track 5 is connected to the direct vibration plate assembly 3.
[0035] The PLC controller controls the vibration of the circular vibrator assembly 3.
[0036] The working process is as follows: Battery cell adhesive nails are added to hopper 4. The switch of the hopper direct vibrator 6 is turned on. During vibration, the adhesive nails enter the circular vibrating track 5 from the outlet of hopper 4. A photoelectric sensor for absence of material is installed at the center of the circular vibrating track 5. When a battery cell adhesive nail is detected entering the circular vibrating track 5, a signal is transmitted to the PLC controller. The PLC controller controls the circular vibrating assembly 7 to vibrate. The battery cell adhesive nails in the circular vibrating track 5 enter the double track groove of the direct vibrating plate body 301. When the photoelectric sensor for absence of material detects the presence of material, a signal is transmitted to the PLC controller. The PLC controller controls the vibration of the power vibrator 101. The battery cell nails in the double track groove move to the nail positioning slot 206. When the material presence detection sensor 207 detects that there is material in the nail positioning slot 206, it transmits a signal to the PLC controller. The PLC controller controls the vacuum generator 203 to draw a vacuum, adsorbing the battery cell nails and preventing them from falling off during rotation. At this time, the PLC controller controls the power rotary cylinder 201 to drive the nail positioning slot 206 to rotate 90° counterclockwise, and the battery cell nails stand up vertically for feeding.
[0037] Finally, it should be noted that the above specific embodiments are only used to illustrate the technical solution of this utility model and not to limit it. Although this utility model has been described in detail with reference to examples, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solution of this utility model without departing from the spirit and scope of the technical solution of this utility model, and all such modifications and substitutions should be covered within the scope of the claims of this utility model.
Claims
1. An automatic feeding mechanism for battery cell adhesive nails, characterized in that, It includes a linear vibrator assembly (1), a vacuum suction and flipping assembly (2), a linear vibrating plate assembly (3), and a PLC controller; The vacuum suction flipping assembly (2) is vertically mounted on the base frame, and the straight vibrating plate assembly (3) is horizontally mounted on the straight vibrator assembly (1). The straight vibrating plate assembly (3) and the vacuum suction flipping assembly (2) are connected in the horizontal direction. The PLC controller controls the vibration of the straight vibrator assembly (1), which drives the battery cell adhesive nails to enter the positioning groove of the vacuum suction flipping assembly (2) in the double track groove of the straight vibrating plate assembly (3) in the horizontal direction. The PLC controller controls the vacuum suction flipping assembly (2) to flip, thereby realizing the automatic feeding of the battery cell adhesive nails.
2. The automatic feeding mechanism for battery cell adhesive nails according to claim 1, characterized in that, The vertical vibrator assembly (1) includes a power vertical vibrator (101), a vertical vibrator base plate (102), and a vertical vibrator adjustment plate (103). The vertical vibrator plate assembly (3) is disposed on the power vertical vibrator (101). The power vertical vibrator (101) is disposed on the vertical vibrator adjustment plate (103). The vertical vibrator adjustment plate (103) is disposed on the vertical vibrator base plate (102). The PLC controller controls the vibration of the power vertical vibrator (101) and drives the battery cell adhesive nail to move in the double track groove of the vertical vibrator plate assembly (3).
3. The automatic feeding mechanism for battery cell adhesive nails according to claim 1, characterized in that, The vacuum suction flipping assembly (2) includes a flipping base (204), a flipping adjustment plate (205) is fixedly connected to the flipping base (204), a rotary cylinder upright plate (202) is fixedly connected to the flipping adjustment plate (205), a power rotary cylinder (201) is fixedly connected to the rotary cylinder upright plate (202), and the power rotary cylinder (201) is provided with a rubber nail positioning groove block (206). A vacuum generator (203) is also provided on the flip adjustment plate (205). The connecting air pipe of the vacuum generator (203) is installed on the glue nail positioning slot block (206). The vacuum generator (203) is used to adsorb the battery cell glue nails that enter the glue nail positioning slot block (206) from the double track slot of the straight vibration plate assembly (3). The power rotary cylinder (201) drives the glue nail positioning slot block (206) to rotate until the battery cell glue nails stand vertically to ensure smooth feeding.
4. The automatic feeding mechanism for battery cell adhesive nails according to claim 3, characterized in that, The vacuum suction flipping assembly (2) also includes a material absence detection sensor (207), which is fixed on the glue nail positioning slot (206) and is used to detect whether there are battery cell glue nails in the glue nail positioning slot (206).
5. The automatic feeding mechanism for battery cell adhesive nails according to claim 1, characterized in that, The linear vibrating plate assembly (3) includes a linear vibrating plate body (301), a cover plate (302), and a material presence / absence photoelectric detection assembly (303). The cover plate (302) is fixed on the linear vibrating plate body (301), and the material presence / absence photoelectric detection assembly (303) is fixed on both sides of the double track groove of the linear vibrating plate body (301) for detecting whether there are battery cell glue nails passing through the double track groove of the linear vibrating plate body (301).
6. The automatic feeding mechanism for battery cell adhesive nails according to any one of claims 1-5, characterized in that, It also includes a hopper (4) and a circular vibrating track (5). A hopper direct vibrator (6) is provided below the hopper (4) to drive the hopper (4) to vibrate. The outlet of the hopper (4) is located above the circular vibrating track (5). A circular vibrating assembly (7) is provided below the circular vibrating track (5) to drive the circular vibrating track (5) to vibrate. The outlet of the circular vibrating track (5) is connected to the direct vibrating plate assembly (3). The PLC controller controls the vibration of the straight vibrating plate assembly (3).