Automatic cutting processing equipment for lead-acid battery cover
By designing an automatic cutting and processing equipment for lead-acid battery caps, and utilizing a conveyor table, baffle, pusher plate, and cutting components, the automatic cutting and output of caps is achieved, solving the problems of high labor intensity and low efficiency in existing technologies, and realizing semi-automated assembly line processing of caps.
Patent Information
- Application Number
- CN202411452919.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-17
- Publication Date
- 2026-08-25
- Estimated Expiration
- 2044-10-17
AI Technical Summary
The existing process of removing the caps from lead-acid batteries is labor-intensive and inefficient, making it difficult to meet assembly requirements.
Design an automatic cutting and processing equipment for lead-acid battery caps. Through a semi-automatic assembly line approach, using a conveyor table, baffle, pusher plate, cutting components, and linkages, the automatic cutting and output of the caps is achieved, reducing the labor intensity of operators and increasing the processing speed.
It has enabled a semi-automated assembly line operation for sealing rubber caps, reducing labor intensity and increasing processing speed.
Smart Images

Figure CN119319588B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of lead-acid batteries and relates to lead-acid battery production technology, specifically an automatic cutting and processing device for lead-acid battery caps. Background Technology
[0002] Traditional lead-acid battery covers have positive and negative terminals at the positive and negative electrode positions, allowing the positive and negative terminals inside the battery to pass through the cover and connect to external wires. However, in some existing lead-acid battery covers, the positive and negative terminals are sealed after injection molding. These sealed caps must be removed after the lead-acid battery is assembled before the terminals can be installed. However, in current technology, the caps are mostly removed manually using a handheld pneumatic screwdriver. This method requires repeated manual handling of the cap, removing and resetting it, resulting in numerous steps, high labor intensity, and low processing efficiency, making it difficult to meet the assembly requirements of lead-acid batteries.
[0003] Therefore, an automatic cutting and processing device for lead-acid battery caps is needed to solve the above problems. Summary of the Invention
[0004] This invention aims to solve at least one of the technical problems existing in the prior art. To this end, this invention proposes an automatic lead-acid battery cap cutting and processing device, which completes the removal of caps in a semi-automatic assembly line manner, effectively reducing the labor intensity of operators and improving the processing speed compared to manual removal. This invention uses a conveyor table, baffle, pusher plate, cutting assembly, and linkage mechanism. The conveyor table is tilted so that when the conveyor table transports the caps, they are blocked by the baffle and then pushed to a designated position by the pusher plate. This allows the cutting assembly to cut the caps, and the linkage mechanism ensures that the pusher plate, upon resetting, aligns the baffle with the surface of the conveyor table for the caps to pass through. This achieves integrated functions of cap transport, cap cutting, and cap output. During this process, the operator only needs to place the cap in a specific posture on the conveyor table to complete the assembly line removal operation, thus reducing labor intensity and increasing processing speed.
[0005] To achieve the above objectives, a first aspect of the present invention provides an automatic cutting and processing device for lead-acid battery caps, comprising a conveyor table, a baffle, a pusher plate, a cutting assembly, and a linkage component;
[0006] The conveyor table has a first sidewall and a second sidewall, and the height of the first sidewall is lower than the height of the second sidewall;
[0007] The baffle is rotatably mounted on the conveyor table and can be flipped to be perpendicular or parallel to the surface of the conveyor table, respectively for sealing the positioning and output on the conveyor table;
[0008] The pusher plate slides through the first sidewall along a conveying direction perpendicular to the conveyor table to push the cap, so that the side of the cap with the rubber cap is exposed to the outside of the conveyor table.
[0009] The cutting assembly is disposed on the second sidewall and is used to cut the cap of the seal;
[0010] The linkage is located inside the first side wall, and its two ends are movably connected to the baffle and the push plate, respectively, so that when the push plate is reset and retracted, the linkage can pull the baffle to flip to be parallel to the surface of the conveyor table.
[0011] Furthermore, an opening is provided on the first sidewall for sliding of the push plate;
[0012] The baffle is rotatably connected to the first sidewall via a rotating shaft;
[0013] The linkage component includes a wedge-shaped slider;
[0014] The wedge-shaped slider is slidably installed inside the first sidewall along the conveying direction parallel to the conveying table, and one end with the wedge-shaped surface extends to the opening and abuts against one sidewall of the push plate in a wedge shape, so that when the push plate retracts, it can push the wedge-shaped slider to slide.
[0015] The other end of the wedge-shaped slider has a toothed block;
[0016] The rack block meshes with the rotating shaft via gears.
[0017] Furthermore, the linkage also includes a return spring;
[0018] The reset spring is sleeved on the outer wall of the wedge-shaped slider and is used to reset the wedge-shaped slider and keep the wedge-shaped slider stationary when it is not subjected to external force.
[0019] Furthermore, when the push plate is in contact with the wedge-shaped slider and moves away from the second sidewall, one end of the push plate presses the wedge-shaped surface of the wedge-shaped slider, causing the wedge-shaped slider to move away from the opening. Under the action of the rack block and the gear, the baffle can be pulled to flip to be parallel to the surface of the conveyor table.
[0020] When the push plate is pressed against the wedge slider and moves along the direction close to the second side wall, the wedge slider moves along the direction close to the opening under the action of the return spring, and under the action of the rack block and the gear, it gradually pulls the baffle to flip to be perpendicular to the surface of the conveyor table;
[0021] When the push plate is in contact with the wedge slider and moves along the direction close to the second side wall, the wedge slider remains stationary, so that the baffle and the surface of the conveyor table are always perpendicular to each other.
[0022] Furthermore, when the push plate is in contact with the wedge-shaped slider, the supporting surface of the push plate is flush with the first side wall.
[0023] Furthermore, the elastic force of the reset spring is much greater than the conveying power of the conveyor table.
[0024] Furthermore, the tilt angle of the conveyor table is 30°-45°.
[0025] Furthermore, the cutting assembly includes a U-shaped support frame, a rotary cutter, a power supply, and a spring plate;
[0026] The U-shaped support frame is fixedly installed on the second side wall;
[0027] The rotary cutter is rotatably mounted on the inner wall of the U-shaped support frame;
[0028] The power supply is located inside the U-shaped support frame and is connected to the drive end of the rotating cutter via a wire, forming an open circuit;
[0029] The disconnect circuit has two conductive contacts disposed on the inner wall of the U-shaped support frame;
[0030] The spring plate is slidably installed in the cavity surrounded by the U-shaped support frame and the second side wall;
[0031] One side of the spring plate is used to abut against the rubber cap of the cover, and the other side has a conductive sheet for electrically connecting with the two conductive contacts, so that a closed circuit is formed between the power supply, the wire and the drive end of the rotary cutter.
[0032] Furthermore, when the pusher plate pushes the cover to the outside of the conveyor table, the cap of the cover can apply a pushing force to the spring plate, so that the conductive sheet is electrically connected to the two conductive contacts, and the rotating cutter is controlled to cut the cap.
[0033] Furthermore, a bracket is fixedly installed on the side of the first sidewall away from the second sidewall;
[0034] A cylinder is mounted on the bracket, and the output end of the cylinder is fixedly connected to the push plate.
[0035] Compared with the prior art, the beneficial effects of the present invention are:
[0036] By setting up a conveyor table, baffle, pusher plate, cutting assembly, and linkage, the conveyor table transports the caps. When the caps are transported to a designated position, the baffle intercepts them, and then the pusher plate pushes them outside the conveyor table so that the cutting assembly can cut the caps and remove them. Because the conveyor table has a first side wall and a second side wall of different heights, it is set at an angle. When the cap is cut and the pusher plate is reset, the caps can be placed back on the conveyor table under gravity. Under the action of the linkage, the pusher plate is reset to a certain position and the baffle is controlled to flip to be parallel to the surface of the conveyor table. At this time, the caps can be output from the conveyor table. This realizes the integrated function of cap transport, cap removal, and cap output. The operator only needs to place the caps on the conveyor table in a specific posture to complete the processing, realizing a semi-automated assembly line operation for caps, reducing labor intensity and increasing processing speed. Attached Figure Description
[0037] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0038] Figure 1 This is a side sectional view of the automatic lead-acid battery capping cutting and processing equipment in one embodiment of the present invention;
[0039] Figure 2 For the present invention Figure 1 Sectional view at point AA;
[0040] Figure 3 For the present invention Figure 2 Enlarged view at point B in the middle;
[0041] Figure 4 This is a cross-sectional view of the cutting component of the automatic lead-acid battery capping equipment in operation according to an embodiment of the present invention;
[0042] Figure 5 This is a cross-sectional view of the lead-acid battery cap automatic cutting and processing equipment during the continued conveying of the caps after cutting, according to an embodiment of the present invention.
[0043] Figure 6 For the present invention Figure 5 Enlarged view of point C.
[0044] Icon labels:
[0045] 1. Conveyor table; 11. First side wall; 111. Opening; 12. Second side wall; 2. Baffle; 3. Push plate; 4. Cutting assembly; 41. U-shaped support frame; 42. Rotary cutter; 43. Power supply; 44. Spring plate; 441. Conductive sheet; 5. Linkage component; 51. Wedge slider; 52. Rack block; 53. Return spring; 6. Cylinder. Detailed Implementation
[0046] The technical solution of the present invention will be clearly and completely described below with reference to the embodiments. 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.
[0047] Example 1
[0048] Please see Figures 1 to 6 As shown, the first aspect of the present invention provides an automatic cutting and processing device for lead-acid battery caps, including a conveyor table 1, a baffle 2, a pusher plate 3, a cutting assembly 4, and a linkage component 5.
[0049] The conveyor table 1 has a first side wall 11 and a second side wall 12, and the height of the first side wall 11 is lower than the height of the second side wall 12, so that the cover can be placed on the conveyor table 1 at an angle, so that the cover has a downward component force under the action of gravity. Then, when the push plate 3 pushes the cover to complete the processing and resets, the cover can be reset to the conveyor table 1 along with the push plate 3 for subsequent output operations, ensuring the stability of the overall operation process.
[0050] The baffle 2 is rotatably mounted on the conveyor table 1 and can be flipped to be perpendicular or parallel to the surface of the conveyor table 1, respectively for positioning and output on the conveyor table 1.
[0051] When the baffle 2 is flipped to be perpendicular to the surface of the conveyor table 1, the baffle 2 can intercept the cap conveyed by the conveyor table 1, so that the cap is in a specific position so that the pusher plate 3 can push it, thereby cooperating with the cutting component 4 to complete the processing operation.
[0052] When the cap is finished, the cap is cut and returned to the conveyor table 1, the baffle 2 can be flipped to be parallel to the surface of the conveyor table 1 for the output of the cap.
[0053] Therefore, the positioning of the cap and the output of the cap after processing are completed by the relative positional relationship between the baffle 2 and the surface of the conveyor table 1. This enables the integrated function of cap conveying, cap processing and cap output, achieving the purpose of semi-automatic cap production line processing. Thus, the operator only needs to place the cap on the conveyor table 1 in a specific posture to complete the processing, thereby reducing labor intensity and increasing processing speed.
[0054] In this embodiment, the pusher plate 3 slides through the first sidewall 11 along the conveying direction perpendicular to the conveying table 1 to push the cap, so that the side of the cap with the rubber cap is exposed to the outside of the conveying table 1, thereby facilitating the cutting assembly 4 to process the rubber cap.
[0055] It should be noted that, in the above process, it is necessary to ensure that the side of the cover with the rubber cap is exposed to the outside of the conveyor table 1 by the push plate 3, and the rubber cap is set on the upper surface of the cover. Therefore, the cover needs to be placed vertically on the surface of the conveyor table 1 in order to ensure the subsequent processing operation. That is, the operator needs to place the cover on the conveyor table 1 in a specific posture to ensure the normal operation of the processing procedure.
[0056] The cutting component 4 is disposed on the second sidewall 12 and is used to cut the cap of the seal.
[0057] The linkage 5 is disposed inside the first side wall 11, and its two ends are movably connected to the baffle 2 and the push plate 3, respectively. When the push plate 3 retracts and returns to its original position, the linkage 5 can pull the baffle 2 to rotate until it is parallel to the surface of the conveyor table 1. That is, by using the linkage 5 as a driving element, the baffle 2 can be controlled to rotate when the push plate 3 is placed in a specific position, and the baffle 2 can remain relatively fixed when the push plate 3 pushes the cap to move, thereby ensuring the normal operation of the process.
[0058] This device comprises a conveyor table 1, a baffle 2, a pusher plate 3, a cutting assembly 4, and a linkage 5. The conveyor table 1 transports the caps. Upon reaching a designated position, the baffle 2 intercepts the cap, and the pusher plate 3 pushes the cap outside the conveyor table 1, allowing the cutting assembly 4 to cut the cap and remove it. Because the conveyor table 1 has a first sidewall 11 and a second sidewall 12 of different heights, it is tilted. This allows the cutting assembly 4 to cut the cap and remove it. When the push plate 3 is reset, the cap can be placed back on the conveyor table 1 under the action of gravity. Under the action of the linkage 5, after the push plate 3 is reset to a certain position, it can control the baffle 2 to flip to be parallel to the surface of the conveyor table 1. Therefore, the cap can be output from the conveyor table 1 at this time, which realizes the integrated function of cap conveying, cap removal and cap output. This allows the operator to complete the processing by simply placing the cap on the conveyor table 1 in a specific posture, realizing the semi-automated assembly line operation of the cap, and achieving the purpose of reducing labor intensity and increasing processing speed.
[0059] In a further embodiment, the connection relationship between the first sidewall 11, the push plate 3, and the baffle 2 is further defined to better cooperate with the linkage 5 to complete the driving operation.
[0060] Specifically, the first sidewall 11 is provided with an opening 111 for sliding of the push plate 3, and the baffle 2 is rotatably connected to the first sidewall 11 via a rotating shaft.
[0061] The linkage component 5 includes a wedge-shaped slider 51.
[0062] The wedge-shaped slider 51 is slidably mounted inside the first sidewall 11 along a direction parallel to the conveying direction of the conveying table 1, and one end with a wedge-shaped surface extends to the opening 111 and abuts against a wedge-shaped sidewall of the push plate 3, so that when the push plate 3 retracts, it can push the wedge-shaped slider 51 to slide. That is, when the push plate 3 is pressed down (i.e., moving away from the second sidewall 12), the movement of the wedge-shaped slider 51 can be controlled.
[0063] In addition, the other end of the wedge-shaped slider 51 has a rack block 52, which meshes with the rotating shaft through a gear. Therefore, when the wedge-shaped slider 51 moves, the rotation control of the rotating shaft can be completed under the action of the rack block 52 and the gear, so that the baffle 2 can be flipped to be parallel to the surface of the conveyor table 1, thereby completing the output of the sealing.
[0064] In other embodiments, in order to enable the wedge slider 51 to reset when it is not subjected to the force of the push plate 3, so that the baffle 2 is always rotated to be perpendicular to the surface of the conveyor table 1 in normal state to intercept the cover plate, thereby facilitating the push plate 3 to complete the push processing of the cover plate, the linkage 5 is further defined here.
[0065] Specifically, the linkage 5 also includes a reset spring 53, which is sleeved on the outer wall of the wedge-shaped slider 51 for resetting the wedge-shaped slider 51 and keeping the wedge-shaped slider 51 stationary when not subjected to external force.
[0066] like Figure 2 , Figure 5 and Figure 6 As shown, when the push plate 3 is in contact with the wedge slider 51 and moves away from the second side wall 12, one end of the push plate 3 presses the wedge surface of the wedge slider 51, causing the wedge slider 51 to move away from the opening 111. Under the action of the rack block 52 and the gear, the baffle 2 can be pulled to flip to be parallel to the surface of the conveyor table 1, which is used for the output of the cover.
[0067] like Figure 2 As shown, when the push plate 3 is pressed against the wedge slider 51 and moves in the direction close to the second side wall 12, the wedge slider 51 moves in the direction close to the opening 111 under the action of the reset spring 53, and under the action of the rack block 52 and the gear, it gradually pulls the baffle 2 to flip to be perpendicular to the surface of the conveyor table 1, so that after the sealing output is completed, the baffle 2 can be reset to intercept the next sealing and push in cooperation with the push plate 3.
[0068] like Figure 2 and Figure 4 As shown, when the push plate 3 is in contact with the wedge slider 51 and moves along the direction close to the second side wall 12, the wedge slider 51 remains stationary, so that the baffle 2 and the surface of the conveyor table 1 are always perpendicular to each other.
[0069] It should be noted that when the push plate 3 is in contact with the wedge slider 51, the supporting surface of the push plate 3 is flush with the first side wall 11, which ensures that the push plate 3 will not interfere with the delivery of the cap.
[0070] It should also be noted that the elastic force of the reset spring 53 is much greater than the conveying power of the conveying table 1, so as to prevent the cover from having a large impact on the baffle 2 due to excessive conveying power of the conveying table 1, which would cause a large impact between the wedge slider 51 and the push plate 3 and damage it, thus effectively extending the service life of the device.
[0071] In this embodiment, the tilt angle of the conveyor 1 (i.e., the angle formed between the conveyor 1 and the horizontal plane) is 30°-45°, so that the cover will not detach from the conveyor 1 when no external force is applied.
[0072] In a further embodiment, to better illustrate the operating principle of this device, a specific method for removing the sealing cap is also proposed, which includes the following steps:
[0073] The operator places the cap on the conveyor table 1 in a specific posture;
[0074] When the cap is conveyed to contact the baffle 2 and is blocked by the baffle 2, the pusher plate 3 moves along the direction close to the second side wall 12 to push the cap so that the cap is exposed on the outside of the conveyor table 1.
[0075] Cutting component 4 cuts and removes the cap from the sealing cap;
[0076] After the cap is cut and removed, the push plate 3 moves along the direction close to the first side wall 11, and the cap falls into the conveyor table 1 under the action of gravity.
[0077] The push plate 3 is continuously pressed down to squeeze the wedge slider 51, causing the baffle 2 to flip to be parallel to the surface of the conveyor table 1. At this time, the cap falls on the first side wall 11 and passes through the baffle 2 under the conveying power of the conveyor table 1, completing the output of the cap.
[0078] The push plate 3 moves up to be flush with the first side wall 11. Under the action of the return spring 53, the wedge slider 51 is in contact with the end of the push plate 3 (i.e., it is not subject to the squeezing force). Under the action of the rack block 52 and the gear, the baffle 2 flips back to be perpendicular to the surface of the conveyor table 1.
[0079] Repeat the steps above.
[0080] The above steps enable a semi-automated capping production line, allowing operators to place the caps in a specific posture to complete the process. This effectively reduces the labor intensity of workers and increases the processing speed.
[0081] Example 2
[0082] Based on Embodiment 1, this embodiment proposes a specific cutting component 4, which enables the cutting component 4 to operate autonomously when the cap moves to a specific position, and prevents the cutting component 4 from operating when it is in a normal state, thereby improving the overall safety of the equipment operation.
[0083] Specifically, the cutting assembly 4 includes a U-shaped support frame 41, a rotating cutter 42, a power supply 43, and a spring plate 44.
[0084] The U-shaped support frame 41 is fixedly installed on the second side wall 12, and the rotating cutter 42 is rotatably installed on the inner wall of the U-shaped support frame 41.
[0085] The power supply 43 is located inside the U-shaped support frame 41 and is connected to the drive end of the rotary cutter 42 via a wire, forming an open circuit, meaning that the rotary cutter 42 is in a non-operating state at this time.
[0086] The disconnect circuit has two conductive contacts (such as those disposed on the inner wall of the U-shaped support frame 41) Figure 2 , Figure 4 as well as Figure 5 (As indicated by the arc shape), when the two conductive contacts are connected, the rotating cutter 42 can perform rotary cutting.
[0087] The spring plate 44 is slidably installed in the cavity surrounded by the U-shaped support frame 41 and the second side wall 12.
[0088] One side of the spring plate 44 is used to abut against the rubber cap of the cover, and the other side has a conductive sheet 441 for electrically connecting with the two conductive contacts, so that a closed circuit is formed between the power supply 43, the wire and the drive end of the rotating cutter 42.
[0089] Specifically, when the pusher plate 3 pushes the cover to the outside of the conveyor table 1, the cap of the cover can apply a pushing force to the spring plate 44, so that the conductive sheet 441 is electrically connected to the two conductive contacts, and controls the rotating cutter 42 to cut the cap.
[0090] Correspondingly, when the cap is cut and detached from the cover, the cap no longer exerts a force on the spring plate 44. Therefore, the spring plate 44 resets and applies a reaction force to the cover to accelerate its fall into the conveyor table 1, thereby increasing the processing speed. Furthermore, the rotating cutter 42 can be automatically de-energized after the cap is cut and removed, thus effectively improving the safety of the device during use.
[0091] In other embodiments, a bracket is fixedly installed on the side of the first sidewall 11 away from the second sidewall 12, and a cylinder 6 is installed on the bracket. The output end of the cylinder 6 is fixedly connected to the push plate 3, that is, the movement and retraction of the push plate 3 are controlled by the cylinder 6.
[0092] The above embodiments are only used to illustrate the technical methods of the present invention and are not intended to limit it. Although the present invention has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical methods of the present invention without departing from the spirit and scope of the technical methods of the present invention.
Claims
1. An automatic cutting and processing device for lead-acid battery caps, characterized in that, It includes a conveyor (1), a baffle (2), a pusher plate (3), a cutting assembly (4), and a linkage component (5); The conveyor table (1) has a first side wall (11) and a second side wall (12), and the height of the first side wall (11) is lower than the height of the second side wall (12); The baffle (2) is rotatably mounted on the conveyor table (1) and can be flipped to be perpendicular or parallel to the surface of the conveyor table (1), respectively used for positioning and output on the conveyor table (1); The push plate (3) slides through the first sidewall (11) in a direction perpendicular to the conveying table (1) to push the cap so that the side of the cap with the rubber cap is exposed to the outside of the conveying table (1). The cutting component (4) is disposed on the second sidewall (12) and is used to cut the cap of the seal; The linkage (5) is located inside the first side wall (11), and its two ends are movably connected to the baffle (2) and the push plate (3) respectively. When the push plate (3) is reset and retracted, the linkage (5) can pull the baffle (2) to flip to be parallel to the surface of the conveyor table (1).
2. The automatic lead-acid battery capping cutting and processing equipment according to claim 1, characterized in that, An opening (111) is provided on the first sidewall (11) for sliding of the push plate (3); The baffle (2) is rotatably connected to the first side wall (11) via a rotating shaft; The linkage (5) includes a wedge-shaped slider (51); The wedge-shaped slider (51) is slidably installed inside the first side wall (11) along the conveying direction parallel to the conveying table (1), and one end with the wedge-shaped surface extends to the opening (111) and abuts against the wedge-shaped side wall of the push plate (3), so that when the push plate (3) retracts, it can push the wedge-shaped slider (51) to slide. The other end of the wedge-shaped slider (51) has a toothed block (52); The rack block (52) meshes with the rotating shaft via gears.
3. The automatic lead-acid battery capping cutting and processing equipment according to claim 2, characterized in that, The linkage (5) also includes a return spring (53); The reset spring (53) is sleeved on the outer wall of the wedge slider (51) for resetting the wedge slider (51) and keeping the wedge slider (51) stationary when not subjected to external force.
4. The automatic lead-acid battery capping cutting and processing equipment according to claim 3, characterized in that, When the push plate (3) is in contact with the wedge slider (51) and moves away from the second side wall (12), one end of the push plate (3) presses the wedge surface of the wedge slider (51), causing the wedge slider (51) to move away from the opening (111), and under the action of the rack block (52) and the gear, it can pull the baffle (2) to flip to be parallel to the surface of the conveyor table (1); When the push plate (3) is pressed against the wedge slider (51) and moves in the direction close to the second side wall (12), the wedge slider (51) moves in the direction close to the opening (111) under the action of the return spring (53), and under the action of the rack block (52) and the gear, it gradually pulls the baffle (2) to flip to be perpendicular to the surface of the conveyor table (1); When the push plate (3) is in contact with the wedge slider (51) and moves in the direction close to the second side wall (12), the wedge slider (51) remains stationary, so that the baffle (2) and the surface of the conveyor table (1) are always perpendicular to each other.
5. The automatic lead-acid battery capping cutting and processing equipment according to claim 4, characterized in that, When the push plate (3) is in contact with the wedge slider (51), the supporting surface of the push plate (3) is flush with the first side wall (11).
6. The automatic lead-acid battery capping cutting and processing equipment according to claim 3 or 4, characterized in that, The elastic force of the reset spring (53) is much greater than the conveying power of the conveyor table (1).
7. The automatic lead-acid battery capping cutting and processing equipment according to claim 1, characterized in that, The tilt angle of the conveyor table (1) is 30°-45°.
8. The automatic lead-acid battery capping cutting and processing equipment according to claim 1, characterized in that, The cutting assembly (4) includes a U-shaped support frame (41), a rotary cutter (42), a power supply (43), and a spring plate (44). The U-shaped support frame (41) is fixedly installed on the second side wall (12); The rotary cutter (42) is rotatably mounted on the inner wall of the U-shaped support frame (41); The power supply (43) is located inside the U-shaped support frame (41) and is connected to the drive end of the rotating cutter (42) via a wire, forming an open circuit; The disconnect circuit has two conductive contacts disposed on the inner wall of the U-shaped support frame (41); The spring plate (44) is slidably installed in the cavity surrounded by the U-shaped support frame (41) and the second side wall (12); One side of the spring plate (44) is used to abut against the cap of the cover, and the other side has a conductive sheet (441) for electrically connecting with the two conductive contacts, so that a closed circuit is formed between the power supply (43), the wire and the drive end of the rotary cutter (42).
9. The automatic lead-acid battery capping cutting and processing equipment according to claim 8, characterized in that, When the push plate (3) pushes the cover to the outside of the conveyor (1), the cap of the cover can apply a pushing force to the spring plate (44), so that the conductive sheet (441) is electrically connected to the two conductive contacts, and the rotating cutter (42) is controlled to cut the cap.
10. The automatic lead-acid battery capping cutting and processing equipment according to claim 1, characterized in that, A bracket is fixedly installed on the side of the first sidewall (11) away from the second sidewall (12); A cylinder (6) is mounted on the bracket, and the output end of the cylinder (6) is fixedly connected to the push plate (3).
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