Multi-station detection power battery sorting and recycling device
By adding multi-station detection to the power battery sorting and recycling device, using a motor-driven slider to drive the electrode sheet into contact with the battery, forming a loop for multiple detections, the problem of inaccurate detection in existing devices is solved, and higher detection accuracy and sorting efficiency are achieved.
Patent Information
- Application Number
- CN202422266755.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-18
- Publication Date
- 2025-09-16
- Estimated Expiration
- 2034-09-18
AI Technical Summary
Existing power battery sorting and recycling equipment does not have multiple inspection stations, resulting in inaccurate test results and difficulty in comprehensively evaluating the overall performance of the battery, which may lead to misjudgment and inefficiency.
A power battery sorting and recycling device with multi-station detection is designed. By adding multiple detection stations, the connecting rod is driven by a motor to rotate, so that the slider slides on the slide slot, the electrode sheet contacts the battery, and cooperates with the electrode plate to form a circuit, thereby performing multiple detections and improving detection accuracy.
Through multiple inspections, the accuracy and efficiency of battery sorting are improved, the misjudgment rate is reduced, and it is ensured that each battery is fully inspected.
Smart Images

Figure CN223337849U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of power battery recycling, in particular to a power battery sorting and recycling device with multi-station detection. Background Art
[0002] The power battery sorting and recycling device is a device specially used for testing, sorting and recycling power batteries. Its main function is to distinguish between batteries that can continue to be used and batteries that need to be scrapped or further processed by testing the performance, status and other relevant parameters of the batteries during the battery recycling process. The device usually includes multiple stations or modules, which can test the batteries from different angles and aspects, such as voltage, internal resistance, capacity, etc., to ensure the accuracy and efficiency of sorting.
[0003] Existing power battery sorting and recycling equipment does not have multiple inspection stations, and only relies on a single inspection station to inspect batteries. This design may lead to inaccurate test results because the battery status may vary at different positions or angles. A single inspection station is difficult to comprehensively and accurately evaluate the overall performance of the battery, which may result in some power batteries not being identified in a timely manner or good batteries being misjudged.
[0004] Therefore, in response to the problem that existing power battery sorting and recycling devices do not have multiple inspection stations and rely solely on a single inspection station to test batteries, this design may lead to inaccurate test results. A power battery sorting and recycling device with multiple inspection stations can be designed. By adding multiple inspection stations, batteries can be tested multiple times, and their condition can be assessed from different angles and positions. This can improve the accuracy of the test, ensure that each battery undergoes a comprehensive inspection, reduce the rate of false positives, and improve the efficiency and reliability of the sorting and recycling process. Utility Model Content
[0005] In order to overcome the problem that the existing power battery sorting and recycling equipment does not have multiple inspection stations and only relies on a single inspection station to inspect the batteries, this design may lead to inaccurate test results because the battery status may vary at different positions or angles. A single inspection station is difficult to comprehensively and accurately evaluate the overall performance of the battery, which may cause some power batteries to not be identified in time or good batteries to be misjudged.
[0006] The technical solution of the utility model is: a power battery sorting and recycling device for multi-station detection, comprising a base; it also includes a detection component, the upper end of the base is connected to a sorting plate, the upper side of the sorting plate is provided with a sorting component, the rear end of the sorting plate is connected to a support plate, the upper front end of the support plate is located at the vertical center line of the sorting plate, and two blanking plates are symmetrically arranged, and a detection component is arranged on the outer side of the blanking plate; the detection component comprises a limit rod, a slide plate, a slide groove, a motor, a connecting rod, a slider, an electrode sheet and an electrode plate; the front side of one blanking plate is equidistantly connected to four limit rods, the outer end of the limit rod is connected to the slide plate, the slide plate is L-shaped, and a slide groove is provided on the side of the slide away from the blanking plate, the side of the blanking plate close to the slide groove is connected to the motor, the output end of the motor is connected to the connecting rod, and the side of the connecting rod away from the motor is rotatably connected to the slider, the slider is slidably connected to the slide groove, and the slide is equidistantly connected to the center point between the two blanking plates at four electrode sheets, and four electrode plates are provided on the rear sides of the two blanking plates corresponding to the positions of the four electrode sheets.
[0007] Preferably, a detection component is set up, a motor is used to drive the connecting rod to rotate, the connecting rod drives the slider to slide on the slide groove, and the slider drives the electrode sheet to move, so that the electrode sheet contacts the battery and cooperates with the electrode plate to form a loop, so as to detect whether the battery has power. Through four electrode plates and electrode sheets, one battery can be detected four times, thereby improving the sorting accuracy.
[0008] Preferably, the detection component includes a limit plate and a detection light; the limit plate is connected to the side of the limit rod away from the blanking plate, and four detection lights are connected to the front side of the skateboard corresponding to the positions of the four electrode sheets. The detection lights are electrically connected to the electrode sheets. When the electrode sheets are in contact with the battery, a circuit is formed between the electrode sheets and the electrode plates. If there is residual power in the battery, the detection lights will light up, thereby performing detection.
[0009] Preferably, the detection lamp is electrically connected to the electrode sheet, and the limit plate is movably connected to the slide plate, and the limit plate is used to limit the movable position of the slide plate.
[0010] Preferably, the sorting component includes a mounting plate and a telescopic cylinder; the mounting plate is connected to the side of the sorting plate close to the motor, and the upper end of the mounting plate is connected to the telescopic cylinder, which is used to help the sorting component to perform sorting.
[0011] Preferably, a sliding plate, a sorting frame and a sorting slot; a telescopic cylinder is connected to a sliding plate near the vertical center line of the sorting plate, a sorting frame is connected to the side of the sliding plate near the sorting plate, two sorting slots are symmetrically provided on the vertical center line of the sorting plate and the sorting frame, the telescopic cylinder drives the sliding plate to move, thereby driving the sorting frame to move left and right, the sorting frame moves the internal batteries into the sorting frame, and the sorting frame will reserve half of its own position between the two blanking plates when moving, so as to prevent the next battery from sliding out, thereby having a shielding effect.
[0012] Preferably, the sorting slot is slidably connected to the sorting frame, the sliding plate is L-shaped, and the sorting slot slides left and right to facilitate the power batteries to fall into the sorting frame for sorting.
[0013] Preferably, the sliding plate is slidably connected to the upper side of the sorting plate, the electrode plate is electrically connected to the electrode sheet, the detection light is electrically connected to the telescopic cylinder through an external controller, the telescopic cylinder monitors the detection light through the external controller, and makes judgments and sorting based on the signal of the last detection light.
[0014] Beneficial effects of the utility model:
[0015] 1. By setting up a detection component, the motor is used to drive the connecting rod to rotate, and the connecting rod drives the slider to slide on the slide slot, so that the slider drives the electrode sheet to move, thereby making the electrode sheet contact with the battery and forming a circuit with the electrode plate to detect whether the battery has power. Through four electrode plates and electrode sheets, one battery can be tested four times, thereby improving sorting accuracy. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 Shown is a schematic diagram of the three-dimensional structure of a power battery sorting and recycling device with multi-station detection in the present utility model;
[0017] Figure 2 Shown is a three-dimensional rear view schematic diagram of a power battery sorting and recycling device with multi-station detection in the present utility model;
[0018] Figure 3 Shown is a schematic diagram of a three-dimensional side section structure of a power battery sorting and recycling device with multi-station detection in the present utility model;
[0019] Figure 4 What is shown is a schematic diagram of the three-dimensional cross-section structure of a power battery sorting and recycling device with multi-station detection in the present invention.
[0020] Explanation of the accompanying reference numerals: 1. Base; 2. Sorting plate; 4. Support plate; 5. Blanking plate; 31. Mounting plate; 32. Telescopic cylinder; 33. Sliding plate; 34. Sorting frame; 35. Sorting slot; 61. Limit rod; 62. Limit plate; 63. Slide plate; 64. Slide slot; 65. Motor; 66. Connecting rod; 67. Slider; 68. Electrode sheet; 69. Detection light; 610. Electrode plate. DETAILED DESCRIPTION
[0021] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0022] See also Figure 1-Figure 4The utility model provides an embodiment: a power battery sorting and recycling device with multi-station detection, comprising a base 1; further comprising a detection component, the upper end of the base 1 is connected to a sorting plate 2, a sorting component is arranged on the upper side of the sorting plate 2, the rear end of the sorting plate 2 is connected to a support plate 4, the upper front end of the support plate 4 is symmetrically provided with two blanking plates 5 located on the vertical center line of the sorting plate 2, a detection component is arranged on the outer side of the blanking plate 5, the detection component comprises a limit rod 61, a slide plate 63, a slide 64, a motor 65, a connecting rod 66, a slider 67, an electrode sheet 68 and an electrode plate 610; the front side of the blanking plate 5 on one side Four limit rods 61 are connected at equal intervals, and the outer ends of the limit rods 61 are connected to slide plates 63. The slide plates 63 are L-shaped, and a slide groove 64 is provided on the side of the slide plate 63 away from the blanking plate 5. The side of the blanking plate 5 close to the slide groove 64 is connected to a motor 65, and the output end of the motor 65 is connected to a connecting rod 66. The side of the connecting rod 66 away from the motor 65 is rotatably connected to a slider 67, and the slider 67 is slidably connected to the slide groove 64. Four electrode sheets 68 are connected to the slide plate 63 at equal intervals near the center point between the two blanking plates 5, and four electrode plates 610 are provided on the rear sides of the two blanking plates 5 at the positions corresponding to the four electrode sheets 68.
[0023] See also Figure 1-Figure 4 In this embodiment, by setting up a detection component, the motor 65 is used to drive the connecting rod 66 to rotate, and the connecting rod 66 drives the slider 67 to slide on the slide 64, so that the slider 67 drives the electrode sheet 68 to move, thereby making the electrode sheet 68 contact with the battery, and cooperates with the electrode plate 610 to form a loop, so as to detect whether the battery has power. Through the four electrode plates 610 and the electrode sheet 68, one battery can be detected four times, thereby improving the sorting accuracy. The detection component includes a limit plate 62 and a detection light 69; the side of the limit rod 61 away from the blanking plate 5 is connected to the limit plate 62, and the front side of the slide plate 63 is connected to four detection The detection light 69 is electrically connected to the electrode sheet 68. When the electrode sheet 68 contacts the battery, a circuit is formed between the electrode sheet 68 and the electrode plate 610. If there is residual power in the battery, the detection light 69 will light up, thereby performing a detection. The detection light 69 is electrically connected to the electrode sheet 68. The limit plate 62 is movably connected to the slide 63. The limit plate 62 is used to limit the movable position of the slide 63. The sorting component includes a mounting plate 31 and a telescopic cylinder 32; the sorting plate 2 is connected to the side close to the motor 65 with the mounting plate 31, and the upper end of the mounting plate 31 is connected to the telescopic cylinder 32. The telescopic cylinder 32 is used to help the sorting component to perform sorting.
[0024] See also Figure 2-Figure 4In this embodiment, the sliding plate 33, the sorting frame 34 and the sorting slot 35; the telescopic cylinder 32 is connected to the sliding plate 33 near the vertical center line of the sorting plate 2, and the sliding plate 33 is connected to the sorting frame 34 on the side close to the sorting plate 2. There are two sorting slots 35 symmetrically provided on the vertical center line of the sorting plate 2 and the sorting frame 34. The telescopic cylinder 32 drives the sliding plate 33 to move, thereby driving the sorting frame 34 to move left and right. The sorting frame 34 moves the internal batteries into the sorting frame 34, and the sorting frame 34 will reserve half of its own position between the two blanking plates 5 when moving. This can prevent the next battery from sliding out, thereby having a shielding effect. The sorting slot 35 is slidably connected to the sorting frame 34. The sliding plate 33 is L-shaped. The sorting slot 35 slides left and right to facilitate the power battery to fall into the sorting frame 34 for sorting. The sliding plate 33 is slidably connected to the upper side of the sorting plate 2. The electrode plate 610 is electrically connected to the electrode sheet 68. The detection light 69 is electrically connected to the telescopic cylinder 32 through an external controller. The telescopic cylinder 32 monitors the detection light 69 through the external controller and makes judgments and sorting according to the signal of the last detection light 69.
[0025] When working, first match the external feeding mechanism with the feeding chute. After installation, the battery will fall into the feeding chute, and the battery at the bottom will fall into the sorting frame 34. Start the motor 65, and the motor 65 drives the connecting rod 66 to rotate. The connecting rod 66 drives the slider 67 to slide on the slide 64, so that the slider 67 drives the electrode sheet 68 to move, so that the electrode sheet 68 contacts the battery and forms a circuit with the electrode plate 610 to detect whether the battery has electricity. When the electrode sheet 68 contacts the battery, the electrode sheet 68 and the electrode plate 610 form a circuit. If there is residual electricity in the battery, the detection light 69 will light up, and the telescopic cylinder 32 drives the sliding plate 33 to move, thereby driving the sorting frame 34 to move left and right. The sorting frame 34 moves the internal batteries into the sorting frame 34, and the sorting frame 34 will reserve half of its own position between the two blanking plates 5 when moving, so as to prevent the next battery from sliding out, thereby playing a shielding effect. Then the first battery in the sorting frame 34 is taken back and put back into the blanking plate 5 for re-inspection. The telescopic cylinder 32 monitors the detection light 69 through the external controller, and judges and sorts according to the signal of the last detection light 69, so that the sorting slot 35 slides left and right to facilitate the power battery to fall into the sorting frame 34 for sorting.
[0026] Through the above steps, by setting up the detection component, the motor 65 is used to drive the connecting rod 66 to rotate, and the connecting rod 66 drives the slider 67 to slide on the slide 64, so that the slider 67 drives the electrode sheet 68 to move, thereby making the electrode sheet 68 contact with the battery, and cooperate with the electrode plate 610 to form a loop, so as to detect whether the battery has power. Through the four electrode plates 610 and the electrode sheet 68, one battery can be detected four times, thereby improving the sorting accuracy.
Claims
1. A power battery sorting and recycling device with multi-station detection, comprising a base (1); characterized in that: The invention also includes a detection component, wherein the upper end of the base (1) is connected to a sorting plate (2), a sorting component is provided on the upper side of the sorting plate (2), a rear end of the sorting plate (2) is connected to a support plate (4), and two blanking plates (5) are symmetrically provided on the upper side of the front end of the support plate (4) and located on the vertical center line of the sorting plate (2), and a detection component is provided on the outer side of the blanking plate (5), and the detection component includes a limit rod (61), a slide plate (63), a chute (64), a motor (65), a connecting rod (66), a slider (67), an electrode sheet (68) and an electrode plate (610); four limit rods (61) are connected to the front side of one side of the blanking plate (5) at equal intervals, and the limit rods (61) are arranged on the upper side of the front end of the support plate (4). The outer end is connected to a slide plate (63), the slide plate (63) is L-shaped, a slide groove (64) is provided on the side of the slide plate (63) away from the blanking plate (5), a motor (65) is connected to the side of the blanking plate (5) close to the slide groove (64), the output end of the motor (65) is connected to a connecting rod (66), the side of the connecting rod (66) away from the motor (65) is rotatably connected to a slider (67), the slider (67) is slidably connected to the slide groove (64), four electrode sheets (68) are connected to the slide plate (63) at equal intervals near the center point between the two blanking plates (5), and four electrode plates (610) are provided on the rear sides of the two blanking plates (5) at positions corresponding to the four electrode sheets (68).
2. The power battery sorting and recycling device with multi-station detection according to claim 1, characterized in that: The detection component includes a limit plate (62) and a detection lamp (69); the limit plate (62) is connected to the side of the limit rod (61) away from the blanking plate (5), and the front side of the slide plate (63) is connected to the positions of the four electrode sheets (68), and the detection lamps (69) are electrically connected to the electrode sheets (68).
3. The power battery sorting and recycling device with multi-station detection according to claim 2, characterized in that: The detection lamp (69) is electrically connected to the electrode sheet (68), and the limiting plate (62) is movably connected to the slide plate (63).
4. The power battery sorting and recycling device with multi-station detection according to claim 2, characterized in that: The sorting assembly comprises a mounting plate (31) and a telescopic cylinder (32); the side of the sorting plate (2) close to the motor (65) is connected to the mounting plate (31), and the upper end of the mounting plate (31) is connected to the telescopic cylinder (32).
5. The power battery sorting and recycling device with multi-station detection according to claim 4, characterized in that: A sliding plate (33), a sorting frame (34) and a sorting slot (35); the telescopic cylinder (32) is connected to the sliding plate (33) at a position close to the vertical center line of the sorting plate (2); the sliding plate (33) is connected to the sorting frame (34) on one side close to the sorting plate (2); and two sorting slots (35) are symmetrically provided on the vertical center line of the sorting plate (2) and the sorting frame (34).
6. The power battery sorting and recycling device with multi-station detection according to claim 5, characterized in that: The sorting slot (35) is slidably connected to the sorting frame (34), and the sliding plate (33) is L-shaped.
7. The power battery sorting and recycling device with multi-station detection according to claim 1, characterized in that: The sliding plate (33) is slidably connected to the upper side of the sorting plate (2), the electrode plate (610) is electrically connected to the electrode sheet (68), and the detection light (69) is electrically connected to the telescopic cylinder (32) through an external controller.