A lead-acid battery positive and negative electrode bushing integrated composite processing system
By combining clamping plate one, cutting blade, support column, sliding column and clamping plate two, the problems of deformation and scratches of bushings during cutting and grinding are solved, and high-quality lead-acid battery bushing processing is achieved.
Patent Information
- Application Number
- CN202511055089.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-30
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2045-07-30
AI Technical Summary
In the prior art, lead-acid battery bushings are prone to deformation when cutting and grinding thin layers, and the cutting tool is prone to scratching the inner wall, resulting in poor processing quality.
The design adopts a combination of clamping plate one, cutter, support column, sliding column and clamping plate two. The sliding column and clamping plate one are connected to achieve coaxial positioning. Clamping plate two works with clamping plate one to hold the thin layer and avoid the cutter from being pulled and deformed. The setting of grinding component and drive unit two ensures that the thin layer is on the cutting path. After cutting, the grinding component removes the residual thin layer.
This effectively prevents the bushing from deforming during the cutting process, ensuring smooth cutting, and the grinding of the bushing cylinder end by the grinding tool makes the process smooth, thus improving the processing quality.
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Figure CN120715649B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of battery bushing processing technology, specifically to an integrated composite processing system for positive and negative electrode bushings of lead-acid batteries. Background Technology
[0002] A battery bushing is a connector used to protect the positive and negative terminals of a battery; as shown in the attached image. Figure 1 As shown, the bushing consists of a square shell that presses onto the terminal to protect it and a cylindrical shell that protects the wire end. The bushing is generally molded; as shown in the attached figure. Figure 2 As shown, in order to facilitate bushing demolding, the bushing forming mold is usually set with two independent inner molds y. Due to processing errors and wear during use, gaps may easily exist between the two inner molds y. During the bushing forming process, the melt squeezed into the gap will form a thin layer after cooling. The thin layer is located at the connection between the square shell and the cylindrical shell. The thin layer needs to be cut off and polished later to avoid scratching the pole and wire.
[0003] Since the bushing is circular, a circular cutter is usually used to cut it. However, the bushing is a thin-walled shell, and the cutting and grinding are both located at the connection point inside the shell. The bushing is easily squeezed and deformed when it is fixed. When the cutter cuts along the path, it is easy to touch the inner wall of the bushing and scratch the end of the cylinder, which causes the bushing to wear the wire during use. Summary of the Invention
[0004] The purpose of this invention is to provide an integrated composite processing system for positive and negative electrode bushings of lead-acid batteries, so as to solve the problems mentioned in the background art.
[0005] To achieve the above objectives, the present invention provides the following technical solution: an integrated composite processing system for positive and negative electrode bushings of lead-acid batteries, comprising a base plate, and further comprising: a support platform, fixedly installed on the top of the base plate and used to support the bushing; a clamping plate one, movably installed inside the support platform, with an insertion hole on the inner side; a cutter, configured as an annular shape and slidably connected to the clamping plate one; a support column, slidably connected to the base plate; a sliding column, movably connected to the support column and coaxially arranged with the support column; the shape of the sliding column near the support platform matches the insertion hole, and can be inserted into the insertion hole; a clamping plate two, rotatably mounted... Mounted on the side wall of the support column near the support platform, and elastically slidably connected to the sliding column along the axial direction; multiple sets of grinding parts are radially slidably connected to the clamping plate two, and are distributed in a circumferential array about the sliding column; drive unit one is set on the top of the base plate and is used to drive the support column and the sliding column to move synchronously; drive unit two is set inside the clamping plate two and is used to drive multiple sets of grinding parts to move synchronously outward, so that the cylindrical end of the bushing expands outward, and drives the grinding parts to grind the bushing after the cutter completes the cutting work; drive unit three is set inside the support platform and is used to drive the cutter to cut the thin layer inside the bushing.
[0006] As a further embodiment of the present invention, the second driving unit includes: a slider, which is radially elastically slidably connected to the second clamping plate, and is configured to have a plurality of sliders equal to the number of grinding parts; the plurality of sliders are respectively fixedly connected to the plurality of grinding parts; each slider has a driving block on its side capable of driving it to slide; a driving ring, which is rotatably connected to the second clamping plate; the plurality of driving blocks are fixedly connected to the driving ring and are arranged in a circumferential array about the driving ring; a spring, one end of which is fixedly connected to the driving ring and the other end of which is fixedly connected to the second clamping plate; a traction rope, one end of which is fixedly connected to the driving ring and the other end of which passes through the second clamping plate and is fixedly connected to the sliding column; a fixed plate, which is axially elastically slidable with the support column; and a motor, which is fixedly mounted on the fixed plate and whose output shaft is fixedly connected to the sliding column.
[0007] As a further embodiment of the present invention, the grinding component comprises an arc-shaped block, a grinding block, a push rod, and a second traction rope; the arc-shaped block is fixedly connected to the slider, and an arc-shaped slot is provided on the arc-shaped block; the grinding block and the push rod are both elastically slidably connected to the arc-shaped block; the two ends of the second traction rope are fixed to the grinding block and the push rod respectively; when the push rod slides, it drives the grinding block to slide in the opposite direction through the second traction rope.
[0008] As a further embodiment of the present invention, the drive unit one includes a cylinder two, which is fixedly connected to the base plate, and the output shaft is fixedly connected to the fixed plate.
[0009] As a further embodiment of the present invention, the driving unit three includes a cylinder and a connecting block; the cylinder is fixedly connected to the support platform, and its output end is fixedly connected to the connecting block; the connecting block is connected to the cutter and is used to drive the cutter to move horizontally.
[0010] As a further embodiment of the present invention, a pressure ring is fixedly connected to the support column, and the inner wall of the pressure ring is in clearance fit with the outer wall of the bushing cylinder end.
[0011] As a further embodiment of the present invention, both the insertion hole and the sliding column insertion end are square, so that when the sliding column rotates, it can drive the clamping plate and the cutter to rotate synchronously.
[0012] As a further embodiment of the present invention, a pin is fixedly installed at one end of the sliding column near the support platform.
[0013] Compared with the prior art, the beneficial effects of the present invention are:
[0014] This invention comprises a clamping plate, a cutter, a support column, a sliding column, and a second clamping plate. The sliding column, through its connection with clamping plate one, allows for fine-tuning of clamping plate one's position, ensuring they are coaxial. Clamping plate one, in conjunction with clamping plate two, clamps and secures the thin layer, preventing bushing deformation caused by the cutter pulling on the thin layer during operation and ensuring smooth cutting. The inclusion of a grinding component and a second driving unit ensures the thin layer is positioned on the cutter's cutting path after the grinding component is fixed to the left end of the bushing cylinder. This prevents the cutter from impacting the inner wall of the bushing cylinder and scratching the cylinder end. Furthermore, after the cutter completes its work, the remaining thin layer on the bushing is relatively thin. The grinding component removes this residual thin layer while smoothing the left end of the bushing cylinder, ensuring the bushing's processing quality. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the bushing structure;
[0016] Figure 2 The diagram illustrates the background technology.
[0017] Figure 3 This is a schematic diagram of the overall structure of the present invention;
[0018] Figure 4 This is a cross-sectional schematic diagram of the clamping plate and the cutting blade structure of the present invention;
[0019] Figure 5 This is a schematic cross-sectional view of the overall structure of the present invention;
[0020] Figure 6 for Figure 5 Enlarged view of a portion of point A in the middle;
[0021] Figure 7 for Figure 5 Enlarged view of a section at point B in the middle;
[0022] Figure 8 This is a schematic diagram of the grinding component, slider, drive block, and drive ring structure of the present invention;
[0023] Figure 9 This is a cross-sectional view of the drive ring, spring 1, and traction rope 1 in their installation state according to the present invention.
[0024] Figure 10 This is a cross-sectional view of the grinding component structure of the present invention;
[0025] Figure 11 This is a schematic diagram of the working state of the grinding part of the present invention;
[0026] Figure 12 This is a cross-sectional schematic diagram of the working state of clamping plate one and clamping plate two of the present invention;
[0027] Figure 13 for Figure 12 Enlarged view of a section at point C;
[0028] Figure 14 This is a cross-sectional schematic diagram of the working state of the grinding part and the cutting tool of the present invention;
[0029] Figure 15 for Figure 14 Enlarged view of a section at point D.
[0030] The attached figures are labeled as follows:
[0031] 1-Base plate, 2-Support platform, 3-Clamping plate one, 4-Cutter, 5-Insertion hole, 6-Support column, 7-Sliding column, 8-Clamping plate two, 9-Grinding part, 10-Slider, 11-Drive block, 12-Drive ring, 13-Spring one, 14-Traction rope one, 15-Arc block, 16-Grinding block, 17-Spring two, 18-Push rod, 19-Traction rope two, 20-Cylinder one, 21-Connecting block, 22-Pressure ring, 23-Motor, 24-Fixing plate, 25-Cylinder two, 26-Slot, 27-Spring three, 28-Spring four. Detailed Implementation
[0032] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0033] Please see Figures 1-15In the attached diagram, x represents the positive and negative electrode bushings of a battery. This invention provides a technical solution: an integrated composite processing system for positive and negative electrode bushings of a lead-acid battery, including a base plate 1, a support platform 2, a clamping plate 3, a cutter 4, a support column 6, a sliding column 7, a clamping plate 8, multiple sets of grinding components 9, a drive unit 1, a drive unit 2, and a drive unit 3; the support platform 2 is fixedly installed on the top of the base plate 1 and is used to support the bushings; the clamping plate 3 is movably installed inside the support platform 2, and has an insertion hole 5 on its inner side; the cutter 4 is annular and slidably connected to the clamping plate 3; the support column 6 is slidably connected to the base plate 1; the sliding column 7 is movably connected to the support column 6 and coaxially arranged with the support column 6; the sliding column 7 is close to the support platform. 2. One end of the clamping plate is shaped to match the insertion hole 5 and can be inserted into the insertion hole 5; the clamping plate 2 is rotatably mounted on the side wall of the support column 6 near the support platform 2 and is elastically slidably connected to the sliding column 7 along the axial direction; multiple sets of grinding parts 9 are slidably connected to the clamping plate 2 along the radial direction and are arranged in a circumferential array about the sliding column 7; the driving unit 1 is set on the top of the base plate 1 and is used to drive the support column 6 and the sliding column 7 to move synchronously; the driving unit 2 is set inside the clamping plate 2 and is used to drive multiple sets of grinding parts 9 to move synchronously outward, so that the cylindrical end of the bushing expands outward, and drives the grinding parts 9 to grind the bushing after the cutter 4 completes the cutting work; the driving unit 3 is set inside the support platform 2 and is used to drive the cutter 4 to cut the thin layer inside the bushing.
[0034] The molded bushing is Figure 5 The cover is placed on support platform 2, so that the inner right wall of the bushing is in contact with the right side wall of support platform 2. At this time, the right side wall of clamping plate 3 is in contact with the thin layer on the bushing; start drive unit 1, as shown. Figure 5 and Figure 6 As shown, the drive unit drives the support column 6 and the sliding column 7 to move synchronously to the left. The support column 6 is clearance-fitted with the bushing cylinder end (there is a gap h2 between the outer diameter of the support column 6 and the inner diameter of the bushing cylinder end), allowing the support column 6 to be easily inserted into the bushing cylinder end. The left end of the sliding column 7 is pointed, which can pierce the thin layer after contacting it. Then, the sliding column 7 is inserted into the insertion hole 5. Through the docking of the sliding column 7 and the insertion hole 5, the guide slope set on the left end of the sliding column 7 can finely adjust the position of the clamping plate 3, so that the clamping plate 3 and the sliding column 7 are in a coaxial state. Figure 12 and Figure 13 As shown, when clamping plate 2 8 moves to fit against the right side wall of the thin layer on the bushing, clamping plate 1 3 cooperates with clamping plate 2 8 to hold the thin layer in place. Then, drive unit 2 drives multiple grinding parts 9 to move outwards synchronously, causing the grinding parts 9 to move to... Figure 11 As shown, in this state, multiple grinding components 9 work together to fix the left end of the bushing cylinder, preventing the left end of the bushing cylinder from being squeezed and deformed; as Figure 13As shown, the diameter of the cutter 4 is similar to the inner diameter of the bushing cylinder end; this ensures that the thin layer is located on the cutting path of the cutter 4, thereby preventing the cutter 4 from acting on the inner wall of the bushing; after the second drive unit drives the grinding component 9 to fix the left end of the bushing cylinder end, the third drive unit then drives the cutter 4 to move to the right to cut the thin layer; as shown Figure 15 As shown, since the diameter of the thin layer is larger than the diameter of the cutter 4, after the cutter 4 completes the cutting work, a thin layer remains on the left end of the bushing cylinder. The third drive unit drives the cutter 4 to retract to the left to the inside of the support platform 2. Then the second drive unit drives the sliding column 7, the second clamping plate 8, and multiple grinding parts 9 to rotate synchronously. The grinding parts 9 grind the left end of the bushing cylinder, removing the residual thin layer and smoothing the left end of the bushing cylinder. After grinding, the second drive unit drives the grinding parts 9 to move back to the initial position closer to the second clamping plate 8. Then the first drive unit can drive the support column 6 and the sliding column 7 to retract to the right to the initial position. This invention is set up with the first clamping plate 3, the cutter 4, the support column 6, the sliding column 7, and the second clamping plate 8. The sliding column 7 and the clamping plate The insertion of clamping plate 3 allows sliding column 7 to finely adjust the position of clamping plate 3, ensuring that clamping plate 3 and sliding column 7 are coaxial. Clamping plate 3, in conjunction with clamping plate 8, can hold and fix the thin layer, preventing bushing deformation caused by the cutting blade 4 pulling the thin layer during operation, thus ensuring smooth cutting. With the setting of grinding component 9 and drive unit 2, after drive unit 2 drives grinding component 9 to fix the left end of the bushing cylinder, it can ensure that the thin layer is located on the cutting path of cutting blade 4, thereby preventing cutting blade 4 from acting on the inner wall of the bushing cylinder and preventing the cutting blade from scratching the cylinder end. Furthermore, after cutting blade 4 completes its work, the remaining thin layer on the bushing is relatively thin. The grinding component 9 removes the residual thin layer while smoothing the left end of the bushing cylinder, ensuring the processing quality of the bushing.
[0035] Specifically, such as Figures 5-9 As shown, the second drive unit includes a slider 10, a drive ring 12, a spring 13, a traction rope 14, a fixed plate 24, and a motor 23. The slider 10 is radially elastically slidably connected to the clamping plate 8, and is configured to have the same number as the number of grinding parts 9. The multiple sliders 10 are fixedly connected to the multiple grinding parts 9 respectively. Each slider 10 has a drive block 11 on its side that can drive it to slide. The drive ring 12 is rotatably connected to the clamping plate 8. The multiple drive blocks 11 are fixedly connected to the drive ring 12 and are arranged in a circumferential array about the drive ring 12. One end of the spring 13 is fixedly connected to the drive ring 12, and the other end is fixedly connected to the clamping plate 8. One end of the traction rope 14 is fixedly connected to the drive ring 12, and the other end passes through the clamping plate 8 and is fixedly connected to the sliding column 7. The fixed plate 24 and the support column 6 slide elastically along the axial direction. The motor 23 is fixedly installed on the fixed plate 24, and its output shaft is fixedly connected to the sliding column 7.
[0036] When the slider 7 moves to Figure 12In the indicated state, clamping plate 2 8, in conjunction with clamping plate 1 3, holds the thin layer, and the grinding part 9 moves to the leftmost position of the bushing cylinder end; at this time, the sliding column 7 can continue to move a distance to the left; the sliding column 7 drives one end of the traction rope 14 to move to the left synchronously; as shown Figure 9 As shown, the other end of the traction rope 14 pulls the drive ring 12 to... Figure 8 As shown, rotating counterclockwise stretches spring 13; drive block 11 drives slider 10 to move outward, and slider 10 moves grinding piece 9 outward to... Figure 11 As shown in the diagram; after the cutter 4 completes the cutting work, the motor 23 drives the slide column 7, clamping plate 8, and multiple grinding parts 9 to rotate synchronously, so that the grinding parts 9 grind the left end of the bushing cylinder; after the grinding work is completed, the slide column 7 moves to the right; when the slide column 7 moves to the right, the support column 6 is in the return spring ( Figure 7 Under the action of spring 4 (28), it moves to Figure 7 The initial state is shown; at the same time, the slider 10 is in the return spring ( Figure 10 Under the action of spring 3 (27), the grinding part 9 is driven to move closer to the clamping plate 2 (8) and return to the initial state. Through the setting of slider 10, driving block 11, driving ring 12, spring 13 and traction rope 14, after clamping and fixing the thin layer with clamping plate 2 (8) and clamping plate 1 (3), clamping plate 2 (8) stops moving. At this time, sliding column 7 can continue to be inserted into the insertion hole 5. The movement of sliding column 7 can drive the driving ring 12 to rotate, thereby driving the driving block 11 to drive slider 10 and grinding part 9 to move outward. Clamping plate 2 (8) cooperates with clamping plate 1 (3) to fix the thin layer. The work of grinding part 9 moving outward to fix the left end of the bushing cylinder can be carried out continuously, which can improve the cutting efficiency of the bushing thin layer.
[0037] Specifically, such as Figure 10 As shown, the grinding component 9 consists of an arc-shaped block 15, a grinding block 16, a push rod 18, and a second traction rope 19. The arc-shaped block 15 is fixedly connected to the slider 10, and an arc-shaped slot 26 is provided on the arc-shaped block 15. The grinding block 16 and the push rod 18 are elastically slidably connected to the arc-shaped block 15. The two ends of the second traction rope 19 are fixed to the grinding block 16 and the push rod 18, respectively. When the push rod 18 slides, it drives the grinding block 16 to slide in the opposite direction through the second traction rope 19.
[0038] refer to Figure 10 and Figure 15 After the grinding part 9 moves outward and fixes the inner wall of the bushing cylinder end outward, the slot 26 is located to the right of the cutter 4. After the cutter 4 completes the cutting work, it moves to the right to insert into the slot 26 and drives the push rod 18 to move to the right; Figure 10As shown, the two ends of the second traction rope 19 are connected to the push rod 18 and the grinding block 16 respectively, and the middle section of the second traction rope 19 passes over the guide pulley; when the push rod 18 moves to the right, it drives the grinding block 16 to move to the left through the second traction rope 19; after the grinding block 16 moves a short distance to the left, its left end moves to the inside of the support platform 2. At this time, the arc-shaped surface of the grinding block 16 completely covers the thin residual area on the bushing, which can ensure that the grinding of the left end of the bushing cylinder is more thorough. After the cutter 4 is inserted into the slot 26, the outer wall of the cutter 4 fits against the inner wall of the grinding block 16, which can support the grinding block 16. The grinding block 16 is stably fitted against the inner wall of the left end of the bushing cylinder, and the grinding block 16 can better complete the grinding work; after the grinding work is completed, the cutter 4 retracts to the left and returns to the inside of the support platform 2, and the grinding block 16 can return to the return spring ( Figure 10 It moves to the initial position under the action of spring 17.
[0039] Specifically, such as Figure 3 As shown, the drive unit includes a second cylinder 25, which is fixedly connected to the base plate 1, and the output shaft is fixedly connected to the fixed plate 24. The extension and retraction of the second cylinder 25 drives the fixed plate 24, the motor 23, and the support column 6 to move horizontally.
[0040] Specifically, such as Figure 4 As shown, the drive unit three includes a cylinder 20 and a connecting block 21; the cylinder 20 is fixedly connected to the support platform 2, and its output end is fixedly connected to the connecting block 21; the connecting block 21 is connected to the cutter 4 and is used to drive the cutter 4 to move horizontally; the cutter 4 is driven to perform cutting work by the extension and retraction of the cylinder 20.
[0041] Specifically, such as Figure 3 and Figure 6 As shown, a pressure ring 22 is fixedly connected to the support column 6. The inner wall of the pressure ring 22 is in clearance fit with the outer wall of the bushing cylinder end; there is a distance h1 between the inner diameter of the pressure ring 22 and the outer diameter of the bushing cylinder end, as shown. Figure 12 As shown, when clamping plate 28 moves to engage with clamping plate 3, pressure ring 22 presses the bushing onto support platform 2, making the bushing more stable when cutting thin layers.
[0042] Specifically, such as Figure 11 As shown, the insertion holes 5 and the sliding pin 7 are both square so that when the sliding pin 7 rotates, it can drive the clamping plate 3 and the cutter 4 to rotate synchronously. When the sliding pin 7 rotates, it can drive the clamping plate 3 and the cutter 4 to rotate synchronously. There is no relative movement between the cutter 4 and the grinding block 16, which can reduce the wear of the contact surfaces of the two.
[0043] Specifically, such as Figure 5 As shown, a pin is fixedly installed at one end of the sliding column 7 near the support platform 2, which facilitates piercing the thin layer and allowing the sliding column 7 to pass through the thin layer.
[0044] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.
[0045] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. An integrated composite processing system for positive and negative electrode bushings of lead-acid batteries, comprising a base plate (1), characterized in that: Also includes: The support platform (2) is fixedly installed on the top of the base plate (1) and is used to support the bushing; Clamp 1 (3) is movably installed on the inside of the support platform (2), and has a socket (5) on the inside. The cutter (4) is set as a ring and is slidably connected to the clamping plate (3); The support column (6) is slidably connected to the base plate (1); The sliding column (7) is movably connected to the support column (6) and is arranged coaxially with the support column (6); the shape of the end of the sliding column (7) near the support platform (2) matches the socket (5) and can be inserted into the socket (5); Clamping plate 2 (8) is rotatably installed on the side wall of the support column (6) near the support platform (2), and is elastically connected to the sliding column (7) along the axial direction; Multiple sets of grinding parts (9) are radially slidably connected to the second clamping plate (8) and are arranged in a circumferential array about the sliding column (7); Drive unit 1 is located on the top of the base plate (1) and is used to drive the support column (6) and the sliding column (7) to move synchronously; Drive unit 2 is located inside clamping plate 2 (8) and is used to drive multiple sets of grinding parts (9) to move outward synchronously, so that the bushing cylindrical end expands outward, and drive the grinding parts (9) to grind the bushing after the cutter (4) completes the cutting work; The third drive unit is located inside the support platform (2) and is used to drive the cutter (4) to cut the thin layer inside the bushing. The second driving unit includes: The slider (10) is radially elastically slidably connected to the clamping plate (8), and is configured to be multiple in number as the number of grinding parts (9); the multiple sliders (10) are respectively fixedly connected to the multiple grinding parts (9); each slider (10) is provided with a driving block (11) on its side that can drive it to slide. The drive ring (12) is rotatably connected to the clamping plate (8); the multiple drive blocks (11) are all fixedly connected to the drive ring (12) and are arranged in a circular array about the drive ring (12); Spring 1 (13) is fixedly connected at one end to drive ring (12) and at the other end to clamp plate 2 (8); One end of the traction rope (14) is fixedly connected to the drive ring (12), and the other end passes through the clamp plate (8) and is fixedly connected to the slide column (7); The fixed plate (24) and the support column (6) slide elastically along the axial direction; The motor (23) is fixedly installed on the fixed plate (24), and the output shaft is fixedly connected to the slide column (7).
2. The integrated composite processing system for positive and negative electrode bushings of lead-acid batteries according to claim 1, characterized in that: The grinding component (9) consists of an arc-shaped block (15), a grinding block (16), a push rod (18), and a second traction rope (19). The arc-shaped block (15) is fixedly connected to the slider (10), and an arc-shaped slot (26) is provided on the arc-shaped block (15). The grinding block (16) and the push rod (18) are elastically slidably connected to the arc-shaped block (15). The two ends of the second traction rope (19) are fixed to the grinding block (16) and the push rod (18) respectively. When the push rod (18) slides, it drives the grinding block (16) to slide in the opposite direction through the second traction rope (19).
3. The integrated composite processing system for positive and negative electrode bushings of lead-acid batteries according to claim 1, characterized in that: The drive unit includes a second cylinder (25), which is fixedly connected to the base plate (1), and the output shaft is fixedly connected to the fixed plate (24).
4. The integrated composite processing system for positive and negative electrode bushings of lead-acid batteries according to claim 1, characterized in that: The drive unit three includes a cylinder (20) and a connecting block (21); the cylinder (20) is fixedly connected to the support platform (2), and its output end is fixedly connected to the connecting block (21); the connecting block (21) is connected to the cutter (4) and is used to drive the cutter (4) to move horizontally.
5. The integrated composite processing system for positive and negative electrode bushings of a lead-acid battery according to claim 1, characterized in that: A pressure ring (22) is fixedly connected to the support column (6), and the inner wall of the pressure ring (22) is in clearance fit with the outer wall of the bushing cylinder end.
6. The integrated composite processing system for positive and negative electrode bushings of a lead-acid battery according to claim 1, characterized in that: The insertion holes (5) and sliding pins (7) are both square so that when the sliding pins (7) rotate, they can drive the clamping plate (3) and the cutter (4) to rotate synchronously.
7. The integrated composite processing system for positive and negative electrode bushings of a lead-acid battery according to claim 1, characterized in that: A pin is fixedly installed at one end of the sliding column (7) near the support platform (2).
Citation Information
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