Tape splicing module
Through the combined design of floating components and drive components, the adaptability problem of the tape connecting mechanism to the elliptical barrel is solved, ensuring that the cut-off components can effectively tighten the tape and improve the equipment yield.
Patent Information
- Application Number
- CN202421928207.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-08
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2034-08-08
AI Technical Summary
The existing tape-linking mechanism cannot adapt to the elliptical barrel, resulting in the tape-linking failure and affecting the equipment yield.
The combination design of floating components and drive components is adopted. When the floating plate slides along the guide rail, the elastic member deforms and generates elastic force, driving the cutting component to adapt to the shape of the barrel or roll to ensure that the cutting component can effectively tighten the material belt.
It realizes adaptability to elliptical barrels or other shapes of material rolls during the tape connection process, avoids failure of tape connection and improves equipment yield.
Smart Images

Figure CN223175436U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of automatic tape splicing for tape, and particularly relates to a splicing module. Background Art
[0002] In the processing of batteries, packaging and other industrial fields, a tape splicing mechanism is required to cut the tape.
[0003] In the existing tape splicing mechanism, during the tape splicing process, when an elliptical bobbin or an elliptical tape roll appears, the automatic tape splicing cannot adapt to the elliptical bobbin, resulting in tape splicing failure, thereby affecting the equipment yield. Summary of the Utility Model
[0004] The main object of the utility model is to propose a splicing module, aiming to solve the problem that the existing splicing mechanism cannot adapt to an elliptical bobbin automatically, resulting in tape splicing failure.
[0005] To achieve the above object, the splicing module proposed by the utility model is applied to tape splicing. The splicing module includes:
[0006] A floating component, including a floating plate, an elastic member and a guide rail. The floating plate is slidably arranged on the guide rail. The floating plate is fixedly provided with a pushing portion connected to the elastic member. When the floating plate moves along the guide rail, the pushing portion deforms the elastic member;
[0007] A driving component, fixedly arranged on the floating plate; and
[0008] A cutting component, capable of cutting the tape and drivingly connected to the driving component. The driving component can drive the cutting component to rotate; when the driving component drives the cutting component to contact the tape, the cutting component can move the driving component and the floating plate along the guide rail under the reaction force of the tape. The floating plate deforms the elastic member, and the elastic force generated by the deformation of the elastic member can make the driving component have a tendency to move towards the tape, so that the cutting component presses the tape against the bobbin.
[0009] In an embodiment, the floating component further includes an abutting end. One end of the elastic member abuts against the floating plate, and the other end abuts against the abutting end;
[0010] Two groups of the elastic members and the abutting ends are provided. The two groups of elastic members are used to make the floating plate located at a preset position;
[0011] When the floating plate moves along the guide rail, one of the two groups of elastic members is compressed.
[0012] In one embodiment, the elastic member is configured as a spring, and the floating assembly further includes two mounting rods. The two mounting rods are mounted on the floating assembly, and the two mounting rods slidably pass through the floating plate. The two springs are respectively sleeved on the two mounting rods.
[0013] In one embodiment, the floating assembly further includes two limiting plates. The two limiting plates are respectively fixed at both ends of the guide rail. The abutting end is disposed on the limiting plate, and the two mounting rods are respectively fixed on the two limiting plates.
[0014] In one embodiment, the floating plate includes a plate body and a connecting plate fixedly connected to each other. The plate body is slidably disposed on the guide rail and is used for mounting the driving assembly. The two mounting rods slidably pass through the connecting plate;
[0015] The pushing portion is configured as a connecting plate.
[0016] In one embodiment, the plate body and the connecting plate are connected by means of screw locking.
[0017] In one embodiment, two connecting plates are configured. The two connecting plates are located between the two groups of springs, and the two mounting rods respectively slidably pass through the two connecting plates.
[0018] In one embodiment, the floating assembly further includes a fixing bolt, and the fixing bolt is used to fix the mounting rod on the limiting plate.
[0019] In one embodiment, the cutting assembly includes a roller mechanism and a cutter mechanism. The cutter mechanism is mounted on the roller mechanism. The roller mechanism is used to press against the material tape, and the roller mechanism is drivingly connected to the driving assembly.
[0020] In one embodiment, the tape connecting module further includes a swing arm. The roller mechanism is mounted on the swing arm, and the swing arm is drivingly connected to the driving assembly; and / or
[0021] The driving assembly is configured as a driving motor.
[0022] The technical solution of the present utility model is to install the driving component on the floating plate, and the floating plate can slide along the guide rail. When the floating plate moves along the guide rail, the elastic member deforms. Since the floating plate is connected to the elastic plate, the elastic force generated by the deformation of the elastic member can act on the floating plate at this time; specifically, when the cutting component presses the tape against the cartridge or the tape reel, the cutting component can act on the driving component under the reaction force of the tape and the cartridge or the tape reel. Since the driving component is fixedly arranged on the floating plate, the reaction force can also act on the floating plate at this time. When the floating plate moves along the guide rail under the reaction force and the elastic member deforms, the elastic force generated by the deformation of the elastic member can push the floating plate and the driving component fixedly arranged on the floating plate, thereby pushing the cutting component to press the tape tightly. When the shape of the cartridge or the tape reel is elliptical or other shapes with insufficient roundness, under the action of the elastic member in the floating component, the floating plate and the driving component have a tendency to move towards the tape, so that the cutting component adapts to the structure of the cartridge or the tape reel, thereby enabling the cutting component to press the tape tightly and avoiding the problem that the cutting component cannot receive the tape due to insufficient roundness of the shape of the cartridge or the tape reel. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] In order to more clearly illustrate the technical solutions in the embodiments of the present utility model or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the following drawings are only some embodiments of the present utility model. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on the structures shown in these drawings.
[0024] Figure 1 It is a schematic structural diagram of an embodiment of a tape receiving module and a cartridge provided by the present utility model;
[0025] Figure 2 is Figure 1 a schematic structural diagram of the floating component in
[0026] Explanation of the reference numerals in the drawings:
[0027] 100, floating component; 110, floating plate; 111, pushing portion; 112, plate body; 113, connecting plate; 120, elastic member; 130, guide rail; 140, abutting end; 150, mounting rod; 160, limiting plate; 170, fixing bolt; 180, sliding seat;
[0028] 200, driving component;
[0029] 300, cutting component; 310, roller mechanism; 320, cutter mechanism;
[0030] 400, swing arm;
[0031] 500, Barrel;
[0032] 600, Tape.
[0033] The realization, functional features and advantages of the present utility model will be further described with reference to the embodiments and the accompanying drawings. Detailed Embodiment
[0034] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described with reference to the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without making creative efforts belong to the scope of protection of the present utility model.
[0035] It should be noted that if there are directional indications (such as up, down, left, right, front, back...) involved in the embodiments of the present utility model, the directional indications are only used to explain the relative positional relationship and movement conditions between components in a specific posture. If the specific posture changes, the directional indications will also change accordingly.
[0036] In addition, if there are descriptions such as "first", "second", etc. involved in the embodiments of the present utility model, the descriptions of "first", "second", etc. are only for descriptive purposes and cannot be understood as indicating or implying their relative importance or implicitly indicating the quantity of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include at least one such feature. In addition, if "and / or" or "and / or" appears throughout the text, its meaning includes three parallel solutions. Taking "A and / or B" as an example, it includes solution A, solution B, or a solution where A and B are satisfied simultaneously. In addition, the technical solutions between various embodiments can be combined with each other, but it must be based on the ability of those of ordinary skill in the art to implement. When the combination of technical solutions results in contradictions or cannot be implemented, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection required by the present utility model.
[0037] In the processing of batteries, packaging and other industrial fields, a tape splicing mechanism needs to be applied to cut the tape.
[0038] In the existing tape splicing mechanism, during the tape splicing process, when an elliptical barrel or an elliptical tape roll appears, the automatic splicing cannot adapt to the elliptical barrel, resulting in splicing failure and affecting the equipment yield.
[0039] The present utility model proposes a splicing module applied to tape splicing.
[0040] Please refer to Figure 1 ,Figure 2 , in an embodiment of the present utility model, the tape connecting module includes:
[0041] A floating component 100, including a floating plate 110, an elastic member 120 and a guide rail 130. The floating plate 110 is slidably disposed on the guide rail 130. A sliding seat 180 is slidably disposed on the guide rail 130, and the floating plate 110 is fixedly disposed on the sliding seat 180. The floating plate 110 is fixedly provided with a pushing portion 111 connected to the elastic member 120. When the floating plate 110 moves along the guide rail 130, the pushing portion 111 deforms the elastic member 120. Specifically, in this embodiment, when the floating plate 110 moves along the guide rail 130, the pushing portion 111 squeezes the elastic member 120, and the elastic member 120 is compressed. Further, when the floating plate 110 moves along the guide rail 130, it can squeeze the elastic member 120. At this time, the elastic force generated by the squeezed elastic member 120 can act on the floating plate 110 through the pushing portion 111. Further, the pushing portion 111 may be the outer side wall of the floating plate 110. However, this design is not limited thereto. In other embodiments, when the floating plate 110 moves along the guide rail 130, the elastic member 120 may also be deformed by being pulled. Specifically, the pushing portion 111 is connected to the elastic member 120. When the floating plate 110 drives the pushing portion 111 to move, the pushing portion 111 can apply a pulling force to the elastic member 120, causing the elastic member 12 to be deformed by the pulling force.
[0042] A driving component 200, fixedly disposed on the floating plate 110. Thus, when the floating plate 110 moves along the guide rail 130, the driving component 200 can move along the guide rail 130. At the same time, the elastic force generated by the elastic member 120 can also act on the driving component 200 through the floating plate 110.
[0043] The cutting component 300 can cut the strip 600 and is drivingly connected to the driving component 200. The driving component 200 can drive the cutting component 300 to rotate. When the driving component 200 drives the cutting component 300 to contact the strip 600, the cutting component 300 can, under the reaction force of the strip 600, cause the driving component 200 and the floating plate 110 to move. The floating plate 110 deforms the elastic member 120, and the elastic force generated by the deformation of the elastic member 120 can cause the driving component 200 to have a tendency to move towards the strip 600, so that the cutting component 300 presses the strip 600 against the bobbin 500. Specifically, when splicing the strip, the driving component 200 drives the cutting component 300 to the bobbin 500 or the coil. At this time, the cutting component 300 abuts against the bobbin or the coil to press the strip 600 against the bobbin 500 or the coil. Then, the cutting component 300 cuts the strip 600 to complete the splicing. During the splicing process, when the driving component 200 drives the cutting component 300 to abut against the strip 600, specifically, the cutting component 300 presses the strip 600 against the bobbin 500 or the coil to realize that the cutting component 300 abuts against the strip 600. At this time, the cutting component 300 can act on the driving component 200 under the reaction forces of the strip 600 and the bobbin 500 or the coil. Since the driving component 200 is fixedly arranged on the floating plate 110, the reaction force can also act on the floating plate 110 at this time. The floating plate 110 moves along the guide rail 130 under the reaction force, thereby squeezing the elastic member 120. When the elastic member 120 is compressed, its own elastic force can cause the floating plate 110 and the driving component 200 fixedly arranged on the floating plate 110 to have a tendency to move towards the strip 600. In this way, the elastic force generated by the elastic member 120 is transmitted to the cutting component 300 through the floating plate 110 and the driving component 200, and can make the cutting component 300 abut against the strip 600. At the same time, when the shape of the bobbin 500 or the coil is elliptical or other shapes with insufficient roundness, under the action of the elastic member 120 in the floating component 100, the floating plate 110 and the driving component 200 can have a tendency to move towards the strip 600, so that the cutting component 300 abuts against the strip 600, avoiding the problem that the cutting component 300 cannot splice the strip due to the insufficient roundness of the shape of the bobbin 500 or the coil.
[0044] The technical solution of the present utility model is to install the driving component 200 on the floating plate 110, and the floating plate 110 can slide along the guide rail 130. When the floating plate 110 moves along the guide rail 130, the elastic member 120 deforms. Since the floating plate 110 is connected to the elastic plate, the elastic force generated by the deformation of the elastic member 120 can act on the floating plate 110 at this time; specifically, when the cutting component 300 presses the tape 600 against the cartridge 500 or the reel, the cutting component 300 can act on the driving component 200 under the reaction force of the tape 600 and the cartridge 500 or the reel. Since the driving component 200 is fixedly arranged on the floating plate 110, the reaction force can also act on the floating plate 110 at this time. When the floating plate 110 moves along the guide rail 130 under the reaction force and the elastic member 120 deforms, the elastic force generated by the deformation of the elastic member 120 can push against the floating plate 110 and the driving component 200 fixedly arranged on the floating plate 110, so as to push against the cutting component 300, making the cutting component 300 press against the tape 600. When the shape of the cartridge 500 or the reel is elliptical or other shapes with insufficient roundness, under the action of the elastic member 120 in the floating component 100, the floating plate 110 and the driving component 200 have a tendency to move towards the tape 600, so that the cutting component 300 adapts to the structure of the cartridge 500 or the reel, thereby making the cutting component 300 press against the tape 600 and avoiding the problem that the cutting component 300 cannot pick up the tape due to the insufficient roundness of the shape of the cartridge 500 or the reel.
[0045] In an embodiment, the floating component 100 further includes an abutting end 140. One end of the elastic member 120 abuts against the floating plate 110, and the other end abuts against the abutting end 140.
[0046] There are two groups of the elastic member 120 and the abutting end 140. The two groups of the elastic member 120 are used to make the floating plate 110 located at a preset position; the preset position is the position when the cutting component 300 does not abut against the tape 600, that is, in the state where the driving component 200 and the floating plate 110 are not stressed, the two groups of the elastic member 120 can make the floating plate 110 located at the initial position.
[0047] When the floating plate 110 moves along the guide rail 130, one set of the elastic members 120 is compressed. That is, when the cutting assembly 300 abuts against the strip 600, the reaction force of the strip 600 and the cartridge 500 or the reel acts on the cutting assembly 300, and then is transmitted to the driving assembly 200 and the floating plate 110 through the cutting assembly 300. At this time, the floating plate 110 moves along the guide rail 130. When the floating plate 110 moves along the guide rail 130, it can squeeze one set of the elastic members 120. At this time, the elastic force generated by the squeezed elastic member 120 can make the cutting assembly 300 press tightly against the strip 600. After the strip 600 is spliced, the driving assembly 200 drives the cutting assembly 300 to separate from the strip 600. At this time, the compressed elastic member 120 pushes against the floating plate 110, causing it to move towards the uncompressed elastic member 120. The two sets of elastic members 120 cooperate to stabilize the floating plate 110 at the initial position, and at the same time, the driving assembly 200 and the cutting assembly 300 can be located at the initial position. And in this embodiment, under the action of the two sets of elastic members 120, during the movement of the floating plate 110, the two sets of elastic members 120 can better play a shock-absorbing effect on the floating plate 110, thereby preventing the equipment on the floating plate 110 from being affected by vibration.
[0048] In this embodiment, there is no limitation on the elastic member 120. The elastic member 120 can be configured as an elastic ball or an elastic column (not shown). When the elastic member 120 is configured as an elastic ball, a receiving groove is formed in the guide rail 130, and the elastic ball is placed in the receiving groove. At this time, the abutting end 140 is the side wall of the receiving groove. At this time, when the floating plate 110 moves along the guide rail 130, it can squeeze one set of the elastic balls or elastic columns. At this time, the elastic force generated by the deformation of the elastic balls or elastic columns can make the cutting assembly 300 press tightly against the strip 600.
[0049] Further, in this embodiment, referring to Figure 2, the elastic member 120 can also be configured as a spring. When the elastic member 120 is configured as a spring, the floating assembly 100 further includes two mounting rods 150. The two mounting rods 150 are mounted on the floating assembly 100, and the two mounting rods 150 are mounted on the guide rail 130 in the floating assembly 100 and slidably penetrate the floating plate 110. Wherein, in this embodiment, among the two mounting rods 150, the number of the two mounting rods 150 can be set to two, and moreover, the two mounting rods 150 can both be arranged on one guide rail 130. The limitation on the above two mounting rods 150 is not limited to this. In other embodiments, the two mounting rods 150 can be two segments of a single mounting rod 150 exposed outside the floating plate 110. Specifically, a single mounting rod 150 slidably penetrates the floating plate 110, and the two segments of this single mounting rod 150 are exposed outside the floating plate 110. The two groups of springs are respectively sleeved on the two mounting rods 150. In this embodiment, the mounting rod 150 is mounted on the guide rail 130. Specifically, the mounting rod 150 is mounted in the receiving groove of the guide rail 130 in the above embodiment, and one end of the mounting rod 150 is fixedly provided with the groove wall of the receiving groove, and the other end slidably penetrates the floating plate 110; the spring is sleeved on the mounting rod 150, and one end abuts against the abutting end 140, and the other end abuts against the pushing portion 111 in the floating plate 110. At this time, when the floating plate 110 moves, the pushing portion 111 can squeeze the spring to deform the spring, and the elastic force generated by the deformation of the spring can push the pushing portion 111, thereby pushing the floating plate 110, so that the driving assembly 200 provided on the floating plate 1...
[0050] However, this design is not limited to this. In other embodiments, the elastic member 120 can be configured as a gas spring or other structures. When the elastic member 120 is configured as a gas spring, the elastic member 120 itself has a certain rigidity, and the mounting rod 150 can be not provided.
[0051] In one embodiment, referring to Figure 2 , the floating assembly 100 further includes two limiting plates 160. The two limiting plates 160 are respectively fixedly provided at both ends of the guide rail 130. The abutting end 140 is provided on the limiting plate 160. The two mounting rods 150 are respectively fixedly provided on the two limiting plates 160. At this time, the spring is sleeved on the mounting rod 150, and one end of the spring abuts against the limiting plate 160, and the other end abuts against the pushing portion 111 of the floating plate 110. In this embodiment, the two mounting rods 150 can be two segments of a single one exposed outside the floating plate 110, or can be two mounting rods 150.
[0052] In one embodiment, referring to Figure 2, the floating plate 110 can also adopt the following structure. The floating plate 110 includes a plate body 112 and a connecting plate 113 fixedly arranged together. The pushing part 111 is configured as the connecting plate 113. The plate body 112 is slidably arranged on the guide rail 130 and is used for installing the driving assembly 200. Two sections of the mounting rods 150 slidably penetrate through the connecting plate 113. At this time, the spring is sleeved on the mounting rod 150, one end of which abuts against the limiting plate 160 and the other end abuts against the connecting plate 113. When the plate body 112 slides along the guide rail 130, its connecting plate 113 can squeeze the elastic member 120, causing the elastic member 120 to deform. When the elastic member 120 deforms, the generated elastic force can push the connecting plate 113. Since the connecting plate 113 is fixedly arranged with the plate body 112, at this time, the pushing force can be transmitted to the plate body 112 through the connecting plate 113, and then act on the driving assembly 200 installed on the plate body 112, so that the driving assembly 200 drives the cutting assembly 300 and the cartridge 500 or the coil to cooperate to tightly abut against the tape 600.
[0053] In one embodiment, the plate body 112 and the connecting plate 113 are connected by screwing. Further, when the plate body 112 and the connecting plate 113 are connected by screwing, it is convenient to install the floating plate 110. However, this design is not limited thereto. In other embodiments, the plate body 112 and the connecting plate 113 can be fixedly arranged by means of a pin shaft or can be fixedly arranged by an integrally formed manner.
[0054] In one embodiment, referring to Figure 2 , two connecting plates 113 are configured. The two connecting plates 113 are located between the two groups of springs. Specifically, since the two connecting plates 113 are arranged between the two groups of springs, when the cutting assembly 300 leaves the tape 600, at this time, the two groups of springs and the two connecting plates 113 cooperate to better adjust the floating plate 110 to the initial position; two sections of the mounting rods 150 respectively and slidably penetrate through the two connecting plates 113. In one embodiment, the mounting rod 150 has a large end, and the large end of the mounting rod 150 is used to limit the connecting plate 113 to prevent the connecting plate 113 from detaching from the mounting rod 150 when the floating plate 110 moves along the guide rail 130.
[0055] In one embodiment, referring to Figure 2 , the floating assembly 100 further includes a fixing bolt 170. The fixing bolt 170 is used to fix the mounting rod 150 to the limiting plate 160. In this way, the mounting rod 150 can be conveniently fixed to the limiting plate 160 through the fixing bolt 170, which is convenient for assembling the floating assembly 100, reduces the assembly difficulty, and at the same time is convenient for disassembling and replacing the spring sleeved on the mounting rod 150.
[0056] In one embodiment, refer to Figure 1 , the cutting assembly 300 includes a roller mechanism 310 and a cutter mechanism 320. The cutter mechanism 320 is installed on the roller mechanism 310. The roller mechanism 310 is used to press against the tape 600. The roller mechanism 310 is drivingly connected to the driving assembly 200. During use, the roller mechanism 310 is driven by the driving assembly 200 to the bobbin 500 or the reel. Then, the roller mechanism 310 presses the tape 600 against the bobbin 500 or the reel. Then, the cutter mechanism 320 cuts the tape 600 to complete the tape connection.
[0057] In one embodiment, refer to Figure 1 , the tape connection module further includes a swing arm 400. The roller mechanism 310 is installed on the swing arm 400. The swing arm 400 is drivingly connected to the driving assembly 200. In this embodiment, the driving assembly 200 drives the roller mechanism 310 to rotate through the swing arm 400, so as to achieve the purpose of driving the driving assembly 200 to drive the cutting assembly 300 to rotate.
[0058] In one embodiment, refer to Figure 1 , the driving assembly 200 is configured as a driving motor. In this embodiment, the connection between the driving motor and the swing arm 400 can be a direct connection or an indirect connection. When the driving motor is directly connected to the swing arm 400, the output end of the driving motor is directly connected to the swing arm 400. When the driving motor is indirectly connected to the swing arm 400, the output end of the driving motor can be indirectly connected to the swing arm 400 through
[0059] a structure. At the same time, when an indirect connection is adopted by using a differential, the driving motor can play a role of speed reduction and torque increase when driving the swing arm 400 to rotate, which is convenient for driving the cutting assembly 300 to rotate.
[0060] The above is only an exemplary embodiment of the present invention, and does not limit the patent scope of the present invention. Any equivalent structural transformation made under the technical concept of the present invention by using the content of the specification and drawings of the present invention, or any direct / indirect application in other related technical fields is included in the patent protection scope of the present invention.
Claims
1. A tape splicing module, characterized in that, Applied to the tape splicing, the splicing module includes: A floating component, including a floating plate, an elastic member, and a guide rail. The floating plate is slidably disposed on the guide rail. The floating plate is fixedly provided with a pushing portion connected to the elastic member. When the floating plate moves along the guide rail, the pushing portion deforms the elastic member; A driving component, fixedly disposed on the floating plate; and A cutting component, capable of cutting the tape and drivingly connected to the driving component. The driving component can drive the cutting component to rotate; when the driving component drives the cutting component to contact the tape, the cutting component can, under the reaction force of the tape, cause the driving component and the floating plate to move along the guide rail, and the floating plate deforms the elastic member. The elastic force generated by the deformation of the elastic member can make the driving component have a tendency to move towards the tape, so that the cutting component presses the tape against the bobbin.
2. The tape splicing module according to claim 1, wherein The floating component further includes an abutting end. One end of the elastic member abuts against the floating plate, and the other end abuts against the abutting end; There are two sets of the elastic members and the abutting ends. The two sets of elastic members are used to position the floating plate at a preset position; When the floating plate moves along the guide rail, one of the two sets of elastic members is compressed.
3. The tape splicing module according to claim 2, wherein, The elastic member is configured as a spring. The floating component further includes two mounting rods. The two mounting rods are mounted on the floating component. The two mounting rods slidably penetrate through the floating plate, and the two springs are respectively sleeved on the two mounting rods.
4. The tape splicing module according to claim 3, wherein The floating component further includes two limiting plates. The two limiting plates are respectively fixedly disposed at both ends of the guide rail. The abutting end is disposed on the limiting plate, and the two mounting rods are respectively fixedly disposed on the two limiting plates.
5. The tape connecting module according to claim 4, wherein The floating plate includes a plate body and a connecting plate fixedly connected thereto. The plate body is slidably disposed on the guide rail and is used for mounting the driving component. The two mounting rods slidably penetrate through the connecting plate; The pushing portion is configured as a connecting plate.
6. The tape splicing module according to claim 5, wherein, The plate body and the connecting plate are connected by screwing.
7. The tape splicing module according to claim 5, wherein There are two connecting plates. The two connecting plates are located between the two sets of springs. The two mounting rods respectively slidably penetrate through the two connecting plates.
8. The tape splicing module according to claim 4, wherein, The floating component further includes a fixing bolt for fixing the mounting rod to the limiting plate.
9. The tape connecting module according to claim 1, wherein, The cutting component includes a roller mechanism and a cutter mechanism. The cutter mechanism is mounted on the roller mechanism. The roller mechanism is used to press the tape against the bobbin, and the roller mechanism is drivingly connected to the driving component.
10. The tape connecting module according to claim 9, characterized in that, The splicing module further includes a swing arm. The roller mechanism is mounted on the swing arm, and the swing arm is drivingly connected to the driving component; and / or The driving component is configured as a driving motor.