Adhesive tape cutting assembly and adhesive tape application device for lead
By designing automated tape shear components, including feeding, clamping, shearing and bending components, the problem of low efficiency of manual shearing and bending tape in photovoltaic module processing is solved, and automated pasting is achieved, improving efficiency and reducing manual labor intensity.
Patent Information
- Application Number
- PCT/CN2024/096974
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2023-12-15
- Filing Date
- 2024-06-03
- Publication Date
- 2025-06-19
AI Technical Summary
In the prior art, photovoltaic modules require manual shearing and bending tape during processing, resulting in low adhesion efficiency and high manual labor intensity.
A tape shear assembly is designed, including feeding members, clamping members, shear members and tape bending members. Through the mutual cooperation of these components, the tape can be automatically mounted on the lead wire, reducing manual intervention.
The tape sticking efficiency is improved, the labor intensity is reduced, and the work efficiency is increased by simultaneously performing lead sticking and labeling operations.
Smart Images

Figure CN2024096974_19062025_PF_FP_ABST
Abstract
Description
A tape cutting assembly and a tape pasting lead device Technical Field
[0001] The present invention relates to the technical field of adhesive tape pasting, in particular to an adhesive tape cutting assembly and an adhesive tape pasting lead device. Background Art
[0002] Currently, during the manufacturing process of photovoltaic modules, tape is applied to the leads to facilitate processing at the next workstation. This is done manually by cutting the tape and applying it to the leads. Since the tape needs to be removed during subsequent processing, the ends of the cut tape must be bent to facilitate subsequent removal. This manual cutting and bending of the tape results in low tape application efficiency and high labor intensity.
[0003] Summary of the Invention
[0004] Therefore, the technical problem to be solved by the present invention is to provide a tape cutting assembly and a tape pasting lead device, which can improve the efficiency of tape pasting and reduce manual labor intensity.
[0005] To solve the above technical problems, the present invention provides a tape cutting assembly, comprising: a feeding member, the end portion of the tape extending from the output end of the feeding member; a clamping member, comprising a second linear drive member and a first clamping claw drive member connected to the output end of the second linear drive member, the second linear drive member being capable of driving the first clamping claw drive member to move in a direction approaching or away from the tape, the output end of the first clamping claw drive member being connected to a pair of first clamping members; a shearing member, comprising a driving scissors, the driving scissors being capable of cutting the tape between the first clamping member and the feeding member; a tape bending member, comprising a second clamping claw drive member, the output end of the second clamping claw drive member being connected to a pair of first levers extending in the direction of the tape, the first lever being connected to the output end of the second clamping claw drive member through a first connecting seat and a second connecting seat, the tape being located between the first levers, and when the first lever is in a closed state, the plane where the central axis of the first lever is located is parallel to the plane on the opposite sides of the first connecting seat and the second connecting seat.
[0006] In one embodiment of the present invention, the second clamping jaw driving member is connected to the output end of the fifth linear driving member, and the fifth linear driving member can drive the second clamping jaw driving member to move in the direction close to or away from the tape. The first connecting seat is provided with a protrusion, and the second connecting seat is provided with a groove matching the protrusion. The protrusion and the groove are located on opposite sides of the first connecting seat and the second connecting seat, and one of the first shift rods is connected to the protrusion, and the other first shift rod is connected to the end face of the second connecting seat.
[0007] In one embodiment of the present invention, the feeding member includes a first linear driving member and a baffle located at the output end, and the adhesive tape is located between the output end of the first linear driving member and the baffle.
[0008] In one embodiment of the present invention, the feeding component includes a material tray and a guide wheel, the tape is wound on the material tray, and the end of the tape extends from the material tray to a position between the output end of the first linear drive member and the baffle, the guide wheel is located between the material tray and the baffle, and the tape is against the guide wheel.
[0009] In one embodiment of the present invention, the driving scissors are connected to a first connecting plate, the first connecting plate is connected to the second connecting plate, the second connecting plate is provided with an arc-shaped opening, the first connecting plate is provided with a plurality of connecting holes arranged along the arc-shaped opening, the second connecting plate is connected to the output end of the sixth linear driving member, and the sixth linear driving member can drive the second connecting plate to move toward or away from the tape.
[0010] In one embodiment of the present invention, a lead bending member is further included, which includes a third linear drive member and a third clamping drive member connected to the output end of the third linear drive member, and the output end of the third clamping drive member is connected to a pair of second shifting rods.
[0011] In one embodiment of the present invention, it further includes an adsorption component, which includes a fourth linear drive component and a suction cup connected to an output end of the fourth linear drive component, and the suction cup is connected to a vacuum source.
[0012] A tape-adhesive lead device comprises any one of the above-mentioned tape-cutting components.
[0013] In one embodiment of the present invention, a label pasting assembly is further included, which includes a fifth rotating driving member, the output end of the fifth rotating driving member is connected to a sixth rotating driving member, the output end of the sixth rotating driving member is connected to a fourth clamping driving member, and the output end of the fourth clamping driving member is connected to a pair of second clamping members.
[0014] In one embodiment of the present invention, an abutment block is provided between the second clamping members, a side of the abutment block away from the second clamping member is connected to a third connection seat, and the third connection seat is rotatably connected to a roller.
[0015] The above technical solution of the present invention has the following advantages over the prior art:
[0016] The tape cutting assembly and tape-applying lead device described herein utilizes a feeding component, a clamping component, a cutting component, and a tape bending component to enable manual application of tape onto leads, thereby reducing labor intensity and improving tape application efficiency. By providing a label application component on the opposite side of the tape cutting assembly, the tape cutting assembly and tape-applying lead device can simultaneously apply leads and labels, thereby increasing work efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] In order to make the contents of the present invention more clearly understood, the present invention is further described in detail below based on specific embodiments of the present invention in conjunction with the accompanying drawings.
[0018] FIG1 is a schematic structural diagram of a tape cutting assembly according to the present invention;
[0019] Figure 2 is a partial structural diagram of Figure 1;
[0020] FIG3 is a schematic diagram of the structure of the lead bending member and the adsorption member;
[0021] FIG4 is a schematic structural diagram of a tape-attached lead device;
[0022] FIG5 is a schematic diagram of the external structure of FIG4;
[0023] Figure 6 is a schematic diagram of the structure of the conveying assembly;
[0024] FIG7 is a schematic diagram of a portion of the structure of FIG4;
[0025] FIG8 is a schematic structural diagram of point A in FIG7;
[0026] Figure 9 is a schematic diagram of the structure of the mobile component;
[0027] Figure 10 is a schematic structural diagram of the first movable plate;
[0028] Figure 11 is a schematic structural diagram of the second movable plate;
[0029] FIG12 is a schematic structural diagram of a label pasting component.
[0030] Description of the accompanying drawings: 1. Conveying assembly; 2. Moving assembly; 3. First movable plate; 4. Fifth connecting plate; 5. Bottom plate; 6. Second movable plate; 7. Label pasting assembly; 8. Housing; 11. Second stopper; 12. Eleventh linear drive member; 13. Twelfth linear drive member; 14. Seventh connecting plate; 15. First stopper; 16. Conveyor belt; 17. Seventh rotary drive; 21. First rotary drive member; 22. Third rotary drive member; 23. First synchronous belt; 24. Second synchronous belt; 31. Seventh linear drive member; 32. First rack; 33. Second rotary drive member; 34. First shooting member; 35. Eighth linear drive member; 36. Prism; 41. Second connecting frame; 42. Fourth linear drive member; 43. Tenth linear drive member; 44. Suction cup; 45. Sixth connecting plate; 46. Third linear drive member; 47. Third gripper drive member; 48. Second shift lever; 51. Scissor drive member; 52. Second linear drive member; 53. First connecting frame; 54. Third connecting plate; 61. Ninth linear drive member ; 62, second rack; 63, fourth rotary drive member; 64, second shooting member; 71, third connecting frame; 72, fifth rotary drive member; 73, mounting plate; 74, sixth rotary drive member; 75, fourth clamping jaw drive member; 76, second clamping member; 77, abutment block; 78, third connecting seat; 111, slide rail; 112, third synchronous belt; 113, mounting seat; 114, eighth rotary drive member; 115, slider; 511, sixth linear drive member; 512, first connecting plate; 513, second connecting member Connecting plate connection; 514, arc-shaped opening; 521, fourth connecting plate; 522, first clamping member; 523, first clamping member; 531, fifth linear drive member; 532, second clamping member 532; 533, first shift rod; 534, first connecting seat; 535, protrusion; 536, second connecting seat; 537, groove; 541, guide wheel; 542, distance sensor; 543, first linear drive member; 544, abutment plate; 545, baffle; 546, L-shaped connecting rod; 547, material tray. DETAILED DESCRIPTION
[0031] The present invention will be further described below with reference to the accompanying drawings and specific embodiments so that those skilled in the art can better understand the present invention and implement it. However, the embodiments are not intended to limit the present invention.
[0032] Example 1
[0033] 1 and 2 , a tape cutting assembly of the present invention includes: a feeding member, the end of the tape extending from the output end of the feeding member; a clamping member, including a second linear drive member 52 and a first clamping member 522 connected to the output end of the second linear drive member 52, the second linear drive member 52 can drive the first clamping member 522 to move toward or away from the tape, and the output end of the first clamping member 522 is connected to a pair of first clamping members 523; a shearing member, including a driving scissors 51, the driving scissors 51 can shear the first clamping member 523 and the tape between the feeding member; the tape bending member includes a second clamping jaw driving member 532, the output end of the second clamping jaw driving member 532 is connected to a pair of first levers 533 extending in the direction of the tape, the first lever 533 is connected to the output end of the second clamping jaw driving member 532 through a first connecting seat 534 and a second connecting seat 536, the tape is located between the first levers 533, when the first lever 533 is in a closed state, the plane where the central axis of the first lever 533 is located is parallel to the plane on the opposite side of the first connecting seat 534 and the second connecting seat 536.
[0034] In a tape cutting assembly according to the present invention, a tape extends outward from the output end of a feed member. First, a second linear drive member 52 drives a first clamping member 522 toward the end of the tape until the first clamping member 522 clamps the first clamping member 523. Then, the second linear drive member 52 drives the first clamping member 522 away from the feed member until the tape extends to a specified length. The shearing end of the scissors 51 is then driven to cut the tape, while the second clamping member 532 drives the first lever 533 to clamp the end of the tape, causing the end of the tape extending toward the abutment block 77 to be bent after cutting. The interaction of the feed member, the clamping member, the shearing member, and the tape bending member allows the tape to be applied to the lead wire without manual intervention, thereby reducing labor intensity and improving tape application efficiency.
[0035] The tape cutting assembly further comprises a bottom plate 5 , on which the feeding component, the clamping component, the cutting component and the tape bending component are all arranged.
[0036] The feeding assembly includes a first linear drive 543, a baffle 545, and a third connecting plate 54. The third connecting plate 54 is perpendicularly connected to the base plate 5 and connected to a material tray 547 via an L-shaped connecting rod 546. A guide wheel 541 is rotatably connected to the third connecting plate 54. The tape is wound around the material tray 547 to form a roll. The first linear drive 543 is connected to the third connecting plate 54 and is located on the same side of the material tray 547. The first linear drive 543 is a cylinder and is arranged perpendicular to the base plate 5. The output end of the first linear drive 543 is connected to an abutment plate 544. A baffle 545 is connected to the third connecting plate 54 and is located in the movement path of the abutment plate 544 and is parallel to the abutment plate 544. The guide wheel 541 is located between the material tray 547 and the baffle 545. The non-adhesive surface of the tape abuts against the side wall of the guide wheel 541. Preferably, a distance sensor 542 is connected to the third connecting plate 54 near the tape's path. The distance sensor 542 is connected to the controller, with the detection end of the distance sensor 542 facing the tape, for detecting whether there is still a roll of tape on the material tray 547. Preferably, the side of the abutment plate 544 near the baffle 545 is serrated to prevent the tape from firmly adhering to the abutment plate 544.
[0037] The clamping member includes a second linear drive member 52 and a first clamping member 522 connected to the output end of the second linear drive member 52. The second linear drive member 52 is a pneumatic cylinder connected to the base plate 5, and the first clamping member 522 is a clamping cylinder. The output end of the second linear drive member 52 is connected to the first clamping member 522 via a fourth connecting plate 521. The output end of the first clamping member 522 is connected to a pair of first clamping members 523. The first clamping members 522 can drive the first clamping members 523 to open and close, with the clamping ends of the first clamping members 523 facing toward the end of the tape. Preferably, the clamping surface of the first clamping member 523 is serrated to prevent the tape from adhering firmly to the clamping surface. The second linear drive member 52 can drive the first clamping member 522 to move toward or away from the tape. Preferably, the movement path of the second linear drive member 52 is located along the extension line of the tape extending from the feeding member.
[0038] The shearing assembly includes a driving shear 51, a first connecting plate 512, a second connecting plate, and a sixth linear drive 511. The driving shear 51 is a pneumatic shear, and the sixth linear drive 511 is a guide cylinder. The sidewalls of the driving shear 51 are connected to the first connecting plate 512, which is in turn connected to the second connecting plate 513. The second connecting plate is provided with an arcuate opening 514. The first connecting plate 512 is provided with multiple connecting holes arranged along the arcuate opening 514. The angle of the driving shear 51 is adjustable by rotating the first connecting plate 512 and connecting it to the arcuate opening 514 and the connecting holes via screws. The second connecting plate is perpendicularly connected to the output end of the sixth linear drive 511. The sixth linear drive 511 can drive the second connecting plate to move toward or away from the tape, thereby positioning the cutting end of the driving shear 51 at the tape position, enabling the driving shear 51 to cut the tape.
[0039] The tape bending member includes a second clamping jaw drive 532 and a fifth linear drive 531. The second clamping jaw drive 532 is a clamping jaw cylinder, and the fifth linear drive 531 is a cylinder connected to the base plate 5 via a first connecting frame 53. The second clamping jaw drive 532 is connected to the output end of the fifth linear drive 531, and the fifth linear drive 531 can drive the second clamping jaw drive 532 to move toward or away from the end of the tape. The output end of the second clamping jaw drive 532 is connected to a pair of first levers 533 extending toward the tape. The fifth linear drive 531 can drive the first levers 533 to move so that the tape is positioned between the first levers 533. The first levers 533 are cylindrical and are connected to the output end of the second clamping jaw drive 532 via a first connecting seat 534 and a second connecting seat 536. The first connecting seat 534 is provided with a protrusion 535, and the second connecting seat 536 is provided with a groove 537 that mates with the protrusion 535. The protrusion 535 and the groove 537 are located on opposite sides of the first connecting seat 534 and the second connecting seat 536. The end of one of the first levers 533 is connected to the protrusion 535, while the other first lever 533 is connected to the end face of the second connecting seat 536. As a result, the two levers are vertically offset, and the plane in which the central axis of the first lever 533 lies is parallel to the plane on the opposite sides of the first connecting seat 534 and the second connecting seat 536. When the second jaw driving member 532 drives the first lever 533 into a closed clamping state, the tape located between the second levers 48 is bent.
[0040] As shown in Figure 3, the lead bending member includes a fifth connecting plate 4, a third linear drive 46, and a third clamping jaw drive 47 connected to the output end of the third linear drive 46, wherein the third linear drive 46 is a cylinder and the third clamping jaw drive 47 is a clamping jaw cylinder. The fifth connecting plate 4 is perpendicularly connected to a sixth connecting plate 45 facing the clamping member. The sixth connecting plate 45 is connected to the third linear drive 46, and the third linear drive 46 can drive the third clamping jaw drive 47 to move toward or away from the clamping member. The output end of the third clamping jaw drive 47 is connected to a pair of second levers 48. Preferably, the opposite sides of the second levers 48 are parallel planes, and the ends of the second levers 48 are wedge-shaped, making it easier for the ends of the second levers 48 to pass between the leads.
[0041] The adsorption component includes a second connecting frame 41, a fourth linear drive member 42, and a suction cup 44 connected to the output end of the fourth linear drive member 42, wherein the fourth linear drive member 42 is a cylinder. The second connecting frame 41 is vertically connected to the fifth connecting plate 4, and the fourth linear drive member 42 is vertically connected to the side of the second connecting frame 41 close to the lead bending mechanism. The suction cup 44 is connected to a vacuum source so that the suction cup 44 can adsorb the tape. Preferably, the output end of the fourth linear drive member 42 is connected to the tenth linear drive member 43, and the tenth linear drive member 43 is a cylinder. The suction cup 44 is connected to the output end of the tenth linear drive member 43. The use of two linear drives stacked and connected makes the overall volume of the adsorption component smaller.
[0042] During use, the adhesive tape extends outward from the feed member, and the adhesive tape is located between the abutment plate 544 and the baffle 545. First, the second linear drive member 52 drives the first clamping member 522 to move toward the end of the adhesive tape, until the clamping member drives the first clamping member 523 to clamp the end of the adhesive tape; then the second linear drive member 52 drives the first clamping member 522 to move away from the feed member until the adhesive tape extends to a specified length, while the material tray 547 and the guide wheel 541 rotate; then the output end of the first linear drive member 543 drives the abutment plate 544 to move, so that the adhesive tape is clamped between the abutment plate 544 and the baffle 545; after the adhesive tape is fixed, the sixth linear drive member 511 drives the driving scissors 51 to move toward the adhesive tape, and drives the cutting end of the scissors 51 to cut the adhesive tape, while the fifth linear drive member 531 drives the sixth linear drive member 511 to drive the scissors 51 to move toward the adhesive tape, and drives the cutting end of the scissors 51 to cut the adhesive tape. The second clamping jaw driving member 532 moves toward the direction of the tape, and the second clamping jaw driving member 532 drives the first lever 533 to clamp the end of the tape, so that the end of the tape extending from the direction of the abutment block 77 after shearing is bent; then the fourth linear driving member 42 drives the suction cup 44 to absorb the tape clamped by the first clamping member 523, and at the same time the third linear driving member 46 drives the third clamping jaw driving member 47 to move toward the lead direction, so that the second lever 48 passes through between the leads; finally, the third clamping jaw driving member 47 drives the second lever 48 to move away from each other, so that the leads are bent to both sides. After the second lever 48 returns to the origin, the fourth linear driving member 42 drives the suction cup 44 to move to the lead position, so that the tape is attached to the lead.
[0043] Example 2
[0044] A tape-adhesive lead device comprises the above-mentioned tape-cutting assembly.
[0045] 4 and 5 , the tape-adhesive lead device is integrally connected to the housing 8 .
[0046] 6 , the conveying assembly 1 , for supporting and conveying plates, comprises a seventh rotary drive 17 and a plurality of parallel conveyor belts 16 . The seventh rotary drive 17 can drive the conveyor belt 16 to move, and the plates are fitted to the conveyor belt 16 .
[0047] An eleventh linear driving member 12 is provided between the conveyor belts 16. The driving path of the eleventh linear driving member 12 is parallel to the conveyor belts 16. The output end of the eleventh linear driving member 12 is connected to the seventh connecting plate 14. The seventh connecting plate 14 is connected to the twelfth linear driving member 13. The output end of the twelfth linear driving member 13 is rotatably connected to the first stop block 15. The twelfth linear driving member 13 can drive the first stop block 15 to move to the same plane as the plate, and the first stop block 15 is driven to move by the eleventh linear driving member 12, thereby driving the plate to move.
[0048] As shown in Figures 7 and 8, the conveyor assembly 1 is symmetrically provided with mounting blocks 113 on the side away from the sheet material. An eighth rotary drive member 114 is connected to one of the mounting blocks 113. The output end of the eighth rotary drive member 114 is provided with a third synchronous belt 112, which is capable of driving the movement of the third synchronous belt 112. A slide rail 111 is provided within the inner side of the third synchronous belt 112. A slider 115 is slidably connected to the slide rail 111. The slide rail 111 and the slider 115 are symmetrically positioned near the mounting block 113 and connected to different sides of the third synchronous belt 112, thereby enabling the slider 115 to move toward or away from each other. A second stopper 11 is rotatably connected to the slider 115. The eighth rotary drive member 114 can drive the second stopper 11 toward the sheet material. Combined with the eleventh linear drive member 12, which drives the first stopper 15, the sheet material can be moved to the processing position for the tape-bonding wire.
[0049] As shown in Figure 9, the moving assembly 2 is located at a position where the sheet material is away from the conveyor assembly 1 and includes a first rotary drive member 21, a first synchronous belt 23 being provided at the output end of the first rotary drive member 21, a third rotary drive member 22, and a second synchronous belt 24 being provided at the output end of the second rotary drive member 33. The moving assembly 2 is symmetrically arranged, with the first synchronous belt 23 and the second synchronous belt 24 being perpendicular to the conveyor belt 16.
[0050] As shown in Figure 10 , the first movable plate 3 is connected between the symmetrically arranged first synchronous belts 23. The first movable plate 3 is slidably connected to the housing 8, allowing the first synchronous belt 23 to drive the first movable plate 3 to move. A seventh linear drive member 31 is slidably connected to the first movable plate 3, and the fifth connecting plate 4 is connected to the output end of the seventh linear drive member 31. The seventh linear drive member 31 can drive the seventh connecting plate 14 toward or away from the sheet material, thereby driving the tape cutting assembly toward or away from the sheet material. A first rack 32, perpendicular to the first synchronous belt 23, is provided on the side of the first movable plate 3 facing away from the conveyor assembly 1. A second rotary drive member 33 is connected to the side of the first slide plate facing the first rack 32. The output end of the second rotary drive member 33 is connected to a gear meshing with the first rack 32, allowing the second rotary drive member 33 to drive the seventh linear drive member 31 along the rack. A first camera member 34 and an eighth linear drive member 35, both connected to a controller, are connected to the side of the seventh linear drive member 31 facing away from the tape cutting assembly. The first camera member 34 can capture the position of the lead wire and position the lead wire using the controller. The output end of the eighth linear driving member 35 is connected to a prism 36 , which corresponds to the photographing end of the first photographing member 34 . By adjusting the position of the prism 36 , the first photographing member 34 can photograph the position of the lead wire.
[0051] As shown in Figure 11 , a second movable plate 6 is further connected between the symmetrically arranged second synchronous belts 24. A ninth linear drive member 61 is slidably connected to the second movable plate 6. The second movable plate 6 is also connected to a second rack 62 and a fourth rotary drive member 63. The second movable plate 6, second rack 62, and fourth rotary drive member 63 have the same structure and operating principles as the first movable plate 3, first rack 32, and second rotary drive member 33 described above, and are not further described. A second camera member 64, connected to the controller, is connected to the side of the ninth linear drive member 61 proximal to the first movable plate 3. This second camera member 64 is used to capture images of the attached labels and to verify their conformity via the controller.
[0052] As shown in Figure 12, the output end of the ninth linear drive member 61 is connected to the label applying assembly 7, which is used to apply labels to the sheet material. The label applying assembly 7 includes a fifth rotary drive member 72. The ninth linear drive member 61 is connected to the fifth rotary drive member 72 via a third connecting frame 71. The output end of the fifth rotary drive member 72 is connected to the sixth rotary drive member 74, and the output end of the sixth rotary drive member 74 is connected to the fourth clamping member 75. The fifth rotary drive member 72 is a motor, the sixth rotary drive member 74 is a rotary cylinder, and the fourth clamping member 75 is a clamping cylinder. Specifically, the output end of the fifth rotary drive member 72 is connected to a mounting plate 73, one side of which is connected to the sixth rotary drive member 74. The output end of the sixth rotary drive member 74 passes through the mounting plate 73 and connects to the fourth clamping member 75. The output end of the fourth clamping member 75 is connected to a pair of second clamping members 76. The fourth clamping member 75 can drive the second clamping members 76 to open and close. Preferably, an abutment block 77 is provided between the second clamping members 76. The abutment block 77 is connected to one of the second clamping members 76 and is used to accommodate a label between the abutment block 77 and the other second clamping member 76. A third connecting seat 78 is connected to the side of the abutment block 77 away from the second clamping member 76. A roller is rotatably connected to the third connecting seat 78. The contact position of the roller and the label is coplanar with the contact surface of the abutment block 77. The provision of the roller ensures a more stable contact between the label and the sheet material. Preferably, the clamping surface of the second clamping member 76 is serrated to prevent the label from being firmly attached to the second clamping member 76.
[0053] When in use, the sheet is first conveyed by the conveying assembly 1, so that the sheet is moved to a position close to the tape cutting assembly, and then the first stopper 15 is driven by the twelfth linear drive member 13 to move to the same plane as the sheet, and the first stopper 15 and the second stopper 11 are driven by the eighth rotary drive member 114 and the eleventh linear drive member 12 to fit and move with the sheet, so that the sheet is moved to the processing position of the tape pasting line lead; then the first rotary drive member 21 drives the first shooting member 34 to move to the shooting position through the first synchronous belt 23, so as to position the lead; after the positioning is completed, the second linear drive member 52 drives the first clamping member 522 to move toward the end of the tape, until the first clamping member 522 drives the first clamping member 523 to clamp the end of the tape; then the second linear drive member 52 drives the first clamping member 522 to move away from the abutment block 77 until the tape extends to a specified length, and at the same time the material tray 547 and the guide wheel 541 rotate; then the first linear drive member 54 The output end of the 3rd embodiment drives the abutment plate 544 to move, so that the tape is clamped between the abutment plate 544 and the baffle 545; after the tape is fixed, the sixth linear drive member 511 drives the scissors 51 to move in the direction of the tape, driving the cutting end of the scissors 51 to cut the tape, and at the same time, the fifth linear drive member 531 drives the second clamping claw drive member 532 to move in the direction of the tape, and the second clamping claw drive member 532 drives the first lever 533 to clamp the end of the tape, so that the end of the tape extending from the abutment block 77 after cutting is curved. folded; then the fourth linear drive member 42 drives the suction cup 44 to absorb the tape clamped by the first clamping member 523, and at the same time the third linear drive member 46 drives the third clamping jaw drive member 47 to move toward the lead direction, so that the second lever 48 passes through between the leads; finally, the third clamping jaw drive member 47 drives the second lever 48 to move away from each other, so that the lead is bent to both sides. After the second lever 48 returns to the origin, the fourth linear drive member 42 drives the suction cup 44 to move to the lead position, so that the tape is attached to the lead. When it is necessary to stick a label on the sheet, the third rotary drive member 22 drives the second clamping member 76 to move to the label picking position through the second synchronous belt 24, so that the label is located between the second clamping member 76 and the abutment block 77, and the non-adhesive surface is in contact with the baffle 545, and at the same time, the fourth clamping jaw driving member 75 drives the second clamping member 76 to clamp the label, so that the label is clamped between the second clamping member 76 and the abutment block 77; then the third rotary drive member 22 drives the label to move to the pasting position, and at the same time, the fifth rotary drive member 72 drives the label to move to the pasting posture, and the sixth rotary drive member 74 drives the label to rotate so that the pasting surface of the label faces the sheet and forms an acute angle posture with the sheet; finally, the ninth linear drive member 61 drives the end of the label to fit the sheet, and at the same time, the fourth clamping jaw driving member 75 causes the second clamping member 76 to release the label, and the third rotary drive member 22 drives the label pasting assembly 7 to move, so that the roller presses the label tightly against the sheet.
[0054] The present invention provides a tape cutting assembly and a tape-applying lead device. Through the interaction of a feeding component, a clamping component, a cutting component, and a tape bending component, the tape can be applied to the lead without manual intervention, thereby reducing employee labor intensity and improving tape application efficiency. By providing a label application component 7 on the opposite side of the tape cutting assembly, the tape cutting assembly and the tape-applying lead device can simultaneously apply the lead and label, thereby increasing work efficiency.
[0055] Obviously, the above embodiments are merely examples for clarity of explanation and are not intended to limit the implementation methods. Those skilled in the art will appreciate that other variations or modifications can be made based on the above description. It is not necessary and impossible to enumerate all implementation methods here. Obvious variations or modifications arising therefrom remain within the scope of protection of the present invention.
Claims
1. A tape cutting assembly, characterized in that: include: A feeding member, the end of the adhesive tape extends out from the output end of the feeding member; The clamping member includes a second linear driving member and a first clamping claw driving member connected to an output end of the second linear driving member, wherein the second linear driving member can drive the first clamping claw driving member to move toward or away from the adhesive tape, and the output end of the first clamping claw driving member is connected to a pair of first clamping members; A shearing member, comprising a driven scissors, wherein the driven scissors are capable of shearing the adhesive tape between the first clamping member and the feeding member; The tape bending component includes a second clamping jaw driving component, the output end of the second clamping jaw driving component is connected to a pair of first levers extending in the direction of the tape, the first levers are connected to the output end of the second clamping jaw driving component through a first connecting seat and a second connecting seat, the tape is located between the first levers, and when the first levers are in a closed state, the plane where the central axis of the first lever is located is parallel to the plane on the opposite sides of the first connecting seat and the second connecting seat.
2. The tape cutting assembly according to claim 1, characterized in that: The second clamping jaw driving member is connected to the output end of the fifth linear driving member, and the fifth linear driving member can drive the second clamping jaw driving member to move in a direction close to or away from the tape. The first connecting seat is provided with a protrusion, and the second connecting seat is provided with a groove matching the protrusion. The protrusion and the groove are located on opposite sides of the first connecting seat and the second connecting seat, one of the first levers is connected to the protrusion, and the other first lever is connected to the end face of the second connecting seat.
3. The tape cutting assembly according to claim 1, characterized in that: The feeding member comprises a first linear driving member and a baffle plate at an output end, and the adhesive tape is located between the output end of the first linear driving member and the baffle plate.
4. The tape cutting assembly according to claim 3, characterized in that: The feeding component includes a material tray and a guide wheel. The tape is wound around the material tray, and the end of the tape extends from the material tray to a position between the output end of the first linear drive member and the baffle. The guide wheel is located between the material tray and the baffle, and the tape abuts against the guide wheel.
5. The tape cutting assembly according to claim 1, characterized in that: The driving scissors are connected to the first connecting plate, the first connecting plate is connected to the second connecting plate, the second connecting plate is provided with an arc opening, the first connecting plate is provided with a plurality of connecting holes arranged along the arc opening, the second connecting plate is connected to the output end of the sixth linear driving member, and the sixth linear driving member can drive the second connecting plate to move in a direction close to or away from the tape.
6. The tape cutting assembly according to claim 1, characterized in that: It also includes a lead bending component, which includes a third linear drive and a third clamping jaw drive connected to the output end of the third linear drive, and the output end of the third clamping jaw drive is connected to a pair of second shifting rods.
7. The tape cutting assembly according to claim 1, characterized in that: It also includes an adsorption component, which includes a fourth linear drive and a suction cup connected to an output end of the fourth linear drive, and the suction cup is connected to a vacuum source.
8. A tape-attached lead device, characterized in that: The invention comprises the tape cutting assembly according to any one of claims 1 to 7.
9. The tape-attaching lead device according to claim 8, characterized in that: It also includes a label pasting component, which includes a fifth rotating driving member, an output end of the fifth rotating driving member is connected to a sixth rotating driving member, an output end of the sixth rotating driving member is connected to a fourth clamping driving member, and an output end of the fourth clamping driving member is connected to a pair of second clamping members.
10. The tape-attaching lead device according to claim 9, characterized in that: An abutment block is provided between the second clamping members, a side of the abutment block away from the second clamping member is connected to a third connection seat, and the third connection seat is rotatably connected to a roller.
Citation Information
Patent Citations
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