Chain plate edge pressing device for motorcycle and edge pressing method thereof
By using hydraulic components and molds in a motorcycle chain plate pressing device to press the edges of the chain plates, the problem of chain plate edge cracking is solved, and automated pressing and life extension of the chain plates are achieved.
Patent Information
- Application Number
- CN202311001357.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-08-09
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2043-08-09
AI Technical Summary
When existing chain plates are not pressed at the edges, they are prone to cracking and gaps, which affects their service life and causes safety hazards.
A motorcycle chain plate pressing device, comprising a housing, a first hydraulic component, and a second hydraulic component, is used to press the edges of the chain plate by driving a hydraulic rod and a mold through a hydraulic pump. Combined with an automatic feeding and flipping mechanism, it achieves fully automated pressing.
It increases the crack resistance of the chain plate edges, extends the service life of the chain plate, and reduces manpower consumption through a fully automated process.
Smart Images

Figure CN116984549B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of motorcycle chain plate pressing equipment technology, specifically to a motorcycle chain plate pressing equipment and pressing method. Background Technology
[0002] A chain plate is a wheel with interlocking teeth for meshing with precisely pitched blocks on link links or cables. Chain plates are typically made by stamping, where the pressing process refers to the pressing edge where the interlocking line between two aluminum-plastic composite plates meets. For example, application number CN202020222702.5 discloses a roller with a pressing edge structure on a chain plate. By setting pressing edge structures on the inner and outer chain plates, the pressing edge structures are processed by special molds. During assembly, the pressing edge structures can cooperate with the face recognition structure on the assembly equipment to achieve automatic face recognition and thus automatic linking, replacing the traditional manual linking assembly method, greatly reducing workload and labor costs.
[0003] The aforementioned rollers with a pressing edge structure on the chain plate still have the following shortcomings: The device, by setting a pressing edge structure on the inner and outer chain plates, with the pressing edge structure processed by a special mold, allows for automatic face recognition during assembly, replacing the traditional manual assembly method. This significantly reduces workload and labor costs. While the pressing edge enhances the compressive strength of the chain plate, in existing technologies, the edge of the chain plate typically contacts the transmission components first during chain drive. Therefore, without pressing edge treatment, the edge of the chain plate is prone to cracking, creating gaps and reducing the chain plate's lifespan, thus posing a safety hazard. Summary of the Invention
[0004] To address the shortcomings of existing technologies, this invention provides a motorcycle chain plate edge pressing device and its edge pressing method, which solves the problem mentioned in the background technology that the edge of the chain plate is prone to cracking and gaps when the chain plate is not pressed.
[0005] To achieve the above objectives, the present invention provides the following technical solution: a motorcycle chain plate pressing device and its pressing method, comprising a housing, a first hydraulic component, and a second hydraulic component. Both the first and second hydraulic components are disposed within the inner cavity of the housing, with the first hydraulic component positioned above the second hydraulic component. Both the first and second hydraulic components are equipped with hydraulic pumps, and two sets of hydraulic pumps are provided. A first hydraulic rod is provided on the opposite side of each set of hydraulic pumps, and a second hydraulic rod is provided on the outer diameter surface of the first hydraulic rod. In the first hydraulic component, a first mold is provided at one end of both the first and second hydraulic rods, and four sets of first molds are provided. A sliding groove is provided between the first molds on the same side. In the second hydraulic component, a second mold is provided at one end of both the first and second hydraulic rods, and four sets of second molds are provided.
[0006] Optionally, a feed inlet is provided through the side of the housing, and a feed plate is provided through the feed inlet laterally. The upper surface of the feed plate has a groove, and an opening is provided at the edge of the groove. A first gear is provided at the opening, and the bottom surface of the first gear is connected to a first drive motor through a transmission rod. The first gear and the chain plate form a meshing structure, and the width of the groove is equal to the width of the chain plate.
[0007] Optionally, a first positioning barrel is provided below one end of the feeding plate, and a connecting block is provided on one side of one end of the first positioning barrel. A motor is provided inside the connecting block, and a baffle is provided at the output end of the motor. The baffle forms a rotating structure around the center of the connecting block through the motor.
[0008] Optionally, a second drive motor is provided below both the first and second hydraulic components, and a second gear is provided at the output end of the second drive motor. The second gear meshes with a third gear, and a stop is provided on one side of the third gear. A guide post is longitudinally provided on the upper surface of the stop, and two sets of guide posts are provided. The diameter of the guide post is equal to the size of the hole in the chain plate. A second positioning barrel is provided directly below the stop, and the shape and size of the inside of the first and second positioning barrels are equal to the size and shape of the chain plate.
[0009] Optionally, in the first hydraulic assembly, the first mold at one end of the first hydraulic rod and the second hydraulic rod is S-shaped, and the shape and size of the first mold are equal to the shape and size of the edge of the chain plate; in the second hydraulic assembly, the second mold at one end of the first hydraulic rod and the second hydraulic rod is C-shaped, and the shape and size of the second mold are equal to the shape and size of the edge of the chain plate.
[0010] Optionally, a collection box is provided below the second hydraulic component, and the collection box is fixed to the bottom of the housing in a detachable manner.
[0011] Optionally, the stop block is configured as a rotating structure that rotates around the center of the third gear via a second gear, a third gear, and a second drive motor.
[0012] Optionally, the first mold and the second mold form an up-and-down sliding structure through a slide groove, and both ends of the second hydraulic rod are provided with bearings, and the second hydraulic rod forms a rotating structure that rotates around the bearing center through the bearings.
[0013] Optionally, the edge pressing process is as follows:
[0014] a) The first drive motor drives the first gear to rotate. Since the first gear and the chain plate form a meshing structure, the width of the groove is equal to the width of the chain plate, thereby moving the internal chain plate with the groove on the upper surface of the feed plate.
[0015] b) When the chain plate moves to the opening of the first positioning barrel, since the shape and size of the inside of the first positioning barrel are equal to the size and shape of the chain plate, the chain plate falls freely along the inside of the first positioning barrel. Since a connecting block is provided, and a motor is provided inside the connecting block, the motor drives the baffle to rotate. Each time, the chain plate falls onto the baffle, and the chain plate engages with the guide post on the upper end of the baffle. At the same time, the hydraulic pump in the first hydraulic assembly is started. The hydraulic pump drives the first hydraulic rod and the second hydraulic rod to move and move through the slide, thereby adjusting the first mold. At the same time, the first mold performs edge pressing on the chain plate.
[0016] c) After the chain plate is pressed by the first mold, when the chain plate moves to the opening of the second positioning barrel, since the shape and size of the inside of the second positioning barrel are equal to the size and shape of the chain plate, the chain plate falls freely along the inside of the second positioning barrel and lands on the stop block. The chain plate engages with the guide post on the upper end of the stop block. At the same time, the hydraulic pump in the second hydraulic assembly is started. The hydraulic pump drives the first hydraulic rod and the second hydraulic rod to move and move through the slide groove, thereby adjusting the position of the second mold. At the same time, the chain plate is pressed by the second mold.
[0017] d) After the chain plate is pressed at the edge, the second drive motor is started. The stop block forms a rotating structure around the center of the third gear through the second gear, the third gear and the second drive motor. The stop block drives the chain plate that has been pressed at the edge by the first hydraulic component and the second hydraulic component to flip.
[0018] This invention provides a motorcycle chain plate edge pressing device and its pressing method, which has the following beneficial effects: This product uses a first hydraulic component and a second hydraulic component to press the edge of the chain plate, thereby increasing the edge crack resistance of the chain plate and increasing the service life of the chain plate during chain drive.
[0019] This device drives the first gear to rotate via the first drive motor. Since the first gear and the chain plate form a meshing structure, the width of the groove is equal to the width of the chain plate, thereby moving the internal chain plate with the groove on the upper surface of the feed plate. Through automatic feeding, this device is fully automated, thus solving the problem of time-consuming and labor-intensive pressing of the chain plate. After the chain plate is pressed, the second drive motor is started. The stop block forms a rotating structure around the center of the third gear through the second gear, the third gear, and the second drive motor. The stop block sequentially drives the chain plate pressed by the first hydraulic component and the second hydraulic component to flip, thereby facilitating the processing of the chain plate between the first hydraulic component and the second hydraulic component. Moreover, the guide post facilitates the positioning of the chain plate, thereby facilitating the pressing of the chain plate.
[0020] When the chain plate moves to the opening of the first positioning barrel, the chain plate falls freely along the inside of the first positioning barrel because the shape and size of the inside of the first positioning barrel are equal to the size and shape of the chain plate. It then lands on the guide post for edge pressing. Because a connecting block is provided, and a motor is installed inside the connecting block, the motor drives the baffle to rotate. One chain plate falls onto the baffle at a time, thus pressing the chain plate in an orderly manner and preventing multiple chain plates from falling at the same time. The chain plate engages with the guide post on the upper end of the baffle. At the same time, the hydraulic pump in the first hydraulic assembly is activated. The hydraulic pump drives the first hydraulic rod and the second hydraulic rod to move and move through the slide groove, thereby adjusting the position of the first mold. This ensures that all four sets of first molds contact the chain plate and simultaneously press the chain plate with the first mold.
[0021] After the chain plate of this device is pressed by the first mold, when the chain plate moves to the opening of the second positioning barrel, it falls freely along the inside of the second positioning barrel and lands on the stop block. The chain plate engages with the guide post on the upper end of the stop block. At the same time, the hydraulic pump in the second hydraulic assembly is activated. The hydraulic pump drives the first hydraulic rod and the second hydraulic rod to move and move through the slide groove, thereby adjusting the position of the second mold. This ensures that all four sets of second molds are in contact with the chain plate. The chain plate is pressed by the second mold. After the chain plate is pressed by the second mold, the chain plate pressed by the second hydraulic assembly is flipped by the stop block, so that the pressed chain plate falls into the collection box. Attached Figure Description
[0022] Figure 1 This is a side view of the structure of the present invention;
[0023] Figure 2 This is a front view structural diagram of the present invention;
[0024] Figure 3 This is a top view of the structure of the present invention;
[0025] Figure 4 This is a schematic diagram of the hydraulic component structure of the present invention;
[0026] Figure 5 This is a schematic diagram of the drive motor structure of the present invention;
[0027] Figure 6 This is a schematic diagram of the first mold structure of the present invention;
[0028] Figure 7 This is a schematic diagram of the second mold structure of the present invention.
[0029] In the diagram: 1. Housing; 2. First hydraulic assembly; 3. Second hydraulic assembly; 4. Hydraulic pump; 5. First hydraulic rod; 6. Second hydraulic rod; 7. First mold; 8. Slide groove; 9. Second mold; 10. Feed port; 11. Feed plate; 12. Groove; 13. First gear; 14. First drive motor; 15. First positioning barrel; 16. Connecting block; 17. Baffle; 18. Second drive motor; 19. Second gear; 20. Third gear; 21. Stop block; 22. Guide column; 23. Second positioning barrel; 24. Collection box. Detailed Implementation
[0030] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.
[0031] In the description of this invention, unless otherwise stated, "a plurality of" means two or more; the terms "upper," "lower," "left," "right," "inner," "outer," "front end," "rear end," "head," "tail," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing the invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the invention. Furthermore, the terms "first," "second," "third," etc., are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0032] In the description of this invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "connected" and "linked" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium. Those skilled in the art can understand the specific meaning of the above terms in this invention based on the specific circumstances.
[0033] Please see Figures 1 to 7This invention provides a technical solution: a motorcycle chain plate pressing device and its pressing method, comprising a housing 1, a first hydraulic assembly 2, and a second hydraulic assembly 3. Both the first hydraulic assembly 2 and the second hydraulic assembly 3 are disposed within the inner cavity of the housing 1, with the first hydraulic assembly 2 positioned above the second hydraulic assembly 3. Both the first hydraulic assembly 2 and the second hydraulic assembly 3 are equipped with hydraulic pumps 4, and two sets of hydraulic pumps 4 are respectively provided. First hydraulic rods 5 are provided on opposite sides of the two sets of hydraulic pumps 4, and second hydraulic rods 6 are provided on the outer diameter surface of the first hydraulic rods 5. A first mold 7 is provided at one end of each of the first hydraulic rods 5 and the second hydraulic rod 6 in the first hydraulic assembly 2, and four sets of first molds 7 are provided. A sliding groove is provided between the first molds 7 on the same side. 8. In the second hydraulic assembly 3, one end of the first hydraulic rod 5 and the second hydraulic rod 6 are each provided with a second mold 9, and four sets of second molds 9 are provided. A feed inlet 10 is provided through the side of the housing 1, and a feed plate 11 is provided through the feed inlet 10 laterally. A groove 12 is provided on the upper surface of the feed plate 11, and an opening is provided at the edge of the groove 12. A first gear 13 is provided at the opening. The bottom surface of the first gear 13 is connected to a first drive motor 14 through a transmission rod. The first gear 13 and the chain plate form a meshing structure. The width of the groove 12 is equal to the width of the chain plate. When the chain plate moves to the opening of the first positioning barrel 15, since the shape and size of the inside of the first positioning barrel 15 are equal to the size and shape of the chain plate, the chain plate moves along the first positioning barrel 15. The internal components of the positioning barrel 15 fall freely onto the guide post 22 for edge pressing. Due to the presence of a connecting block 16, which houses a motor, the baffle 17 rotates. One chain plate falls onto the baffle 21 at a time, thus orderly pressing the chain plates and preventing multiple chain plates from falling simultaneously. The chain plates engage with the guide post 22 on the upper surface of the baffle 21. Simultaneously, the hydraulic pump 4 in the first hydraulic assembly 2 is activated, driving the first hydraulic rod 5 and the second hydraulic rod 6 to move through the slide groove 8. This adjusts the position of the first mold 7, ensuring that all four sets of first molds 7 contact the chain plates and simultaneously press the chain plates. The chain plates pass through the first molds 7... After the edge pressing process, when the chain plate moves to the opening of the second positioning barrel 23, the chain plate falls freely along the inside of the second positioning barrel 23 and lands on the stop block 21. The chain plate engages with the guide post 22 on the upper end face of the stop block 21. At the same time, the hydraulic pump 4 in the second hydraulic assembly 3 is started. The hydraulic pump 4 drives the first hydraulic rod 5 and the second hydraulic rod 6 to move and move through the slide groove 8, thereby adjusting the position of the second mold 9 so that all four sets of second molds 9 contact the chain plate. At the same time, the chain plate is pressed by the second mold 9. After the chain plate is pressed by the second mold 9, the chain plate pressed by the second hydraulic assembly 3 is flipped by the stop block 21, so that the pressed chain plate falls into the collection box 24.
[0034] A first positioning barrel 15 is provided below one end of the feed plate 11. A connecting block 16 is provided on one side of one end of the first positioning barrel 15. A motor is provided inside the connecting block 16, and a baffle 17 is provided at the output end of the motor. The baffle 17 forms a rotating structure around the center of the connecting block 16 through the motor. A second drive motor 18 is provided below the first hydraulic component 2 and the second hydraulic component 3. A second gear 19 is provided at the output end of the second drive motor 18. The second gear 19 is meshed with a third gear 20, and a stop block 21 is provided on one side of the third gear 20. A guide post 22 is longitudinally provided on the upper end surface of the stop block 21. Two sets of guide posts 22 are provided, and the diameter of the guide post 22 is larger than the diameter of the hole of the chain plate. The first positioning barrel 23 is located directly below the stop block 21, and the shape and size of the interior of the first positioning barrel 15 and the second positioning barrel 23 are equal to the size and shape of the chain plate. The first mold 7 at one end of the first hydraulic rod 5 and the second hydraulic rod 6 in the first hydraulic assembly 2 is S-shaped, and the shape and size of the first mold 7 are equal to the shape and size of the edge of the chain plate. The second mold 9 at one end of the first hydraulic rod 5 and the second hydraulic rod 6 in the second hydraulic assembly 3 is C-shaped, and the shape and size of the second mold 9 are equal to the shape and size of the edge of the chain plate. By pressing the edge of the chain plate with the first hydraulic assembly 2 and the second hydraulic assembly 3, the edge of the chain plate is increased to enhance the crack resistance of the chain plate and increase the service life of the chain plate during chain drive.
[0035] Below the second hydraulic assembly 3, a collection box 24 is provided, and the collection box 24 is detachably fixed to the bottom of the housing 1. The stop block 21 forms a rotating structure around the center of the third gear 20 through the second gear 19, the third gear 20, and the second drive motor 18. The first mold 7 and the second mold 9 form an up-and-down sliding structure through the slide groove 8, and bearings are provided at both ends of the second hydraulic rod 6. The second hydraulic rod 6 forms a rotating structure around the center of the bearing through the bearings. The first drive motor 14 drives the first gear 13 to rotate. Since the first gear 13 forms a meshing structure with the chain plate, the width of the groove 12 is equal to the width of the chain plate, so that the feed plate 11... The internal chain plate with a groove 12 on the end face moves and is automatically fed, thus making the device fully automated. This solves the problem of time-consuming and laborious pressing of the chain plate. After the chain plate is pressed, the second drive motor 18 is started. The stop block 21 forms a rotating structure around the center of the third gear 20 through the second gear 19, the third gear 20 and the second drive motor 18. The stop block 21 drives the chain plate pressed by the first hydraulic component 2 and the second hydraulic component 3 to flip, which facilitates the processing of the chain plate between the first hydraulic component 2 and the second hydraulic component 3. Moreover, the guide post 22 facilitates the positioning of the chain plate, which facilitates the pressing of the chain plate.
[0036] The edge pressing process is as follows:
[0037] a) The first drive motor 14 drives the first gear 13 to rotate. Since the first gear 13 and the chain plate form a meshing structure, the width of the groove 12 is equal to the width of the chain plate, thereby moving the internal chain plate with the groove 12 on the upper surface of the feed plate 11.
[0038] b) When the chain plate moves to the opening of the first positioning barrel 15, since the shape and size of the inside of the first positioning barrel 15 are equal to the size and shape of the chain plate, the chain plate falls freely along the inside of the first positioning barrel 15. Since a connecting block 16 is provided, and a motor is provided inside the connecting block 16, the motor drives the baffle 17 to rotate. Each time, the chain plate falls onto the stop block 21, and the chain plate engages with the guide post 22 on the upper end face of the stop block 21. At the same time, the hydraulic pump 4 in the first hydraulic assembly 2 is started. The hydraulic pump 4 drives the first hydraulic rod 5 and the second hydraulic rod 6 to move and move through the slide 8, thereby adjusting the position of the first mold 7. At the same time, the first mold 7 performs edge pressing on the chain plate.
[0039] c) After the chain plate is pressed by the first mold 7, when the chain plate moves to the opening of the second positioning barrel 23, since the shape and size of the inside of the second positioning barrel 23 are equal to the size and shape of the chain plate, the chain plate falls freely along the inside of the second positioning barrel 23 and lands on the stop block 21. The chain plate is fitted with the guide post 22 on the upper end face of the stop block 21. At the same time, the hydraulic pump 4 in the second hydraulic assembly 3 is started. The hydraulic pump 4 drives the first hydraulic rod 5 and the second hydraulic rod 6 to move and move through the slide groove 8, thereby adjusting the second mold 9. At the same time, the chain plate is pressed by the second mold 9.
[0040] d) After the chain plate is pressed, the second drive motor 18 is started. The stop block 21 forms a rotating structure around the center of the third gear 20 through the second gear 19, the third gear 20 and the second drive motor 18. The stop block 21 drives the chain plate pressed by the first hydraulic component 2 and the second hydraulic component 3 to flip.
[0041] In summary, the first drive motor 14 first drives the first gear 13 to rotate. Since the first gear 13 and the chain plate form a meshing structure, the width of the groove 12 is equal to the width of the chain plate, thereby moving the internal chain plate with the groove 12 on the upper surface of the feed plate 11. Through automatic feeding, the device is fully automated, thus solving the problem of time-consuming and laborious pressing of the chain plate. After the chain plate is pressed, the second drive motor 18 is started. The stop block 21 forms a rotating structure around the center of the third gear 20 through the second gear 19, the third gear 20, and the second drive motor 18. The stop block 21... The chain plate, after being pressed by the first hydraulic assembly 2 and the second hydraulic assembly 3, is rotated, facilitating processing between them. The guide post 22 also helps position the chain plate, facilitating edge pressing. When the chain plate moves to the opening of the first positioning barrel 15, its internal shape and size are equal to the chain plate's size, causing it to fall freely along the barrel and onto the guide post 22 for edge pressing. Furthermore, a connecting block 16, containing a motor, drives the baffle 17 to rotate. As the chain plate moves, one plate falls onto the stop block 21 at a time, thus orderly pressing the chain plates to prevent multiple plates from falling simultaneously. The chain plates engage with the guide posts 22 on the upper surface of the stop block 21. Simultaneously, the hydraulic pump 4 in the first hydraulic assembly 2 is activated, driving the first hydraulic rod 5 and the second hydraulic rod 6 to move through the slide groove 8. This adjusts the position of the first mold 7, ensuring all four sets of first molds 7 contact the chain plates and simultaneously press the chain plates. After pressing by the first molds 7, when the chain plate moves to the opening of the second positioning barrel 23, it moves along the second positioning barrel 23... The chain plate falls freely inside the bucket 23 and lands on the stop block 21. The chain plate engages with the guide post 22 on the upper end of the stop block 21. At the same time, the hydraulic pump 4 in the second hydraulic assembly 3 is activated. The hydraulic pump 4 drives the first hydraulic rod 5 and the second hydraulic rod 6 to move and move through the slide groove 8, thereby adjusting the position of the second mold 9 so that all four sets of second molds 9 are in contact with the chain plate. At the same time, the second mold 9 performs edge pressing treatment on the chain plate. After the second mold 9 performs edge pressing treatment on the chain plate, the chain plate pressed by the second hydraulic assembly 3 is flipped by the stop block 21, so that the pressed chain plate falls into the collection box 24.
[0042] The edge pressing process is as follows:
[0043] a) The first drive motor 14 drives the first gear 13 to rotate. Since the first gear 13 and the chain plate form a meshing structure, the width of the groove 12 is equal to the width of the chain plate, thereby moving the internal chain plate with the groove 12 on the upper surface of the feed plate 11.
[0044] b) When the chain plate moves to the opening of the first positioning barrel 15, since the shape and size of the inside of the first positioning barrel 15 are equal to the size and shape of the chain plate, the chain plate falls freely along the inside of the first positioning barrel 15. Since a connecting block 16 is provided, and a motor is provided inside the connecting block 16, the motor drives the baffle 17 to rotate. Each time, the chain plate falls onto the stop block 21, and the chain plate engages with the guide post 22 on the upper end face of the stop block 21. At the same time, the hydraulic pump 4 in the first hydraulic assembly 2 is started. The hydraulic pump 4 drives the first hydraulic rod 5 and the second hydraulic rod 6 to move and move through the slide 8, thereby adjusting the position of the first mold 7. At the same time, the first mold 7 performs edge pressing on the chain plate.
[0045] c) After the chain plate is pressed by the first mold 7, when the chain plate moves to the opening of the second positioning barrel 23, since the shape and size of the inside of the second positioning barrel 23 are equal to the size and shape of the chain plate, the chain plate falls freely along the inside of the second positioning barrel 23 and lands on the stop block 21. The chain plate is fitted with the guide post 22 on the upper end face of the stop block 21. At the same time, the hydraulic pump 4 in the second hydraulic assembly 3 is started. The hydraulic pump 4 drives the first hydraulic rod 5 and the second hydraulic rod 6 to move and move through the slide groove 8, thereby adjusting the second mold 9. At the same time, the chain plate is pressed by the second mold 9.
[0046] d) After the chain plate is pressed, the second drive motor 18 is started. The stop block 21 forms a rotating structure around the center of the third gear 20 through the second gear 19, the third gear 20 and the second drive motor 18. The stop block 21 drives the chain plate pressed by the first hydraulic component 2 and the second hydraulic component 3 to flip.
[0047] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. A motorcycle chain plate pressing device, comprising a housing (1), a first hydraulic assembly (2), and a second hydraulic assembly (3), characterized in that: The first hydraulic assembly (2) and the second hydraulic assembly (3) are both disposed in the inner cavity of the housing (1), and the first hydraulic assembly (2) is disposed above the second hydraulic assembly (3). Both the first hydraulic assembly (2) and the second hydraulic assembly (3) are provided with hydraulic pumps (4), and two sets of hydraulic pumps (4) are respectively provided. A first hydraulic rod (5) is provided on the opposite side of the two sets of hydraulic pumps (4), and a second hydraulic rod (6) is provided on the outer diameter surface of the first hydraulic rod (5). The first hydraulic rod (5) and the second hydraulic rod (6) in the first hydraulic assembly (2) are respectively provided with hydraulic pumps (4). One end of each hydraulic rod (6) is provided with a first mold (7), and four sets of the first molds (7) are provided. A groove (8) is provided between the first molds (7) on the same side. In the second hydraulic assembly (3), one end of each of the first hydraulic rod (5) and the second hydraulic rod (6) is provided with a second mold (9), and four sets of the second molds (9) are provided. A second drive motor (18) is provided below each of the first hydraulic assembly (2) and the second hydraulic assembly (3), and a second gear (19) is provided at the output end of the second drive motor (18). The second gear (19) is meshed with the third gear (20), and a stop (21) is provided on one side of the third gear (20). A guide post (22) is longitudinally provided on the upper end face of the stop (21), and two sets of guide posts (22) are provided. The diameter of the guide post (22) is equal to the size of the hole of the chain plate. A second positioning barrel (23) is provided directly below the stop (21), and the shape and size of the inside of the first positioning barrel (15) and the second positioning barrel (23) are equal to the size and shape of the chain plate. The first hydraulic component (2) contains a first hydraulic fluid. The first mold (7) at one end of the pressure rod (5) and the second hydraulic rod (6) is S-shaped, and the shape and size of the first mold (7) are equal to the shape and size of the edge of the chain plate. The second mold (9) at one end of the first hydraulic rod (5) and the second hydraulic rod (6) in the second hydraulic assembly (3) is C-shaped, and the shape and size of the second mold (9) are equal to the shape and size of the edge of the chain plate. The stop block (21) forms a rotating structure around the center of the third gear (20) through the second gear (19), the third gear (20) and the second drive motor (18).
2. The motorcycle chain plate pressing device according to claim 1, characterized in that: The side of the housing (1) is provided with a feed port (10), and a feed plate (11) is provided through the feed port (10). The upper surface of the feed plate (11) is provided with a groove (12), and an opening is provided at the edge of the groove (12). A first gear (13) is provided at the opening. The bottom surface of the first gear (13) is connected to a first drive motor (14) through a transmission rod. The first gear (13) and the chain plate form a meshing structure. The width of the groove (12) is equal to the width of the chain plate.
3. The motorcycle chain plate pressing device according to claim 2, characterized in that: A first positioning barrel (15) is provided below one end of the feed plate (11), and a connecting block (16) is provided on one side of one end of the first positioning barrel (15). A motor is provided inside the connecting block (16), and a baffle (17) is provided at the output end of the motor. The baffle (17) forms a rotating structure around the center of the connecting block (16) through the motor.
4. The motorcycle chain plate pressing device according to claim 1, characterized in that: A collection box (24) is provided below the second hydraulic component (3), and the collection box (24) is fixed to the bottom of the housing (1) in a detachable manner.
5. The motorcycle chain plate pressing device according to claim 1, characterized in that: The first mold (7) and the second mold (9) form an up-and-down sliding structure through the slide groove (8), and both ends of the second hydraulic rod (6) are provided with bearings. The second hydraulic rod (6) forms a rotating structure around the bearing center through the bearings.
6. The pressing method of a motorcycle chain plate pressing device according to any one of claims 1-5, characterized in that: The edge pressing process is as follows: a) The first drive motor (14) drives the first gear (13) to rotate. Since the first gear (13) and the chain plate form a meshing structure, the width of the groove (12) is equal to the width of the chain plate, thereby moving the internal chain plate with the groove (12) on the upper surface of the feed plate (11). b) When the chain plate moves to the opening of the first positioning barrel (15), since the shape and size of the inside of the first positioning barrel (15) are equal to the size and shape of the chain plate, the chain plate falls freely along the inside of the first positioning barrel (15). Since a connecting block (16) is provided, and a motor is provided inside the connecting block (16), the motor drives the baffle (17) to rotate. Each time, the chain plate falls onto the baffle (21), and the chain plate engages with the guide post (22) on the upper end face of the baffle (21). At the same time, the hydraulic pump (4) in the first hydraulic assembly (2) is started. The hydraulic pump (4) drives the first hydraulic rod (5) and the second hydraulic rod (6) to move and move through the slide (8), thereby adjusting the first mold (7). At the same time, the first mold (7) performs edge pressing on the chain plate. c) After the chain plate is pressed by the first mold (7), when the chain plate moves to the opening of the second positioning barrel (23), since the shape and size inside the second positioning barrel (23) are equal to the size and shape of the chain plate, the chain plate falls freely along the inside of the second positioning barrel (23), and the chain plate falls onto the stop block (21). The chain plate and the guide post (22) on the upper end face of the stop block (21) are engaged. At the same time, the hydraulic pump (4) in the second hydraulic assembly (3) is started. The hydraulic pump (4) drives the first hydraulic rod (5) and the second hydraulic rod (6) to move and move through the slide groove (8), thereby adjusting the second mold (9). At the same time, the chain plate is pressed by the second mold (9). d) After the chain plate is pressed, the second drive motor (18) is started. The stop block (21) forms a rotating structure around the center of the third gear (20) through the second gear (19), the third gear (20) and the second drive motor (18). The stop block (21) drives the chain plate pressed by the first hydraulic component (2) and the second hydraulic component (3) to flip.
Citation Information
Patent Citations
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