Electric drive type double-vibration-disc rivet machine
By introducing L-shaped limit blocks and guide column limit structures into the double-vibrating disk nailing machine, combined with cylinder and motor drive, the problem of position deviation between the mother buckle and the sub-buckle during the riveting process is solved, and product quality and production efficiency are improved.
Patent Information
- Application Number
- CN202422721634.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-08
- Publication Date
- 2025-09-16
- Estimated Expiration
- 2034-11-08
AI Technical Summary
The existing double-vibration plate nailing machine lacks an effective limiting structure during the riveting process, which causes the position of the mother buckle or the sub-button to easily deviate, resulting in damage to the button and reduced product quality, affecting production efficiency.
An electric-driven double-vibration plate nailing machine is used. By setting L-shaped limit blocks and guide column limit structures on the workbench, combined with cylinder and motor drive, precise positioning and buffer limit of the mother buckle and the sub-button can be achieved, ensuring the accuracy of the riveting process and the integrity of the button.
It effectively avoids the position deviation of the mother buckle and the sub-button during the riveting process, improves product quality and production efficiency, reduces the risk of button damage, and achieves efficient button riveting.
Smart Images

Figure CN223339369U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of nail driving machines, in particular to an electric-driven double-vibration disk nail driving machine. Background Art
[0002] The existing double-vibrating disk nailing machine forms a mother-child buckle by impacting the child buckle and the mother buckle. The nailing machine has a structure separated into upper and lower parts, that is, the buttons are riveted by pushing the upper part or the lower part.
[0003] However, during the riveting process, if the upper or lower part does not have a good limiting structure, the position of the mother buckle or the sub-buckle is prone to deviation, which may cause damage and deformation of the buckle due to lack of calibration during the pressing process. The riveted product will also be affected, seriously affecting the product quality and production efficiency. Utility Model Content
[0004] In view of the shortcomings of the existing technology, the utility model provides an electric drive double vibrating disc nailing machine. The specific technical solution is as follows:
[0005] An electrically driven double-vibration disk nailing machine includes a workbench, a sub-button feeding structure, a mother port feeding structure, a sub-button pushing structure and a mother button pushing structure. The sub-button pushing structure is used to guide the sub-buttons placed on the sub-button feeding structure downward onto the workbench. The mother button feeding structure includes a second flow channel extending along a first direction. The mother button placed on the second flow channel is pushed axially onto the workbench through the mother button feeding structure. The workbench is provided with two groups of L-shaped limit blocks that move toward or away from each other in the second direction. A movable limit space for limiting the mother button is formed between the L-shaped limit block, the workbench and the second flow channel.
[0006] As an improvement of the above technical solution: the sub-button feeding structure includes a fixed connecting block located above the workbench and a first flow channel extending in the second direction, and the fixed connecting block is rotatably connected to a flap via a spring return shaft, and the flap is provided with a material clamping groove adapted to the sub-button.
[0007] As an improvement of the above technical solution: the sub-buckle pushing structure includes a push rod, a driving motor, a circular plate, a first movable block, a second movable block and a guide rail, the circular plate is connected to the output shaft of the driving motor, the first movable block is rotatably connected to the eccentric point of the circular plate, one end of the first movable block is rotatably connected to the circular plate, the other end of the first movable block is rotatably connected to one end of the second movable block, the other end of the second movable block is connected to the push rod, the second movable block slides in a third direction on the guide rail, and the bottom of the push rod has a recessed groove adapted to the sub-buckle.
[0008] As an improvement of the above technical solution: the female buckle pushing structure includes a first cylinder and a horizontal push rod, the output of the first cylinder is connected to the horizontal push rod through a connecting block, and the horizontal push rod is slidably connected in the second flow channel.
[0009] As an improvement to the above technical solution: a bottom block is provided under the workbench, the bottom end of the guide column is inserted into the bottom block, the top end of the guide column slides through the workbench, the cross-sectional area of the guide column is I-shaped and is coaxial with the movable limiting space, and the surface of the guide column is sleeved with a spring.
[0010] As an improvement of the above technical solution: it also includes a mounting frame, and the driving motor, guide rail, fixed connection block, workbench, first cylinder and bottom block are installed on the mounting frame.
[0011] As an improvement to the above technical solution: it also includes a second cylinder installed on the mounting bracket, and the output rod of the second cylinder drives the L-shaped limit block to move in the second direction.
[0012] Beneficial effects of the utility model:
[0013] 1. When using this application, first place the sub-button and the mother button on the existing vibration plate next to it, turn on the corresponding machine, and place the sub-button on the first flow channel by rotating the plate, and place the mother button on the second flow channel. The sub-button close to the flap on the first flow channel will enter the card slot, and the horizontal push rod is pushed by running the first cylinder to let the horizontal push rod push the mother button to the top of the workbench, and then the two L-shaped limit blocks are moved toward each other to limit the surrounding side of the mother button, and then the drive motor is run to connect the recessed groove of the push rod with the sub-button, drive the sub-button to punch open the flap, and let the sub-button and the mother button be accurately aligned to complete the riveting of the sub-button and the mother button to avoid position deviation during riveting and affect the overall processing quality of the button.
[0014] 2. When the push rod moves downward to rivet the sub-button and the box buckle, the box buckle is located above the guide post, and the box buckle will be forced to push the guide post downward. When the sub-button and the box buckle are riveted together, the box buckle can also slowly move downward for a certain distance to avoid the rigidity of the bottom end of the box buckle hitting the workbench when the sub-button and the box buckle are riveted, causing damage to the box buckle or the sub-button. When the riveting of the sub-button and the box buckle is completed, the box buckle will be reset by the elastic force of the spring, which is convenient for cutting the buttons and saves time and effort. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 The overall structure of the utility model is shown in FIG. Figure 1 ;
[0016] Figure 2 The overall structure of the utility model is shown in FIG. Figure 2 ;
[0017] Figure 3 The overall structure of the utility model is shown in FIG. Figure 3 ;
[0018] Figure 4 for Figure 3 Schematic diagram of the enlarged structure at point A in the middle.
[0019] Figure numerals: 1. Mounting frame; 100. Movable limiting space; 2. Buckle feeding structure; 3. Buckle pushing structure; 30. Push rod; 31. Driving motor; 32. Circular plate; 33. First movable block; 34. Second movable block; 35. Guide rail; 4. Push rod; 5. First cylinder; 61. L-shaped limiting block; 62. Guide column; 63. Spring; 64. Bottom block; 7. First flow channel; 8. Fixed connecting block; 81. Flip plate; 82. Material trough; 9. Second flow channel; 11. Workbench. DETAILED DESCRIPTION
[0020] In order to make the purpose, technical solutions and advantages of the present invention more clearly understood, the present invention is further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not intended to limit the present invention.
[0021] Example
[0022] Please refer to Figure 1-Figure 4 , an electric-driven double-vibration disk nailing machine, comprising a workbench 11, a sub-button feeding structure 2, a mother-mouth feeding structure, a sub-button pushing structure 3 and a mother-button pushing structure, the sub-button pushing structure 3 is used to guide the sub-button placed on the sub-button feeding structure 2 downward onto the workbench 11, the mother-button feeding structure comprises a second flow channel 9 extending along a first direction, and the mother-button placed on the second flow channel 9 is pushed axially onto the workbench 11 through the mother-button feeding structure, and the workbench 11 is provided with two groups of L-shaped limit blocks 61 that move toward or away from each other in the second direction, and a movable limit space 100 for limiting the mother-button is formed between the L-shaped limit block 61, the workbench 11 and the second flow channel 9. Specifically, the first direction is Figure 2 、 3 Or the X direction shown in 4 corresponds to the left and right direction, and the second direction is Figure 2 、 3 Or the Y direction shown in 4 corresponds to the front and back direction, and the third direction is Figure 2 、 3 Or the Z direction shown in 4 corresponds to the up and down direction.
[0023] In an optional embodiment: Figure 1 and Figure 4As shown, the sub-button feeding structure 2 includes a fixed connection block 8 located above the workbench 11 and a first flow channel 7 extending in the second direction. The fixed connection block 8 is rotatably connected to a flap 81 via a spring reset shaft. The flap 81 is provided with a material clamping groove 82 adapted to the sub-button. Specifically, the spring reset shaft is mainly composed of a shaft, an elastic body such as a spring, and a support member connected to the flap 81. When the flap 81 is rotated by an external force, the spring deforms and stores energy. When the external force disappears, the elastic force of the spring is released, pushing the flap 81 back to its original position, thereby realizing the reset function of the flap 81. The spring reset shaft structure is a prior art, so this application will not go into details. When the flap 81 is reset, it is flush with the first flow channel 7.
[0024] In an optional embodiment: Figure 2 As shown, the sub-buckle pushing structure 3 includes a push rod 30, a driving motor 31, a circular plate 32, a first movable block 33, a second movable block 34 and a guide rail 35. The circular plate 32 is connected to the output shaft of the driving motor 31, and the first movable block 33 is rotatably connected to the eccentric point of the circular plate 32. One end of the first movable block 33 is rotatably connected to the circular plate 32, and the other end of the first movable block 33 is rotatably connected to one end of the second movable block 34. The other end of the second movable block 34 is connected to the push rod 30, and the second movable block 34 slides toward the third direction on the guide rail 35, so that by starting the driving motor 31, the circular plate 32 can be rotated, and then the push rod 30 can be driven to move toward the third direction through the cooperation of the first movable block 33 and the second movable block 34. The bottom of the push rod 30 has a recessed groove adapted to the sub-buckle.
[0025] In an optional embodiment: the female buckle pushing structure includes a first cylinder 5 and a horizontal push rod 4, the output of the first cylinder 5 is connected to the horizontal push rod 4 through a connecting block, and the horizontal push rod 4 is slidably connected in the second flow channel 9.
[0026] In an optional embodiment: a bottom block 64 is provided under the workbench 11, and the bottom end of the guide column 62 is inserted into the bottom block 64, and the top end of the guide column 62 slides through the workbench 11. The cross-sectional area of the guide column 62 is I-shaped and is coaxial with the movable limit space 100. The surface of the guide column 62 is sleeved with a spring 63. When the push rod 30 moves downward to rivet the sub-button and the mother button, the mother button is located above the guide column 62, and the mother button will be forced to push the guide column 62 downward. When the sub-button and the mother button are riveted together, the mother button can also slowly move downward for a certain displacement to avoid the rigidity of the displacement of the bottom end of the mother button from contacting the workbench 11 when the sub-button and the mother button are riveted, causing damage to the mother button or the sub-button. When the riveting of the sub-button and the mother button is completed, the mother button will be reset by the elastic force of the spring 63, which is convenient for cutting the buttons and saves time and effort.
[0027] In an optional embodiment, a mounting frame 1 is further included, and the drive motor 31 , the guide rail 35 , the fixed connection block 8 , the workbench 11 , the first cylinder 5 and the bottom block 64 are installed on the mounting frame 1 .
[0028] In an optional embodiment: it also includes a second cylinder (not shown) installed on the mounting bracket 1, and the output rod of the second cylinder drives the L-shaped limit block 61 to move in the second direction, so that the second cylinder can drive the two L-shaped limit blocks 61 to move toward or away from each other.
[0029] Specifically, when using the present application, first place the sub-button and the mother button on the existing vibration plate next to it, turn on the corresponding machine, and place the sub-button on the first flow channel 7 and the mother button on the second flow channel 9 by rotating the plate. The sub-button near the flap 81 on the first flow channel 7 will enter the clamping groove 82, and the horizontal push rod 4 is pushed by running the first cylinder 5 to allow the horizontal push rod 4 to push the mother button to the top of the workbench 11, and then the two L-shaped limit blocks 61 are moved toward each other to limit the surrounding side of the mother button, and then the drive motor 31 is run to connect the recessed groove of the push rod 30 with the sub-button, drive the sub-button to punch open the flap 81, and accurately align the sub-button with the mother button to complete the riveting of the sub-button and the mother button to avoid position deviation during riveting and affect the overall processing quality of the button.
[0030] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent replacements and improvements made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. Electric drive double vibrating disc nailing machine, characterized by: The invention comprises a workbench (11), a sub-button feeding structure (2), a mother-button feeding structure, a sub-button pushing structure (3) and a mother-button pushing structure, wherein the sub-button pushing structure (3) is used to guide the sub-button placed on the sub-button feeding structure (2) downward onto the workbench (11), the mother-button feeding structure comprises a second flow channel (9) extending along a first direction, and the mother-button placed on the second flow channel (9) is pushed axially onto the workbench (11) through the mother-button feeding structure, and the workbench (11) is provided with two groups of L-shaped limit blocks (61) that move toward or away from each other in the second direction, and a movable limit space (100) for limiting the mother-button is formed between the L-shaped limit blocks (61), the workbench (11) and the second flow channel (9).
2. The electrically driven double-vibrating plate nailing machine according to claim 1, characterized in that: The buckle feeding structure (2) comprises a fixed connection block (8) located above the workbench (11) and a first flow channel (7) extending in a second direction, wherein the fixed connection block (8) is rotatably connected to a flap (81) via a spring return shaft, and the flap (81) is provided with a material clamping groove (82) adapted to the buckle.
3. The electrically driven double-vibrating plate nailing machine according to claim 2, characterized in that: The sub-buckle pushing structure (3) comprises a push rod (30), a driving motor (31), a circular plate (32), a first movable block (33), a second movable block (34) and a guide rail (35); the circular plate (32) is connected to the output shaft of the driving motor (31); the first movable block (33) is rotatably connected to the eccentric point of the circular plate (32); one end of the first movable block (33) is rotatably connected to the circular plate (32); the other end of the first movable block (33) is rotatably connected to one end of the second movable block (34); the other end of the second movable block (34) is connected to the push rod (30); the second movable block (34) slides toward a third direction on the guide rail (35); and the bottom of the push rod (30) has a recessed groove adapted to the sub-buckle.
4. The electrically driven double-vibrating plate nailing machine according to claim 3, characterized in that: The female buckle pushing structure comprises a first cylinder (5) and a transverse push rod (4); the output of the first cylinder (5) is connected to the transverse push rod (4) through a connecting block; and the transverse push rod (4) is slidably connected in a second flow channel (9).
5. The electrically driven double-vibrating plate nailing machine according to claim 4, characterized in that: A bottom block (64) is provided below the workbench (11), the bottom end of a guide column (62) is inserted into the bottom block (64), the top end of the guide column (62) slides through the workbench (11), the cross-section of the guide column (62) is in an I-shaped configuration and is coaxially arranged with the movable limiting space (100), and a spring (63) is sleeved on the surface of the guide column (62).
6. The electrically driven double-vibrating plate nailing machine according to claim 5, characterized in that: It also includes a mounting frame (1), on which the drive motor (31), the guide rail (35), the fixed connection block (8), the workbench (11), the first cylinder (5) and the bottom block (64) are mounted.
7. The electrically driven double-vibrating plate nailing machine according to claim 6, characterized in that: It also includes a second cylinder installed on the mounting frame (1), and the output rod of the second cylinder drives the L-shaped limit block (61) to move in the second direction.