Carrier tape forming machine structure with adjustable caulking groove
The adjustable carrier tape forming machine structure solves the problem of insufficient adjustability and adaptability of the carrier tape groove, realizes flexible movement and rotation of the blade, meets diverse processing needs, and improves processing accuracy and equipment practicality.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-28
- Publication Date
- 2026-03-31
AI Technical Summary
Existing carrier tape forming machines suffer from insufficient adjustability and adaptability of the carrier tape groove in their design. They cannot flexibly adjust the position of the blade slot, resulting in the inability to cut irregular holes and meet diverse processing needs.
The machine adopts a slot-adjustable carrier tape forming machine structure. Through the cooperation of the moving mechanism and the limiting mechanism, the blade can move and rotate flexibly to adapt to carrier tapes of different widths and cut out the slots that match electronic components.
It improves the processing accuracy and flexibility of the carrier tape forming machine, enabling it to cut out indentations that match irregular electronic components, meeting diverse processing needs and increasing the practicality of the equipment.
Smart Images

Figure CN224059898U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of carrier tape forming machine technology, and in particular to a carrier tape forming machine structure with adjustable groove. Background Technology
[0002] A carrier tape forming machine is a device used to produce packaging materials for electronic components. It is mainly used to load electronic components into carrier tapes to facilitate subsequent automated placement and transportation. As a common form of electronic component packaging, carrier tapes are widely used because they facilitate automated placement, transportation and storage. However, existing carrier tape forming machines have some design shortcomings, especially in terms of the adjustability and adaptability of the carrier tape groove. Therefore, a carrier tape forming machine structure with adjustable grooves is needed.
[0003] The design of traditional carrier tape forming machines often makes it difficult to adjust the position of the lower pressure plate, making it impossible to effectively adapt to carrier tape materials of different specifications and shapes. This limits the machine's adaptability when facing diverse product demands. This structural defect also means that the position of the blade slot cannot be flexibly adjusted, thus increasing the limitations of the equipment. The blades of traditional carrier tape forming machines are usually in a fixed state and cannot rotate. Cutting can only be done in a fixed direction, making it impossible to cut irregular holes, which makes it impossible to meet diverse processing needs and reduces the practicality of the device. Utility Model Content
[0004] The purpose of this invention is to address the shortcomings of existing technologies by proposing a slotted adjustable carrier tape forming machine structure.
[0005] To achieve the above objectives, the present invention adopts the following technical solution:
[0006] A slotted adjustable carrier tape forming machine structure includes an operating table. A base is mounted on one top end of the operating table. First moving mechanisms for moving the base are symmetrically arranged on both sides of the top of the operating table. An L-shaped plate is mounted on the top of the base. A second moving mechanism for moving the L-shaped plate is also mounted on the top of the base. A hydraulic push rod is fixed to one top end inside the L-shaped plate. A circular seat is fixed to the output end of the hydraulic push rod. A first rotating shaft is rotatably connected to the bottom center of the circular seat. A disc is fixed to the bottom end of the first rotating shaft. A rotating mechanism for rotating the first rotating shaft is mounted on the top of the circular seat. A blade is fixed to the bottom center of the disc. Sleeves are mounted on the other top end of the operating table. Support plates are fixed to both ends of the two sleeves, and all four support plates are connected to the operating mechanism. The platform is fixed, and two annular seats are symmetrically fitted on the outer walls of the two sleeves. A third moving mechanism for moving the two annular seats is provided inside each of the two sleeves. A limiting mechanism for restricting the two annular seats is provided on the outer walls of both sleeves. During use, the third moving mechanism, in conjunction with the limiting mechanism, allows the two annular seats to move closer or further apart, accommodating carrier tapes of different widths. This effectively prevents carrier tape offset, thereby improving processing accuracy and ensuring the accuracy of the insertion position. The first moving mechanism drives the base to move, and the second moving mechanism drives the L-shaped plate to move, enabling the blade to move left and right and back and forth on the top of the operating table. This allows for insertion processing of the carrier tape at different positions, increasing the flexibility of the equipment.
[0007] Preferably, the limiting mechanism includes two protrusions, which are symmetrically fixed to the outer wall of one of the sleeves. Each of the inner walls of the two annular seats has two grooves. The four grooves are paired and adapted to the two protrusions respectively. The two protrusions and four grooves limit the two annular seats, preventing them from rotating and ensuring that they can move relative to each other.
[0008] Preferably, the third moving mechanism includes a bidirectional lead screw, which is rotatably connected inside one of the sleeves. Two third lead screw nuts are symmetrically slidably connected to the inner sidewall of one of the sleeves, and both third lead screw nuts are adapted to the bidirectional lead screw. A second sliding groove is formed on the outer sidewall of one of the sleeves, and the second sliding groove communicates with the sleeve. Two connecting rods are arranged inside the second sliding groove. One end of the two connecting rods is fixed to the outer sidewall of the two third lead screw nuts, and the other end of the two connecting rods is fixed to the inner sidewall of the two annular seats. A third motor is fixed to the outer sidewall of one of the support plates, and the output shaft of the third motor is fixed to the bidirectional lead screw, driving the third motor to rotate the bidirectional lead screw. With the second sliding groove, the two bidirectional lead screws, and the two connecting rods, the two annular seats are moved closer or further apart by the constraints of the two protrusions and four grooves. In this way, the two annular seats can restrict the two sides of the carrier belt of different widths to prevent it from shifting and improve the processing accuracy.
[0009] Preferably, the first moving mechanism includes a first slide groove, which is formed on one side of the top of the operating table. A first lead screw is rotatably connected to the inner wall of the first slide groove, and a first lead screw nut is slidably connected to the inner wall of the first slide groove. The first lead screw nut is sleeved on the side wall of the first lead screw, and the first lead screw nut and the first lead screw are adapted to each other. The first lead screw nut is fixed to the base. A first motor is fixed to one end of the operating table, and the output shaft of the first motor is fixed to the first lead screw. The second moving mechanism includes two support plates, which are respectively fixed to the top two ends of the base. The same slide rod is fixed to the inner wall of the two support plates. The same second lead screw is rotatably connected to the inner wall of the two support plates, and the second lead screw and the slide rod are arranged in parallel. The same second lead screw nut is sleeved on the side wall of the second lead screw and the slide rod. The lead screw nut and the second lead screw are adapted to each other, and the second lead screw nut and the L-shaped plate are fixed. A second motor is fixed to the outer wall of one of the support plates, and the output shaft of the second motor is fixed to the second lead screw. The two first motors drive the two first lead screws to rotate simultaneously. With the help of the two first slides and the two first lead screw nuts, the base moves left and right along the top of the operating table, thereby moving the L-shaped plate and realizing the left and right movement of the blade. When the power switch of the second motor is turned on, the second motor drives the second lead screw to rotate. With the help of the slide and the second lead screw nut, the L-shaped plate moves back and forth along the top of the operating table, thereby moving the blade back and forth. The hydraulic push rod, in conjunction with the circular seat and the disc, drives the blade to move downward. In this way, the carrier belt can be holed at different positions, and the position of the blade slot can be flexibly adjusted, thereby increasing the flexibility of the equipment.
[0010] Preferably, the rotating mechanism includes a first gear sleeved on the side wall of a first rotating shaft. A second rotating shaft is rotatably connected to the bottom of the circular seat. A second gear is sleeved on the side wall of the second rotating shaft, and the second gear meshes with the first gear. A fourth motor is fixed to the top of the circular seat, and the output shaft of the fourth motor is fixed to the second rotating shaft. When it is necessary to cut out matching recesses for irregularly shaped electronic components, the power switch of the fourth motor is turned on, driving the fourth motor to rotate the second rotating shaft. This, in conjunction with the second gear and the first rotating shaft, drives the disc to rotate, thereby rotating the blade. The cutting angle of the blade is rotated, and after multiple operations, matching recesses can be cut out. This can meet diverse processing needs and improve the practicality of the device.
[0011] The beneficial effects of this utility model are as follows:
[0012] 1. During use, the third moving mechanism, in conjunction with the limiting mechanism, allows the two annular seats to move closer or further apart, accommodating carrier belts of different widths. This effectively prevents carrier belt deviation, thereby improving processing accuracy and ensuring the accuracy of the insertion position.
[0013] 2. By moving the base through the first moving mechanism and moving the L-shaped plate through the second moving mechanism, the blade can move left and right and forward and backward on the top of the operating table. This allows for the insertion of holes in the carrier tape at different positions, thereby increasing the flexibility of the equipment.
[0014] 3. By rotating the disc through the rotating mechanism, the cutting angle of the blade can be adjusted to meet the loading requirements of irregular electronic components, thus increasing the equipment's diversified processing capabilities. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the structure of a slotted adjustable carrier tape forming machine proposed in this utility model;
[0016] Figure 2 This is a schematic diagram of the first moving mechanism of a slotted adjustable carrier tape forming machine structure proposed in this utility model;
[0017] Figure 3 This is a schematic diagram of the second moving mechanism of a slotted adjustable carrier tape forming machine structure proposed in this utility model;
[0018] Figure 4 This is a cross-sectional schematic diagram of the circular base and disc of a slotted adjustable carrier tape forming machine structure proposed in this utility model.
[0019] Figure 5 This is a schematic diagram of the sleeve and annular seat of a slotted adjustable carrier tape forming machine structure proposed in this utility model;
[0020] Figure 6 The exploded view shows the sleeve, annular seat, bidirectional lead screw, third lead screw nut, and connecting rod of the slotted adjustable carrier tape forming machine structure proposed in this utility model.
[0021] In the diagram: 1. Operating platform; 2. Base; 3. L-shaped plate; 4. First slide groove; 5. First motor; 6. Support plate; 7. Hydraulic push rod; 8. Support plate; 9. First lead screw; 10. First lead screw nut; 11. Second lead screw; 12. Slide rod; 13. Second lead screw nut; 14. Second motor; 15. Circular seat; 16. Disc; 17. Blade; 18. Fourth motor; 19. First rotating shaft; 20. First gear; 21. Second rotating shaft; 22. Second gear; 23. Sleeve; 24. Second slide groove; 25. Annular seat; 26. Protrusion; 27. Third motor; 28. Groove; 29. Bidirectional lead screw; 30. Third lead screw nut; 31. Connecting rod. Detailed Implementation
[0022] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.
[0023] Reference Figure 1 - Figure 6A slotted adjustable carrier tape forming machine structure includes an operating table 1. A base 2 is mounted on one top end of the operating table 1. First moving mechanisms for moving the base 2 are symmetrically mounted on both sides of the top of the operating table 1. An L-shaped plate 3 is mounted on the top of the base 2. A second moving mechanism for moving the L-shaped plate 3 is also mounted on the top of the base 2. A hydraulic push rod 7 is fixed to one top end inside the L-shaped plate 3. A circular seat 15 is fixed to the output end of the hydraulic push rod 7. A first rotating shaft 19 is rotatably connected to the bottom center of the circular seat 15. A disc 16 is fixed to the bottom end of the first rotating shaft 19. A rotating mechanism for rotating the first rotating shaft 19 is mounted on the top of the circular seat 15. A blade 17 is fixed to the bottom center of the disc 16. Sleeves 23 are mounted on the other top end of the operating table 1. Support plates 8 are fixed to both ends of the two sleeves 23, and all four support plates 8 are connected to the operating table. The platform 1 is fixed, and two annular seats 25 are symmetrically fitted on the outer walls of the two sleeves 23. The two sleeves 23 are respectively provided with a third moving mechanism for moving the two annular seats 25. The outer walls of the two sleeves 23 are provided with a limiting mechanism for restricting the two annular seats 25. During use, the two annular seats 25 can move closer or further apart by the third moving mechanism and the limiting mechanism, which can adapt to carrier tapes of different widths and effectively prevent the carrier tape from shifting, thereby improving the processing accuracy and ensuring the accuracy of the hole-filling position. The first moving mechanism drives the base 2 to move, and the second moving mechanism drives the L-shaped plate 3 to move, so that the blade 17 can move left and right and back and forth on the top of the operating table 1. In this way, the carrier tape can be hole-filled at different positions, thereby increasing the flexibility of the equipment.
[0024] In this utility model, the limiting mechanism includes two protrusions 26, which are symmetrically fixed on the outer wall of one of the sleeves 23. The inner walls of the two annular seats 25 each have two grooves 28. The four grooves 28 are paired together and adapted to the two protrusions 26 respectively. The two protrusions 26 and the four grooves 28 limit the two annular seats 25, preventing the two annular seats 25 from rotating and ensuring that the two annular seats 25 can move relative to each other.
[0025] In this invention, the third moving mechanism includes a bidirectional lead screw 29, which is rotatably connected to the inside of one of the sleeves 23. Two third lead screw nuts 30 are symmetrically slidably connected to the inner wall of one of the sleeves 23, and both third lead screw nuts 30 are adapted to the bidirectional lead screw 29. A second sliding groove 24 is formed on the outer wall of one of the sleeves 23, and the second sliding groove 24 communicates with the sleeve 23. Two connecting rods 31 are arranged inside the second sliding groove 24, and one end of each connecting rod 31 is fixed to the outer wall of one of the two third lead screw nuts 30. The other end of 1 is fixed to the inner sidewall of two annular seats 25 respectively. A third motor 27 is fixed to the outer sidewall of one of the support plates 8, and the output shaft of the third motor 27 is fixed to the bidirectional lead screw 29. The third motor 27 drives the bidirectional lead screw 29 to rotate. With the second slide groove 24, the two bidirectional lead screws 29, and the two connecting rods 31, the two annular seats 25 are driven to move closer or further away from each other by the restriction of the two protrusions 26 and the four grooves 28. In this way, the two annular seats 25 can restrict the two sides of the carrier belt of different widths to prevent it from shifting and improve the processing accuracy.
[0026] In this utility model, the first moving mechanism includes a first slide groove 4, which is located on one side of the top of the operating table 1. A first lead screw 9 is rotatably connected to the inner wall of the first slide groove 4, and a first lead screw nut 10 is slidably connected to the inner wall of the first slide groove 4. The first lead screw nut 10 is sleeved on the side wall of the first lead screw 9 and is adapted to the first lead screw 9. The first lead screw nut 10 is fixed to the base 2. A first motor 5 is fixed to one end of the operating table 1, and the output shaft of the first motor 5 is fixed to the first lead screw 9. The second moving mechanism includes two support plates 6, which are respectively fixed to the top two ends of the base 2. The same slide rod 12 is fixed to the inner wall of the two support plates 6. The same second lead screw 11 is rotatably connected to the inner wall of the two support plates 6, and the second lead screw 11 and the slide rod 12 are arranged in parallel. The same second lead screw nut 13 is sleeved on the side wall of the second lead screw 11 and the second lead screw nut 13 is adapted to the second lead screw 11. The second lead screw nut 13 and the L-shaped plate 3 are fixed together. The outer wall of one of the support plates 6 is fixed with a second motor 14, and the output shaft of the second motor 14 is fixed with the second lead screw 11. The two first motors 5 drive the two first lead screws 9 to rotate simultaneously. With the help of the two first slides 4 and the two first lead screw nuts 10, the base 2 moves left and right along the top of the operating table 1, thereby moving the L-shaped plate 3 and realizing the left and right movement of the blade 17. When the power switch of the second motor 14 is turned on, the second motor 14 drives the second lead screw 11 to rotate. With the help of the slide rod 12 and the second lead screw nut 13, the L-shaped plate 3 moves back and forth along the top of the operating table 1, thereby moving the blade 17 back and forth. Then, the hydraulic push rod 7 drives the blade 17 to move downward with the help of the circular seat 15 and the disc 16. In this way, the carrier belt can be holed at different positions, and the position of the blade 17 can be flexibly adjusted, thereby increasing the flexibility of the equipment.
[0027] In this invention, the rotating mechanism includes a first gear 20, which is sleeved on the side wall of the first rotating shaft 19. A second rotating shaft 21 is rotatably connected to the bottom of the circular seat 15. A second gear 22 is sleeved on the side wall of the second rotating shaft 21, and the second gear 22 meshes with the first gear 20. A fourth motor 18 is fixed to the top of the circular seat 15, and the output shaft of the fourth motor 18 is fixed to the second rotating shaft 21. When it is necessary to install irregular electronic components and cut out matching recesses, the power switch of the fourth motor 18 is turned on, driving the fourth motor 18 to drive the second rotating shaft 21 to rotate. This, in conjunction with the second gear 22 and the first rotating shaft 19, drives the disc 16 to rotate, which in turn drives the blade 17 to rotate. The cutting angle of the blade 17 is rotated. After multiple operations, matching recesses can be cut out. This can meet diverse processing needs and improve the practicality of the device.
[0028] Working Principle: During operation, the width between the two annular seats 25 is adjusted according to the width of the carrier belt. During adjustment, the power switch of the third motor 27 is turned on, driving the third motor 27 to rotate the bidirectional lead screw 29. This, combined with the second slide groove 24, the two bidirectional lead screws 29, and the two connecting rods 31, restricts the two annular seats 25 by moving them closer or further apart. This allows the two annular seats 25 to restrict the sides of carrier belts of different widths, preventing deviation and improving processing accuracy. After adjustment, one end of the carrier belt is passed through the bottom of the two sleeves 23, and an external winding device is connected to wind the carrier belt. During processing, the power switches of the two first motors 5 are turned on simultaneously, driving the two first motors 5 to rotate the two first lead screws 9. This, combined with the two first slide grooves 4 and the two first lead screw nuts 10, moves the base 2 left and right along the top of the operating table 1, thereby moving the L-shaped plate 3 and achieving the left and right movement of the blade 17. When the power switch of the second motor 14 is turned on, the second motor 14 drives the second lead screw 11 to rotate. This, in conjunction with the slide rod 12 and the second lead screw nut 13, moves the L-shaped plate 3 back and forth along the top of the operating table 1, thereby moving the blade 17 back and forth. The hydraulic push rod 7, in conjunction with the circular seat 15 and the disc 16, moves the blade 17 downwards. This allows for different positions of the carrier tape to be embedded, making the position of the blade 17's embedding groove flexibly adjustable, thus increasing the equipment's flexibility. When it is necessary to cut matching embedding holes for irregularly shaped electronic components, the power switch of the fourth motor 18 is turned on, driving the fourth motor 18 to rotate the second rotating shaft 21. This, in conjunction with the second gear 22 and the first rotating shaft 19, rotates the disc 16, thereby rotating the blade 17. The cutting angle of the blade 17 is rotated. After multiple operations, matching embedding holes can be cut, thus meeting diverse processing needs and improving the practicality of the device.
[0029] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.
Claims
1. A carrier tape forming machine structure with adjustable slot, comprising an operation table (1), characterized in that, The operating platform (1) top one end is provided with base (2), the operating platform (1) top symmetry both sides are provided with first moving mechanism for moving base (2), the base (2) top is provided with L-shaped plate (3), the base (2) top is provided with second moving mechanism for moving L-shaped plate (3), the L-shaped plate (3) inner top one end is fixed with hydraulic push rod (7), the output end of hydraulic push rod (7) is fixed with circular seat (15), the bottom of circular seat (15) middle is rotatably connected with first rotating shaft (19), the bottom end of first rotating shaft (19) is fixed with disc (16), the top of circular seat (15) is provided with rotating mechanism for rotating first rotating shaft (19), the bottom of disc (16) middle is fixed with blade (17), the operating platform (1) top other end is provided with sleeve (23), both ends of two sleeve (23) are fixed with support plate (8), and four support plates (8) are fixed with operating platform (1), the outer side wall of two sleeve (23) is symmetrically sleeved with two annular seats (25), two sleeve (23) inside is provided with third moving mechanism for moving two annular seats (25), the outer side wall of two sleeve (23) is provided with limiting mechanism for limiting two annular seats (25).
2. The carrier tape forming machine structure according to claim 1, wherein The limiting mechanism includes two convex strips (26), two convex strips (26) are symmetrically fixed on the outer side wall of one of the sleeve (23), the inner side wall of two annular seats (25) is provided with two grooves (28), and four grooves (28) are matched with two convex strips (26) respectively.
3. The carrier tape forming machine structure according to claim 1, wherein The third moving mechanism includes a bidirectional screw rod (29), the bidirectional screw rod (29) is rotatably connected to one of the sleeve (23), the inner side wall of one of the sleeve (23) is symmetrically slidably connected with two third screw nuts (30), and the two third screw nuts (30) are matched with the bidirectional screw rod (29), the outer side wall of one of the sleeve (23) is provided with a second sliding groove (24), and the second sliding groove (24) is communicated with the sleeve (23), the second sliding groove (24) is provided with two connecting rods (31), one end of two connecting rods (31) is fixed with the outer side wall of two third screw nuts (30) respectively, the other end of two connecting rods (31) is fixed with the inner side wall of two annular seats (25) respectively, the outer side wall of one of the support plates (8) is fixed with a third motor (27), and the output shaft of the third motor (27) is fixed with the bidirectional screw rod (29).
4. The carrier tape forming machine structure according to claim 1, wherein The first moving mechanism comprises a first sliding groove (4) which is arranged on one side of the top of the operating table (1), a first lead screw (9) is rotatably connected to the inner side wall of the first sliding groove (4), a first lead screw nut (10) is slidably connected to the inner side wall of the first sliding groove (4), the first lead screw nut (10) is sleeved on the side wall of the first lead screw (9), and the first lead screw nut (10) and the first lead screw (9) are matched, the first lead screw nut (10) is fixed to the base (2), one end of the operating table (1) is fixedly connected with a first motor (5), and the output shaft of the first motor (5) is fixedly connected with the first lead screw (9).
5. The carrier tape forming machine structure according to claim 1, wherein The second moving mechanism comprises two support plates (6), the two support plates (6) are fixedly connected to the top of the base (2), the inner side walls of the two support plates (6) are fixedly connected with a same sliding rod (12), the inner side walls of the two support plates (6) are rotatably connected with a same second lead screw (11), the second lead screw (11) and the sliding rod (12) are arranged in parallel, the side walls of the second lead screw (11) and the sliding rod (12) are sleeved with a same second lead screw nut (13), the second lead screw nut (13) is matched with the second lead screw (11), and the second lead screw nut (13) and the L-shaped plate (3) are fixed, the outer side wall of one of the two support plates (6) is fixedly connected with a second motor (14), and the output shaft of the second motor (14) is fixedly connected with the second lead screw (11).
6. The carrier tape forming machine structure according to claim 1, wherein The rotating mechanism comprises a first gear (20) which is sleeved on the side wall of the first rotating shaft (19), a second rotating shaft (21) is rotatably connected to the bottom of the circular seat (15), a second gear (22) is sleeved on the side wall of the second rotating shaft (21), and the second gear (22) is engaged with the first gear (20), a fourth motor (18) is fixedly connected to the top of the circular seat (15), and the output shaft of the fourth motor (18) is fixedly connected with the second rotating shaft (21).