A tooling device for automatic adhesive tape sticking

By combining the design of the lead screw mechanism, tape feeding mechanism, tape pressing mechanism, scissor mechanism and head half-shear mechanism, the problems of local cutting of thick tape and unreasonable spatial arrangement are solved, and local cutting and stable operation of equipment are achieved.

CN122166610APending Publication Date: 2026-06-09JIANGSU RIYING ELECTRONICS

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
JIANGSU RIYING ELECTRONICS
Filing Date
2026-02-25
Publication Date
2026-06-09

AI Technical Summary

Technical Problem

Existing automatic tape application equipment has difficulty in partially cutting thick tape or tape with a substrate film, and its unreasonable mechanical layout under space constraints leads to unstable equipment operation.

Method used

It adopts a combination design of lead screw mechanism, tape feeding mechanism, tape pressing mechanism, scissor mechanism and head half-shear mechanism. It uses multi-stage cylinders for spatial layering to achieve multi-directional linkage control, and combines the half-shear assembly for local cutting.

Benefits of technology

This technology enables partial cutting of the tape at the end of the application process, meeting production process requirements and improving the equipment's structural compactness and operational stability within a limited space.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a kind of automatic adhesive tape's tooling equipment, including rack, screw mechanism, adhesive tape feeding mechanism, adhesive tape pressing mechanism, scissors mechanism and head half-cut mechanism, screw mechanism includes driving motor, screw, guide rail and sliding block;Adhesive tape feeding mechanism includes connecting seat, adhesive tape tray and adhesive tape roller, connecting seat is fixed on sliding block, and adhesive tape roller is arranged below adhesive tape tray;Adhesive tape pressing mechanism is arranged on connecting seat, including second cylinder, pressure wheel seat and rubber-coated roller, and rubber-coated roller is located above adhesive tape feeding path;Scissors mechanism is arranged on connecting seat and is located in the side of adhesive tape feeding path;Head half-cut mechanism is arranged on the opposite side of scissors mechanism and is fixed on rack, and is located in the rear end of adhesive tape feeding path, including multiple cylinders and half-cutting knife assembly driven by cylinder.The structure can realize the stable feeding of adhesive tape, pressure paste and multi-directional composite driving cutting in limited space, and realize the half-cutting processing of adhesive tape at the end of attachment.
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Description

Technical Field

[0001] This invention relates to the field of automated production technology, and in particular to a tooling device for automatically applying adhesive tape. Background Technology

[0002] Automatic tape applicators are widely used in the automated production of long and thin strips of products to apply tape to the product surface at a set length. In existing technologies, common automatic tape applicators typically employ a feeding mechanism combined with a pressure roller structure to press the tape together, and then use a scissor mechanism to cut the tape to achieve fixed-length application.

[0003] However, in actual production processes, when the tape being applied is thick or has a substrate film, existing equipment typically suffers from the following problems: Firstly, conventional scissor mechanisms can only achieve overall cutting, not partial cutting of the tape, thus failing to meet the requirements of some production processes that require partial cutting—that is, partially cutting the tape at the end of the application while maintaining the continuity of the remaining portion. Secondly, in space-constrained equipment structures, the scissor mechanism and the partial cutting mechanism often need to coordinate complex actions in different directions. In existing technologies, the arrangement of these mechanisms is relatively simple, mostly a single-direction drive structure, making it difficult to achieve multi-directional linkage control, resulting in deficiencies in structural compactness and motion coordination. Furthermore, during automatic tape application, the spatial relationship between the cutting mechanism and the feeding path significantly impacts the overall equipment layout. An unreasonable structural arrangement can easily lead to interference between mechanisms or unstable actions, affecting the reliability of equipment operation. Summary of the Invention

[0004] The purpose of this invention is to overcome the defects of the existing technology and to propose an automatic tape applicator to solve the problems mentioned in the background art.

[0005] The technical solution to achieve the purpose of this invention is: an automatic tape applicator, comprising a frame, a lead screw mechanism, a tape feeding mechanism, a tape pressing mechanism, a scissor mechanism, and a head half-scissor mechanism.

[0006] The lead screw mechanism includes a drive motor, a lead screw, a guide rail, and a slider. The guide rail is fixedly mounted on the frame, and the slider is slidably mounted on the guide rail. The lead screw and the slider are threadedly connected.

[0007] The tape feeding mechanism includes a connecting seat, a tape tray and multiple tape rollers. The connecting seat is fixed on the slider, and the tape rollers are located below the tape tray. After the tape is drawn out from the tape tray, it is wound around the tape rollers in sequence to form a tape feeding path.

[0008] The tape pressing mechanism is located on the connecting seat and includes a second cylinder, a pressure roller seat and a rubber-coated roller. The output end of the second cylinder is connected to the pressure roller seat, and the rubber-coated roller is rotatably mounted on the pressure roller seat. The rubber-coated roller is located above the tape feeding path.

[0009] The scissor mechanism is mounted on the connecting seat and located on the side of the tape feeding path, and includes multiple cylinders and a scissor assembly driven by the cylinders;

[0010] The head half-shear mechanism is located on the opposite side of the scissor mechanism and fixed on the frame, and is located at the rear end of the tape feeding path. It includes multiple cylinders and a half-shear assembly driven by the cylinders.

[0011] Furthermore, the tape feeding mechanism also includes a swing plate and a first cylinder. One end of the swing plate is rotatably mounted on the connecting seat, and the other end is a free end. Multiple tape rollers and rubber-coated rollers are provided on the swing plate along the tape feeding path. The first cylinder is mounted on the connecting seat, and the output end of the first cylinder is connected to the free end of the swing plate.

[0012] Furthermore, the tape pressing mechanism also includes a pressure roller base plate, which is fixed on the connecting seat; the second cylinder is inclinedly disposed on the pressure roller base plate, and the rubber-coating roller of the tape pressing mechanism is located in front of the rubber-coating roller of the tape feeding mechanism along the tape feeding path.

[0013] Furthermore, the scissor mechanism includes a third cylinder, a fourth cylinder, a fifth cylinder, and a scissor assembly. The third cylinder is inclinedly mounted on the connecting seat, the fourth cylinder is located below the third cylinder, and the output end of the fourth cylinder is perpendicular to the direction of the conveyor belt feeding path. The fifth cylinder is located below the fourth cylinder, and the output end of the fifth cylinder is connected to the scissor assembly, and the output end of the fifth cylinder is opposite to the output end of the fourth cylinder.

[0014] Furthermore, the head half-shear mechanism includes a sixth cylinder, a seventh cylinder, an eighth cylinder, and a half-shear assembly. The sixth cylinder is mounted on the frame, and its output end is perpendicular to the direction of the conveyor belt feeding path. The seventh cylinder is inclined above the sixth cylinder via a pad block, and the eighth cylinder is positioned above the seventh cylinder. The output end of the eighth cylinder is connected to the half-shear assembly, and its output end is opposite to that of the seventh cylinder.

[0015] Furthermore, the tape tray includes a tape and a tape seat. The tape seat is rotatably disposed above the connecting seat. The tape seat is provided with multiple pressure blocks distributed circumferentially. At least one tape roller is also provided between the tape tray and the swing plate.

[0016] Furthermore, a cable chain is provided between the frame and the slider. The cable chain is arranged along the extension direction of the guide rail. One end of the cable chain is fixed to the slider by a cable chain fixing plate, and the other end is fixed to the frame.

[0017] Furthermore, a proximity switch is provided on the side of the slider, and a trigger element that cooperates with the proximity switch is fixed on the frame. The trigger element is located at the rear end of the guide rail.

[0018] Furthermore, a touch screen and pressure regulating valve are located on the top of the rack, an electrical box and solenoid valve are located below, and a button assembly is located on the side.

[0019] After adopting the above technical solution, the present invention has the following positive effects:

[0020] (1) By setting a head half-cutting mechanism, the present invention enables the tape to be partially cut at the end of the application while maintaining the continuity of the remaining part, thereby meeting the production process requirements for the half-cutting structure and overcoming the defect of the prior art that can only cut as a whole and cannot achieve partial cutting.

[0021] (2) The present invention arranges the multi-stage cylinders of the scissor mechanism and the head half-scissor mechanism in a spatial layer to achieve the coordination of compound actions in different directions, so that each drive mechanism can complete multi-directional linkage control in a limited space. The structure is compact, reducing interference between mechanisms and improving the stability and coordination of equipment operation. Attached Figure Description

[0022] Figure 1 This is a front perspective view of the overall structure of the present invention;

[0023] Figure 2 This is a side perspective view of the overall structure of the present invention;

[0024] Figure 3 This is a bottom view of the present invention;

[0025] Figure 4 This is a schematic diagram of the tape feeding mechanism and tape pressing mechanism of the present invention;

[0026] Figure 5 This is a schematic diagram of the tape feeding mechanism and the scissor mechanism of the present invention;

[0027] Figure 6 This is a schematic diagram of the tape feeding mechanism and the head half-shear mechanism of the present invention;

[0028] 1. Rack; 101. Touch screen; 102. Pressure regulating valve; 103. Electrical box; 104. Solenoid valve; 105. Button assembly;

[0029] 2. Lead screw mechanism; 21. Drive motor; 22. Lead screw; 23. Guide rail; 24. Slider;

[0030] 3. Belt feeding mechanism; 31. Connecting seat; 32. Belt tray; 321. Belt holder; 33. Pressing block; 34. Swing plate; 35. First cylinder;

[0031] 4. Tape pressing mechanism; 41. Second cylinder; 42. Pressure roller seat; 43. Pressure roller base plate;

[0032] 5. Scissors mechanism; 51. Third cylinder; 52. Fourth cylinder; 53. Fifth cylinder; 54. Scissors assembly;

[0033] 6. Head half-shear mechanism; 61. Sixth cylinder; 62. Seventh cylinder; 63. Eighth cylinder; 64. Half-shear assembly;

[0034] 71 Tape roller; 72 Rubber-coated roller; 8 Cable chain; 91 Proximity switch; 92 Trigger; 10 Tape. Detailed Implementation

[0035] The technical solution of the present invention will be further described in detail below with reference to specific embodiments and accompanying drawings. However, the present invention is not limited to the following embodiments.

[0036] To facilitate the explanation of the relative positions and directions of movement between the various mechanisms, a spatial orientation description is established based on frame 1: the direction extending along the length of the conveyor belt is defined as the front-back direction of the equipment; the direction perpendicular to the front-back direction and located within the horizontal plane of frame 1 is defined as the left-right direction; and the direction perpendicular to the bottom support plane of frame 1 is defined as the up-down direction. The front-back, left-right, and up-down positional relationships of each mechanism described below are all based on the above spatial orientation definitions.

[0037] like Figure 1 As shown, an automatic tape-applying fixture includes a frame 1, a lead screw mechanism 2, a tape feeding mechanism 3, a tape pressing mechanism 4, a scissor mechanism 5, and a head half-scissor mechanism 6. In this embodiment, the tape 10 is a thick tape with a substrate film, comprising an adhesive layer and a plastic substrate film laminated with the adhesive layer. The tape 10 has an overall strip-shaped wound structure. The strip-shaped product to be taped is fixedly mounted on a fixed base above the frame 1. The fixed base has a positioning groove that matches the shape of the strip-shaped product. The strip-shaped product is embedded in the positioning groove and arranged along the extension direction of the guide rail 23. The tape 10 is applied to the surface of the strip-shaped product from top to bottom.

[0038] like Figure 1 and Figure 2 As shown, the lead screw mechanism 2 includes a drive motor 21, a lead screw 22, a guide rail 23, and a slider 24. The guide rail 23 is fixedly mounted on the frame 1, and the slider 24 is slidably mounted on the guide rail 23. The lead screw 22 and the slider 24 are threadedly connected. When the drive motor 21 drives the lead screw 22 to rotate, since the slider 24 and the lead screw 22 are connected by a threaded pair, under the guidance and constraint of the guide rail 23, the slider 24 performs linear reciprocating motion along the extension direction of the guide rail 23, thereby driving the tape feeding mechanism 3 and the tape pressing mechanism 4, etc., fixed on the slider 24, to move synchronously.

[0039] like Figure 1and Figure 4 As shown, the tape feeding mechanism 3 includes a connecting seat 31, a tape tray 32, and multiple tape rollers 71. The connecting seat 31 is fixed on the slider 24, and the tape rollers 71 are located below the tape tray 32. After the tape 10 is drawn out from the tape tray 32, it is sequentially wound around the tape rollers 71 to form a tape feeding path. Furthermore, the tape feeding mechanism 3 also includes a swing plate 34 and a first cylinder 35. One end of the swing plate 34 is rotatably mounted on the connecting seat 31, and the other end is a free end. Multiple tape rollers 71 and rubber-coated rollers 72 are arranged on the swing plate 34 along the tape feeding path. The first cylinder 35 is mounted on the connecting seat 31, and the output end of the first cylinder 35 is connected to the free end of the swing plate 34. The tape reel 32 includes a tape 10 and a tape holder 321. The tape holder 321 is rotatably mounted above the connecting seat 31. The tape holder 321 has multiple circumferentially distributed pressure blocks 33 for circumferentially limiting the tape 10 wound on the tape holder 321, ensuring the stability of the winding structure during unwinding. At least one tape roller 71 is also provided between the tape reel 32 and the swing plate 34. The swing plate 34 has an arm-shaped structure. When the first cylinder 35 extends or retracts, it drives the swing plate 34 to swing around its rotating end, thereby adjusting the path state of the tape 10.

[0040] In this embodiment, two rubber-coated rollers 72 are provided on the swing plate 34, and one rubber-coated roller 72 is located between the swing plate 34 and the tape tray 32. The rubber-coated rollers 72 are distributed along the feeding path of the tape 10, so that the tape 10 can be supported at multiple points to maintain the stability of the feeding path. The rubber-coated rollers 72 are used to guide the tape 10 to be applied, so that the tape 10 maintains a stable application posture before entering the tape pressing mechanism 4. The tape roller 71 is a rotating roller structure with a rolling bearing inside. The outer circumference of the tape roller 71 is provided with an annular groove to accommodate and limit the tape 10. The rubber-coated roller 72 is a cylindrical roller structure, which is rotatably mounted on the swing plate 34 through a shaft. The outer surface of the roller is a smooth cylindrical surface structure.

[0041] The tape pressing mechanism 4 is mounted on the connecting seat 31 and includes a second cylinder 41, a pressure roller seat 42, and a rubber-coated roller 72. The output end of the second cylinder 41 is connected to the pressure roller seat 42. The rubber-coated roller 72 is rotatably mounted on the pressure roller seat 42 and is located above the feeding path of the tape 10. The extension and retraction of the second cylinder 41 drives the pressure roller seat 42 to move the rubber-coated roller 72 closer to or away from the feeding path of the tape 10, so that the rubber-coated roller 72 applies a pressing force to the tape 10 in the working state and forms a pressing contact with the surface of the strip product. The pressure roller seat 42 is used to install and support the rubber-coated roller 72 and provide relatively stable rotational support, so that the rubber-coated roller 72 can rotate freely during the pressing process to adapt to the continuous supply of tape 10.

[0042] Furthermore, the tape pressing mechanism 4 also includes a pressure roller base plate 43, which is fixed to the connecting seat 31. A second cylinder 41 is inclinedly mounted on the pressure roller base plate 43. The pressure roller base plate 43 provides an installation reference for the second cylinder 41 and improves the overall assembly stability of the tape pressing mechanism 4. The second cylinder 41 is inclined on the pressure roller base plate 43, so that the direction of movement of the output end of the second cylinder 41 forms an angle with respect to the feeding path of the tape 10. This allows the pressure roller seat 42 and the rubber-coated roller 72 to simultaneously have a vertical pressing component and a following component along the feeding direction of the tape 10 during the pressing process, facilitating the matching of the pressing posture of the rubber-coated roller 72 with the running path of the tape 10. Furthermore, the rubber-coated roller 72 of the tape pressing mechanism 4 along the tape feeding path is located in front of the rubber-coated roller 72 of the tape feeding mechanism 3.

[0043] like Figure 1 and Figure 5 As shown, the scissor mechanism 5 is mounted on the connecting seat 31 and located on the side of the feeding path of the tape 10, including multiple cylinders and a scissor assembly 54 driven by the cylinders. Further, the multiple cylinders include a third cylinder 51, a fourth cylinder 52, and a fifth cylinder 53. The third cylinder 51 is inclined on the connecting seat 31, the fourth cylinder 52 is located below the third cylinder 51, and the output end of the fourth cylinder 52 is perpendicular to the feeding path direction of the tape 10. The fifth cylinder 53 is located below the fourth cylinder 52, and the output end of the fifth cylinder 53 is connected to the scissor assembly 54, with the output end of the fifth cylinder 53 opposite to the output end of the fourth cylinder 52.

[0044] The arrangement of the multiple cylinders is used to adjust the posture and position of the scissor assembly 54 in stages. The third cylinder 51 is arranged in an inclined direction, and the direction of movement of its output end forms an angle similar to the extension direction of the feeding path of the conveyor belt 10. This allows the scissor assembly 54 to move in a direction that is basically consistent with the running direction of the conveyor belt 10 when it moves towards the cutting station. This ensures that the scissor assembly 54 maintains a directional matching relationship with the feeding path of the conveyor belt 10 during the process of entering the cutting area. This facilitates the position adjustment of the scissor assembly 54 along the feeding direction and improves the alignment accuracy of the cutting position. Simultaneously, it avoids assembly interference between the scissor assembly 54 and surrounding components of the tape feeding path within a limited space; the output end of the fourth cylinder 52 is perpendicular to the feeding path of the tape 10, giving the scissor assembly 54 a lateral entry and exit structural basis relative to the tape 10 feeding path, allowing the scissor assembly 54 to step into or exit the cutting plane of the tape 10 during cutting; the fifth cylinder 53 is located below the fourth cylinder 52 and its output end is connected to the scissor assembly 54, while the output end of the fifth cylinder 53 is opposite to that of the fourth cylinder 52, enabling the scissor assembly 54 to achieve a compound drive cooperation in opposite directions based on the feed formed by the fourth cylinder 52, thus making the switching between the cutting position and the retraction position of the scissor assembly 54 smoother and facilitating precise matching with the relative position of the tape 10 feeding path. The scissor assembly 54 can adopt a common scissor-type blade structure or a guillotine-type structure, with its installation direction matching the tape 10 feeding path to achieve overall cutting of the tape 10.

[0045] like Figure 1 and Figure 6 As shown, the head half-cutting mechanism 6 is located on the opposite side of the scissor mechanism 5 and fixed on the frame 1, and is located at the rear end of the tape 10 feeding path. It is used to perform half-cutting on the tape 10 in the rear end area after the tape 10 is attached. In this embodiment, "half-cutting" means cutting or slicing the adhesive layer of the tape 10, while keeping the plastic substrate film laminated with the adhesive layer in a continuous state without being completely cut off, thereby forming a pre-cut at the rear end while the tape 10 remains continuous. To achieve the above half-cutting, the half-scissor assembly 64 can adopt a blade structure with a cutting depth limitation. For example, a predetermined gap can be set between the blade and the cutting surface, or the cutting depth of the blade can be limited by a limiting surface / limiting block, so that the blade only cuts into the thickness range of the adhesive layer without penetrating the plastic substrate film when closed; or the half-scissor assembly 64 can adopt a structure in which the upper blade and the lower cutting part cooperate, the lower cutting part is a rigid support surface, and the stroke of the upper blade is constrained by the stroke of the drive cylinder and the limiting of the mechanism to ensure that the half-cutting depth is stable and consistent.

[0046] Furthermore, the head half-scissor mechanism 6 includes multiple cylinders and a half-scissor assembly 64 driven by the cylinders. The multiple cylinders include a sixth cylinder 61, a seventh cylinder 62, and an eighth cylinder 63. The sixth cylinder 61 is mounted on the frame 1, and the output end of the sixth cylinder 61 is perpendicular to the feeding path direction of the conveyor belt 10, so that the half-scissor assembly 64 has an entry and exit base that corresponds laterally to the feeding path when it is close to or away from the feeding path of the conveyor belt 10. The seventh cylinder 62 is tilted above the sixth cylinder 61 via a pad, causing its output movement direction to have an inclined component. This creates an angle between the output movement direction and the extension direction of the conveyor belt 10's feeding path. This allows the half-scissor assembly 64 to move in a direction substantially consistent with the conveyor belt 10's running direction as it moves towards the half-scissor station. This ensures the half-scissor assembly 64 maintains a matching relationship with the conveyor belt 10's movement direction when entering the end area of ​​the feeding path, facilitating the alignment of the half-scissor position and the stable execution of the half-scissor action. It also helps avoid surrounding components of the conveyor belt feeding path within a limited space and forms a suitable relative angle with the rear end of the strip-shaped product. The eighth cylinder 63 is positioned above the seventh cylinder 62, and its output end is connected to the half-scissor assembly 64. The output end of the eighth cylinder 63 is opposite to that of the seventh cylinder 62, enabling the half-scissor assembly 64 to achieve a compound drive in opposite directions based on the position formed by the seventh cylinder 62. This further coordinates the opening, closing, and retraction actions of the half-scissor assembly 64 before and after the half-scissor action with the spatial relationship of the feeding path. Through the above-mentioned combination of multiple cylinders, the half-scissor assembly 64 can achieve stable half-scissor action in the rear end area of ​​the conveyor belt 10 feeding path, and form a relatively independent and coordinated layout with the overall shearing station of the scissor mechanism 5.

[0047] like Figure 1 As for Figure 3 As shown, a cable chain 8 is provided between the frame 1 and the slider. The cable chain 8 is arranged along the extension direction of the guide rail 23. One end of the cable chain 8 is fixed to the slider 24 by a cable chain fixing plate, and the other end is fixed to the frame 1. The cable chain 8 is composed of multiple chain links that can be rotatably connected. It forms a flexible section between the frame 1 and the slider 24 to guide and constrain the cable harness and air pipe that reciprocate with the slider 24. This ensures that the cable harness and air pipe are always within the chain link channel of the cable chain 8 as the slider 24 moves along the guide rail 23, and their direction changes in an orderly manner as the flexible section of the cable chain 8 unfolds or retracts. This prevents the cable harness and air pipe from getting tangled, dragged, or interfering with moving parts such as the lead screw 22 and the guide rail 23 during movement.

[0048] A proximity switch 91 is provided on the side of the slider 24, and a trigger 92 that cooperates with the proximity switch 91 is fixed on the frame 1. The trigger 92 is located at the rear end of the guide rail 23. When the slider 24 moves to a preset position, the proximity switch 91 and the trigger 92 cooperate to generate a detection signal for identification of the corresponding position.

[0049] The frame 1 has a touch screen 101 and a pressure regulating valve 102 on top, an electrical box 103 and a solenoid valve 104 below, and a button assembly 105 on the side. The touch screen 101 is used to set and display the equipment's operating parameters and for human-machine interaction regarding the equipment's operating status. The pressure regulating valve 102 is connected to the equipment's pneumatic system and is used to regulate and stabilize the air pressure entering each cylinder. The electrical box 103 contains an electrical control assembly that is electrically connected to the drive motor 21, proximity switch 91, and touch screen 101, enabling the integration of the equipment's electrical connections and control circuits. The solenoid valve 104 is connected to the air source and the inlet and outlet ports of each cylinder, controlling the on / off of air supply and exhaust for each cylinder. The button assembly 105, located on the side of the frame 1, provides manual input for equipment start / stop, reset, and emergency stop, facilitating on-site operation and maintenance.

[0050] The specific embodiments described above further illustrate the purpose, technical solution, and beneficial effects of the present invention. It should be understood that the above descriptions are merely specific embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. An automatic tape applicator, comprising a frame (1), a lead screw mechanism (2), a tape feeding mechanism (3), a tape pressing mechanism (4), a scissor mechanism (5), and a head half-scissor mechanism (6), characterized in that: The lead screw mechanism (2) includes a drive motor (21), a lead screw (22), a guide rail (23) and a slider (24). The guide rail (23) is fixedly mounted on the frame (1), and the slider (24) is slidably mounted on the guide rail (23). The lead screw (22) and the slider (24) are threadedly connected. The tape feeding mechanism (3) includes a connecting seat (31), a tape tray (32) and multiple tape rollers (71). The connecting seat (31) is fixed on the slider (24), and the tape rollers (71) are located below the tape tray (32). The tape (10) is drawn out from the tape tray (32) and then wound around the tape rollers (71) to form a tape (10) feeding path. The tape pressing mechanism (4) is located on the connecting seat (31) and includes a second cylinder (41), a pressure roller seat (42) and a rubber-coated roller (72). The output end of the second cylinder (41) is connected to the pressure roller seat (42). The rubber-coated roller (72) is rotatably located on the pressure roller seat (42) and is located above the tape (10) feeding path. The scissor mechanism (5) is located on the connecting seat (31) and on the side of the feeding path of the tape (10), including multiple cylinders and a scissor assembly (54) driven by the cylinders. The head half-scissor mechanism (6) is located on the opposite side of the scissor mechanism (5) and fixed on the frame (1), and is located at the rear end of the conveyor belt (10) feeding path, including multiple cylinders and a half-scissor assembly (64) driven by the cylinders.

2. The tooling equipment for automatically applying adhesive tape according to claim 1, characterized in that: The tape feeding mechanism (3) further includes a swing plate (34) and a first cylinder (35). One end of the swing plate (34) is rotatably mounted on the connecting seat (31), and the other end is a free end. Multiple tape rollers (71) and rubber-coated rollers (72) are provided on the swing plate (34) along the tape (10) feeding path. The first cylinder (35) is mounted on the connecting seat (31), and the output end of the first cylinder (35) is connected to the free end of the swing plate (34).

3. The tooling equipment for automatically applying adhesive tape according to claim 2, characterized in that: The tape pressing mechanism (4) also includes a pressure roller base plate (43), which is fixed on the connecting seat (31); the second cylinder (41) is inclined on the pressure roller base plate (43), and the rubber-coated roller (72) of the tape pressing mechanism (4) along the tape feeding path is located in front of the rubber-coated roller (72) of the tape feeding mechanism (3).

4. The tooling equipment for automatically applying adhesive tape according to claim 1, characterized in that: The scissor mechanism (5) includes a third cylinder (51), a fourth cylinder (52), a fifth cylinder (53), and a scissor assembly (54). The third cylinder (51) is inclined on the connecting seat (31). The fourth cylinder (52) is located below the third cylinder (51), and the output end of the fourth cylinder (52) is perpendicular to the feeding path of the conveyor belt (10). The fifth cylinder (53) is located below the fourth cylinder (52), and the output end of the fifth cylinder (53) is connected to the scissor assembly (54). The output end of the fifth cylinder (53) is opposite to the output end of the fourth cylinder (52).

5. The tooling equipment for automatically applying adhesive tape according to claim 1, characterized in that: The head half-shear mechanism (6) includes a sixth cylinder (61), a seventh cylinder (62), an eighth cylinder (63), and a half-shear assembly (64). The sixth cylinder (61) is mounted on the frame (1), and the output end of the sixth cylinder (61) is perpendicular to the feeding path of the conveyor belt (10). The seventh cylinder (62) is inclined above the sixth cylinder (61) through a pad, and the eighth cylinder (63) is mounted above the seventh cylinder (62). The output end of the eighth cylinder (63) is connected to the half-shear assembly (64), and the output end of the eighth cylinder (63) is opposite to the output end of the seventh cylinder (62).

6. The tooling equipment for automatically applying adhesive tape according to claim 2, characterized in that: The tape tray (32) includes a tape (10) and a tape seat (321). The tape seat (321) is rotatably disposed above the connecting seat (31). The tape seat (321) is provided with a plurality of pressure blocks (33) distributed circumferentially. At least one tape roller (71) is also provided between the tape tray (32) and the swing plate (34).

7. The tooling equipment for automatically applying adhesive tape according to claim 1, characterized in that: A drag chain (8) is provided between the frame (1) and the slider. The drag chain (8) is arranged along the extension direction of the guide rail (23). One end of the drag chain (8) is fixed to the slider (24) by the drag chain fixing plate, and the other end is fixed to the frame (1).

8. The tooling equipment for automatically applying adhesive tape according to claim 1, characterized in that: The slider (24) is provided with a proximity switch (91) on its side, and a trigger (92) that cooperates with the proximity switch (91) is fixed on the frame (1). The trigger (92) is located at the rear end of the guide rail (23).

9. The tooling equipment for automatically applying adhesive tape according to claim 1, characterized in that: The frame (1) is equipped with a touch screen (101) and a pressure regulating valve (102) on the top, an electrical box (103) and a solenoid valve (104) on the bottom, and a button assembly (105) on the side.