Machining mechanism for unformed plate of battery of electric bicycle
By designing an electric bicycle battery electrode plate processing mechanism that combines an operating table and a cutting mechanism with a slider, screw, and positioning mechanism, the problem of low processing efficiency for electrode plates of different specifications is solved, enabling rapid clamping and cutting, and improving processing efficiency and results.
Patent Information
- Application Number
- CN202422699448.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-06
- Publication Date
- 2025-10-31
- Estimated Expiration
- 2034-11-06
AI Technical Summary
Existing electric bicycle battery electrode plate processing mechanisms require frequent fixture changes or adjustments when processing electrode plates of different specifications, resulting in poor processing efficiency and effectiveness.
A processing mechanism including an operating table, a cutting mechanism, a clamping plate, a slider, a screw, a positioning mechanism, and auxiliary components was designed. The mechanism enables the rapid clamping and fixing of green plates of different specifications by rotating the screw and slider, and drives the cutting through a power mechanism, thereby improving processing efficiency.
It enables rapid clamping, fixing, and cutting of raw electrode plates of different specifications, improving processing efficiency and effectiveness, and enhancing practicality.
Smart Images

Figure CN223492169U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of auxiliary devices for processing electric bicycle batteries, and in particular to a processing mechanism for the green electrode plate of an electric bicycle battery. Background Technology
[0002] As is well known, the processing of the green electrode plate is a crucial step in the production of electric bicycle batteries (especially lead-acid batteries). The green electrode plate consists of a grid made of lead alloy and an active material coated on it. To ensure the quality and performance of the battery, the green electrode plate needs to undergo precise cutting to facilitate subsequent assembly and use.
[0003] An existing processing mechanism for green plates of electric bicycle batteries has been found to have limitations in its use. Existing fixing components are typically designed for plates of a specific size. When processing plates of different specifications, it is necessary to frequently change the clamps or adjust their positions, which is time-consuming and reduces the efficiency and effectiveness of processing green plates, resulting in poor practicality. Utility Model Content
[0004] To solve the above-mentioned technical problems, this utility model provides a processing mechanism for green plates of electric bicycle batteries that allows workers to quickly clamp and fix green plates of different sizes, thereby improving the efficiency and effect of processing green plates and enhancing its practicality.
[0005] This utility model discloses a processing mechanism for the green electrode plate of an electric bicycle battery, including an operating table and a cutting mechanism. The cutting mechanism is provided at the rear end of the top of the operating table. The mechanism also includes a placement plate, two sets of clamping plates, two sets of first sliders, a bidirectional screw, a positioning mechanism, an auxiliary component, and a sliding component. The front end of the top of the operating table slides tightly against the bottom of the placement plate through the sliding component. The rear end of the top of the placement plate is provided with a first sliding groove. The two ends of the bidirectional screw are rotatably connected to the first sliding groove of the placement plate. The two sets of first sliders are threadedly connected through the bidirectional screw and are slidably connected to the first sliding groove of the placement plate. The tops of the two sets of first sliders are connected to the bottom of a set of clamping plates. The front end of the top of the placement plate is provided with an auxiliary component, and the top of the placement plate is provided with a positioning mechanism.
[0006] Preferably, the sliding assembly includes a second slider, a first screw, and a power mechanism. A slide groove is provided at the front end of the top of the operating table, and the left end of the first screw is rotatably connected to the left end of the slide groove of the operating table. The front end of the right side of the operating table is connected to the left end of the power mechanism, and the left output end of the power mechanism is connected to the right end of the first screw. The second slider is threadedly connected to the first screw, and the two sets of second sliders are slidably connected to the slide groove of the detection table. The top of the second slider is connected to the bottom of the placement plate.
[0007] Preferably, the auxiliary components include a first pressure plate, a fixing block, a third slider, and a second screw. A second groove is provided at the top front end of the placement plate. The third slider is slidably connected to the second groove of the placement plate, and the top of the third slider is connected to the bottom of the first pressure plate. The top front end of the placement plate is connected to the bottom of the fixing block. The fixing block is provided with a threaded hole. The second screw is threadedly connected to the fixing block through the threaded hole, and the rear end of the second screw is rotatably connected to the front end of the first pressure plate.
[0008] Preferably, the positioning mechanism includes two sets of fixed plates, a connecting plate, two sets of hinge seats, two sets of connecting screws, a mounting block, a second pressure plate, and a buffer assembly. The top left and right ends of the placement plate are respectively connected to the bottom of one set of fixed plates. The top front ends of the two sets of fixed plates are respectively hinged to the front ends of the connecting plate through the hinge seats. The connecting plate and the two sets of fixed plates are respectively provided with a set of threaded holes. The two sets of connecting screws are respectively threaded to the connecting plate and the fixed plate through the threaded holes. The bottom of the fixed plate is connected to the top of the mounting block. The top of the second pressure plate is slidably fitted to the bottom of the mounting block through the buffer assembly.
[0009] Preferably, the buffer assembly includes multiple sets of damping rods and multiple sets of connecting springs. The bottom of the mounting block is provided with a groove, the top of the groove of the mounting block is uniformly connected to the top of the multiple sets of damping rods, the bottom of the second pressure plate is uniformly connected to the bottom of the multiple sets of damping rods, and connecting springs are respectively provided on the outer side of the multiple sets of damping rods. The top of the second pressure plate and the groove of the mounting block are slidably fitted together.
[0010] Preferably, it also includes multiple sets of rotating handles, with the left end of the bidirectional screw passing through the corresponding first slide groove and connecting to the right end of the rotating handle, the front end of the second screw connecting to the rear end of a set of rotating handles, and the two sets of connecting screws respectively connecting to the bottom of another set of rotating handles.
[0011] Preferably, it also includes four sets of anti-slip pads, with one set of anti-slip pads respectively provided at the rear end of the first pressure plate and the bottom of the second pressure plate, and another set of anti-slip pads respectively provided at one end of the two sets of clamps.
[0012] Preferably, it also includes a handle, with the top of the connecting plate and the bottom of the handle connected together.
[0013] Compared with the prior art, the beneficial effects of the processing mechanism for the green electrode plate of electric bicycle battery of this utility model are as follows: First, the worker places the green electrode plate on the placement plate, and then rotates the bidirectional screw, so that the two sets of first sliders drive the clamping plates to slide until one end of the two sets of clamping plates is tightly attached to one end of the green electrode plate. Then, the worker adjusts the cutting length of the green electrode plate by adjusting the auxiliary components, and then uses the positioning mechanism to make it tightly attached to the top of the green electrode plate and clamp it. Finally, the worker starts the sliding component, the placement plate begins to drive the green electrode plate to slide, and the cutting mechanism begins to cut it until the cutting is completed. This allows the worker to quickly clamp and fix green electrode plates of different sizes, thereby improving the work efficiency and effect of processing green electrode plates, and thus enhancing its practicality. Attached Figure Description
[0014] Figure 1 This is a three-dimensional structural schematic diagram of the present invention;
[0015] Figure 2 This is a front view structural cross-sectional schematic diagram of this utility model;
[0016] Figure 3 This is a schematic diagram of the left-side structural cross-section of this utility model;
[0017] Figure 4 This is a partial enlarged structural schematic diagram of A of this utility model;
[0018] The following are labels in the attached diagram: 1. Operating table; 2. Cutting mechanism; 3. Placement plate; 4. Clamping plate; 5. First slider; 6. Bidirectional screw; 7. Second slider; 8. First screw; 9. Power mechanism; 10. First pressure plate; 11. Fixing block; 12. Third slider; 13. Second screw; 14. Fixing plate; 15. Connecting plate; 16. Hinge seat; 17. Connecting screw; 18. Mounting block; 19. Second pressure plate; 20. Damping rod; 21. Connecting spring; 22. Rotating handle; 23. Anti-slip pad; 24. Handle. Detailed Implementation
[0019] The specific embodiments of this utility model will be described in further detail below with reference to the accompanying drawings and examples. The following examples are used to illustrate this utility model, but are not intended to limit its scope.
[0020] like Figures 1 to 4As shown, this utility model discloses a processing mechanism for the green electrode plate of an electric bicycle battery, including an operating table 1 and a cutting mechanism 2. The cutting mechanism 2 is located at the top rear end of the operating table 1. The mechanism also includes a placement plate 3, two sets of clamping plates 4, two sets of first sliders 5, a bidirectional screw 6, a positioning mechanism, auxiliary components, and a sliding assembly. The top front end of the operating table 1 slides tightly against the bottom of the placement plate 3 via the sliding assembly. A first sliding groove is provided at the top rear end of the placement plate 3. The two ends of the bidirectional screw 6 are rotatably connected to the first sliding groove of the placement plate 3. The two sets of first sliders 5 are threadedly connected to the bidirectional screw 6 and slidably connected to the first sliding groove of the placement plate 3. The tops of the two sets of first sliders 5 are connected to the bottoms of a set of clamping plates 4. A positioning mechanism is provided at the top front end of the placement plate 3. The auxiliary component, placement plate 3, is equipped with a positioning mechanism on its top. First, the worker places the raw electrode plate on the placement plate, then rotates the bidirectional screw, causing the two sets of first sliders to slide the clamping plates until one end of each clamping plate is tightly attached to one end of the raw electrode plate. Then, the worker adjusts the auxiliary component to adjust the cutting length of the raw electrode plate, and then uses the positioning mechanism to make it tightly attached to the top of the raw electrode plate for clamping. Finally, the worker activates the sliding component, and the placement plate begins to slide the raw electrode plate, while the cutting mechanism begins to cut it until the cutting is complete. This allows the worker to quickly clamp and fix raw electrode plates of different sizes, thereby improving the efficiency and effectiveness of processing raw electrode plates and enhancing its practicality.
[0021] As a preferred embodiment of the above, the sliding assembly includes a second slider 7, a first screw 8, and a power mechanism 9. A sliding groove is provided at the top front end of the operating table 1, and the left end of the first screw 8 is rotatably connected to the left end of the sliding groove of the operating table 1. The right front end of the operating table 1 is connected to the left end of the power mechanism 9, and the left output end of the power mechanism 9 is connected to the right end of the first screw 8. The second slider 7 is threadedly connected to the first screw 8, and the two sets of second sliders 7 are slidably connected to the sliding groove of the detection table. The top of the second slider 7 is connected to the bottom of the placement plate 3. When the operator starts the power mechanism, the output end of the power mechanism drives the first screw to slide, which allows the first slider to quickly drive the placement plate to slide, thereby enabling the operator to quickly cut the raw plate, thus enhancing its practicality.
[0022] As a preferred embodiment of the above, the auxiliary components include a first pressure plate 10, a fixing block 11, a third slider 12, and a second screw 13. A second sliding groove is provided at the top front end of the placement plate 3. The third slider 12 is slidably connected to the second sliding groove of the placement plate 3, and the top of the third slider 12 is connected to the bottom of the first pressure plate 10. The top front end of the placement plate 3 is connected to the bottom of the fixing block 11. The fixing block 11 is provided with a threaded hole. The second screw 13 is threadedly connected to the fixing block 11 through the threaded hole, and the rear end of the second screw 13 is rotatably connected to the front end of the first pressure plate 10. When the operator rotates the second screw, the third slider drives the first pressure plate to slide until the first pressure plate pushes the green plate to a suitable cutting length, thereby clamping and fixing the green plate and quickly adjusting the cutting length of the green plate, thus enhancing its practicality.
[0023] As a preferred embodiment of the above, the positioning mechanism includes two sets of fixed plates 14, a connecting plate 15, two sets of hinge seats 16, two sets of connecting screws 17, a mounting block 18, a second pressure plate 19, and a buffer assembly. The top left and right ends of the placement plate 3 are respectively connected to the bottom of one set of fixed plates 14. The top front ends of the two sets of fixed plates 14 are respectively hinged to the front ends of the connecting plate 15 through the hinge seats 16. The connecting plate 15 is provided with a set of threaded holes through the two sets of fixed plates 14. The two sets of connecting screws 17 are respectively threaded to the connecting plate 15 and the fixed plate 14 through the threaded holes. The bottom of the fixed plate 14 is connected to the top of the mounting block 18. The top of the second pressure plate 19 is slidably fitted to the bottom of the mounting block 18 through the buffer assembly. The operator flips the connecting plate by using the hinge seats, so that the bottom of the connecting plate and the top of the fixed plate are in close contact. Then, the two sets of connecting screws are rotated until they are threadedly connected to the connecting plate and the fixed plate respectively. At the same time, the bottom of the second pressure plate and the green plate are kept in close contact, thereby quickly improving the vertical clamping effect of the green plate and thus enhancing its practicality.
[0024] As a preferred embodiment of the above, the buffer assembly includes multiple sets of damping rods 20 and multiple sets of connecting springs 21. The bottom of the mounting block 18 is provided with a groove, and the top of the groove of the mounting block 18 is uniformly connected to the top of the multiple sets of damping rods 20. The bottom of the second pressure plate 19 is uniformly connected to the bottom of the multiple sets of damping rods 20. Connecting springs 21 are respectively provided on the outer side of the multiple sets of damping rods 20, and the top of the second pressure plate 19 and the groove of the mounting block 18 are slidably fitted together. Through the extension and retraction of the multiple sets of damping rods and connecting springs, the second pressure plate can always be kept in close contact with the green plate, and the force generated by squeezing and collision can be reduced.
[0025] As a preferred embodiment of the above, it also includes multiple sets of rotating handles 22. The left end of the bidirectional screw 6 passes through the corresponding first slide groove and is connected to the right end of the rotating handle 22. The front end of the second screw 13 is connected to the rear end of a set of rotating handles 22, and the two sets of connecting screws 17 are respectively connected to the bottom of another set of rotating handles 22. This allows the operator to quickly rotate the connecting screw and the second screw, thus enhancing practicality.
[0026] As a preferred embodiment of the above, it also includes four sets of anti-slip pads 23. A set of anti-slip pads 23 is provided at the rear end of the first pressure plate 10 and the bottom of the second pressure plate 19, and another set of anti-slip pads 23 is provided at one end of each of the two sets of clamping plates 4. This can improve the anti-slip effect and at the same time reduce the wear caused by the extrusion friction on the green plate, thus enhancing its practicality.
[0027] As a preferred embodiment of the above, it also includes a handle 24, with the top of the connecting plate 15 and the bottom of the handle 24 connected; the connecting plate can be pulled quickly, thus enhancing practicality.
[0028] This utility model discloses a processing mechanism for the green electrode plate of an electric bicycle battery. During operation, the operator first places the green electrode plate on a placement plate. Then, by rotating the handle, a bidirectional screw is rotated, causing two sets of first sliders to slide along the clamping plates until one end of each clamping plate is in close contact with one end of the green electrode plate. Next, the operator rotates the handle to rotate the second screw, causing a third slider to slide along the first pressure plate until the first pressure plate pushes the green electrode plate to the appropriate cutting length. Then, the operator pulls the handle, causing the connecting plate to flip via the hinge, making the bottom of the connecting plate and the top of the fixing plate fit tightly together. The operator then rotates the handle to rotate the two sets of connecting screws until they are threadedly connected to the connecting plate and the fixing plate, while simultaneously keeping the bottom of the second pressure plate in close contact with the green electrode plate, clamping it. Finally, the operator activates the power mechanism, which drives the first screw to rotate. The first slider then begins to slide along the placement plate, and the cutting mechanism begins to cut the green electrode plate until the cutting is complete. Before completing the above actions, the plate is first moved to the desired position by the user.
[0029] The terms “vertical,” “horizontal,” “left,” “right,” and similar expressions used in this article are for illustrative purposes only.
[0030] In this utility model, the terms "first," "second," and "third" do not represent a specific quantity or order, but are merely used to distinguish names.
[0031] The above description is only a preferred embodiment of the present utility model. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the technical principles of the present utility model, and these improvements and modifications should also be considered within the protection scope of the present utility model.
Claims
1. A processing mechanism for the green plate of an electric bicycle battery, comprising an operating table (1) and a cutting mechanism (2), wherein the cutting mechanism (2) is provided at the rear end of the top of the operating table (1), characterized in that, It also includes a placement plate (3), two sets of clamping plates (4), two sets of first sliders (5), a bidirectional screw (6), a positioning mechanism, auxiliary components and a sliding component. The top front end of the operating table (1) slides and fits tightly against the bottom of the placement plate (3) through the sliding component. The top rear end of the placement plate (3) is provided with a first sliding groove. The two ends of the bidirectional screw (6) are rotatably connected to the first sliding groove of the placement plate (3) respectively. The two sets of first sliders (5) are threadedly connected through the bidirectional screw (6) respectively, and the two sets of first sliders (5) are slidably connected to the first sliding groove of the placement plate (3) respectively. The top of the two sets of first sliders (5) is connected to the bottom of a set of clamping plates (4) respectively. The top front end of the placement plate (3) is provided with an auxiliary component. The top of the placement plate (3) is provided with a positioning mechanism.
2. The processing mechanism for the green electrode plate of an electric bicycle battery as described in claim 1, characterized in that, The sliding assembly includes a second slider (7), a first screw (8), and a power mechanism (9). The top front end of the operating table (1) is provided with a sliding groove, and the left end of the first screw (8) is rotatably connected to the left end of the sliding groove of the operating table (1). The right front end of the operating table (1) is connected to the left end of the power mechanism (9), and the left output end of the power mechanism (9) is connected to the right end of the first screw (8). The second slider (7) and the first screw (8) are threadedly connected, and the two sets of second sliders (7) are slidably connected to the sliding groove of the detection table. The top of the second slider (7) is connected to the bottom of the placement plate (3).
3. The processing mechanism for the green electrode plate of an electric bicycle battery as described in claim 2, characterized in that, The auxiliary components include a first pressure plate (10), a fixing block (11), a third slider (12), and a second screw (13). The top front end of the placement plate (3) is provided with a second sliding groove. The third slider (12) and the second sliding groove of the placement plate (3) are slidably connected. The top of the third slider (12) is connected to the bottom of the first pressure plate (10). The top front end of the placement plate (3) is connected to the bottom of the fixing block (11). The fixing block (11) is provided with a threaded hole. The second screw (13) is threadedly connected to the fixing block (11) through the threaded hole. The rear end of the second screw (13) is rotatably connected to the front end of the first pressure plate (10).
4. The processing mechanism for the green electrode plate of an electric bicycle battery as described in claim 3, characterized in that, The positioning mechanism includes two sets of fixed plates (14), a connecting plate (15), two sets of hinge seats (16), two sets of connecting screws (17), a mounting block (18), a second pressure plate (19), and a buffer assembly. The top left and right ends of the placement plate (3) are respectively connected to the bottom of a set of fixed plates (14). The top front ends of the two sets of fixed plates (14) are respectively hinged to the front ends of the connecting plate (15) through the hinge seats (16) and the connecting plate (15). The connecting plate (15) is provided with a set of threaded holes through the two sets of fixed plates (14). The two sets of connecting screws (17) are respectively threaded to the connecting plate (15) and the fixed plate (14) through the threaded holes. The bottom of the fixed plate (14) is connected to the top of the mounting block (18). The top of the second pressure plate (19) is slidably fitted to the bottom of the mounting block (18) through the buffer assembly.
5. A processing mechanism for a green electrode plate of an electric bicycle battery as described in claim 4, characterized in that, The buffer assembly includes multiple sets of damping rods (20) and multiple sets of connecting springs (21). The bottom of the mounting block (18) is provided with a groove. The top of the groove of the mounting block (18) is uniformly connected to the top of the multiple sets of damping rods (20). The bottom of the second pressure plate (19) is uniformly connected to the bottom of the multiple sets of damping rods (20). Connecting springs (21) are respectively provided on the outer side of the multiple sets of damping rods (20). The top of the second pressure plate (19) and the groove of the mounting block (18) slide together.
6. The processing mechanism for the green electrode plate of an electric bicycle battery as described in claim 5, characterized in that, It also includes multiple sets of rotating handles (22), the left end of the bidirectional screw (6) passes through the corresponding first slide and connects to the right end of the rotating handle (22), the front end of the second screw (13) is connected to the rear end of a set of rotating handles (22), and the two sets of connecting screws (17) are respectively connected to the bottom of another set of rotating handles (22).
7. A processing mechanism for a green electrode plate of an electric bicycle battery as described in claim 6, characterized in that, It also includes four sets of anti-slip pads (23). A set of anti-slip pads (23) is provided at the rear end of the first pressure plate (10) and the bottom of the second pressure plate (19), and another set of anti-slip pads (23) is provided at one end of each of the two sets of clamps (4).
8. A processing mechanism for a green electrode plate of an electric bicycle battery as described in claim 7, characterized in that, It also includes a handle (24), a connection plate (15) at the top and a handle (24) at the bottom.