Material belt receiving mechanism

Through the coordinated work of multiple modules in the material strip mechanism, the problem of shutdown during material strip replacement is solved, seamless replacement of material strips is achieved, and production efficiency is improved.

CN223341998UActive Publication Date: 2025-09-16SHENZHEN LLMACHINECO LTD
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Patent Information

Application Number
CN202422821082.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-19
Publication Date
2025-09-16
Estimated Expiration
2034-11-19

AI Technical Summary

Technical Problem

In the prior art, the process of replacing the material strip requires stopping the machine to achieve the bonding of the new and old material strips, which affects production efficiency.

Method used

A material splicing mechanism is designed, which includes a fixed pressing module, a movable pressing module, a cutter module, a rotating bonding module and a movable bonding module. Through the coordinated work of these modules, the new material tape and the old material tape can be bonded without stopping the transmission of the old material tape.

Benefits of technology

The material belt can be replaced without stopping the machine, ensuring production continuity and improving production efficiency.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model discloses a material receiving belt mechanism. The material receiving belt mechanism comprises a fixed material pressing module, a movable material pressing module, a cutter module, a rotary attaching module, a movable attaching module and a material storage module. The fixed material pressing module is used for pressing or releasing the first material belt or the second material belt; the movable material pressing module comprises a first material pressing assembly, a second material pressing assembly and a first lifting driver. The first material pressing assembly and the second material pressing assembly are used for pressing or releasing the first material belt and the second material belt correspondingly. The first lifting driver is used for enabling the first pressing assembly or the second pressing assembly to be opposite to the fixed pressing module; the cutter module is used for cutting off the first material belt or the second material belt; the rotary attaching module and the movable attaching module are used for attaching the adhesive tape to the butt joint position of the first material belt and the second material belt. The material storage module is used for storing part of the first material belt or the second material belt. According to the material belt receiving mechanism, the second material belt can be attached to the first material belt under the condition that the first material belt does not stop conveying.
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Description

Technical Field

[0001] The present application relates to the technical field of production equipment, and in particular to a splicing belt mechanism. Background Art

[0002] In the production process of electronic products, some parts are supplied in the form of coils. After the coils are unwound, a tape is laminated onto them. In related art, when the old tape is ready to be unwound, it is cut, and then the beginning of the new tape is bonded to the cut end of the old tape using adhesive tape. However, this bonding process requires the machine to be stopped to allow the old tape to stop being fed, thus affecting production efficiency. Utility Model Content

[0003] The present application aims to solve at least one of the technical problems existing in the prior art. To this end, the present application proposes a tape splicing mechanism that can fit a new tape to an old tape without stopping the transmission of the old tape.

[0004] According to the embodiment of the present application, the splicing belt mechanism includes: a fixed pressing module, a movable pressing module, a cutter module, a rotating bonding module, a movable bonding module and a storage module.

[0005] The fixed pressing module is used to pass the first material belt or the second material belt, and can press or release the first material belt or the second material belt;

[0006] The movable pressing module includes a first pressing assembly, a second pressing assembly, and a first lifting drive. The first pressing assembly and the second pressing assembly are distributed in the height direction. The first pressing assembly is used to pass a first material belt and can press or release the first material belt. The second pressing assembly is used to pass a second material belt and can press or release the second material belt. The first lifting drive drives and connects the first pressing assembly and the second pressing assembly, and is used to drive the first pressing assembly and the second pressing assembly to rise and fall, so that the first pressing assembly or the second pressing assembly is opposite to the fixed pressing module.

[0007] The cutter module is located between the fixed pressing module and the movable pressing module, and is used to cut the first material strip or the second material strip pressed by the fixed pressing module;

[0008] The rotary laminating module is located above the fixed pressing module, and includes a rotary driver, a rotary connecting block, and a rotary vacuum block. The upper end of the rotary vacuum block forms an adsorption surface, and the adsorption surface is used to adsorb the first adhesive tape. The rotary driver drives the rotary connecting block to drive the rotary vacuum block to flip, and the adsorption surface of the rotary vacuum block passes between the fixed pressing module and the movable pressing module.

[0009] The mobile laminating module is located below the fixed pressing module, and includes a second lifting drive and a mobile vacuum block. The mobile vacuum block is located between the fixed pressing module and the movable pressing module. The upper end of the mobile vacuum block is used to place the tape. The second lifting drive drives the mobile vacuum block to move the mobile vacuum block up and down.

[0010] The storage module is used to wind the first material tape or the second material tape and can store part of the first material tape or the second material tape.

[0011] The material splicing mechanism according to the embodiment of the present application has at least the following beneficial effects: when transmitting the first material tape, the positions of the first pressing assembly and the fixed pressing module are relative, and the first material tape passes through the first pressing assembly, the fixed pressing module and the storage module in sequence, and is then output to be attached to the unwound coil carrying parts. The first pressing assembly and the fixed pressing module are in a state of releasing the first material tape, and the storage module stores part of the first material tape. The head of the second material tape is pulled out and passes through the second pressing assembly, and the second pressing assembly presses the second material tape. When the first material tape is about to be used up, the first pressing assembly and the fixed pressing module press the first material tape. Since the storage module stores part of the first material tape, the rear end of the first material tape can continue to be output and used. At the same time, the cutter module cuts off the first material tape between the first pressing assembly and the fixed pressing module. The first lifting drive drives the first and second pressing assemblies to rise together, removing the remaining material from the first strip. The second pressing assembly moves to a position opposite the fixed pressing module, with the tip of the second strip on the second pressing assembly aligned with the cutoff portion of the first strip on the fixed pressing module. Subsequently, the rotary drive rotates the rotating vacuum block via the rotating connecting block, applying the adhesive tape on the rotating vacuum block to the upper side of the junction between the first and second strips. Simultaneously, the second lifting drive drives the movable vacuum block to rise, applying the adhesive tape on the movable vacuum block to the lower side of the junction between the first and second strips. This creates a bond between the first and second strips, and the movable and rotating vacuum blocks cooperate to compress the junction between the first and second strips, securing the adhesive tape securely to the first and second strips. After the first and second strips are bonded, the second pressing assembly and the fixed pressing module release the second and first strips, respectively, allowing the first strip to continue conveying the second strip. Therefore, the material splicing mechanism of the present application can complete the splicing of the first material tape and the second material tape without stopping the machine and while part of the first material tape can continue to be conveyed and used.

[0012] According to some embodiments of the present application, the fixed pressing module includes a third material receiving platform, a third pressing block and a third pressing driver, and the third pressing block and the third material receiving platform are used to pass the first material strip or the second material strip, and the third pressing driver drives the third pressing block to move the third pressing block closer to or away from the third material receiving platform to clamp or release the first material strip or the second material strip.

[0013] According to some embodiments of the present application, the fixed pressing module also includes a third guide shaft and a third connecting block, the third pressing block and the third connecting block are respectively located on the upper and lower sides of the third material receiving platform, and a third guide hole is opened on the third material receiving platform, the third guide shaft passes through the third guide hole and can slide relative to the third guide hole, the upper end of the third guide shaft is connected to the third pressing block, and the lower end of the third guide shaft is connected to the third connecting block, the third pressing driver is arranged at the lower end of the third material receiving platform, and the third pressing driver drives the upper end of the third connecting block to drive the third connecting block to rise and fall.

[0014] According to some embodiments of the present application, the first pressing assembly includes a first material receiving platform, a first pressing block and a first pressing driver, the first pressing block and the first material receiving platform are used to pass the first material strip, and the first pressing driver drives the first pressing block to move the first pressing block closer to or away from the first material receiving platform to clamp or loosen the first material strip.

[0015] According to some embodiments of the present application, the first pressing assembly also includes a first guide shaft and a first connecting block, the first pressing block and the first connecting block are respectively located on the upper and lower sides of the first material receiving platform, a first guide hole is opened on the first material receiving platform, the first guide shaft passes through the first guide hole and can slide relative to the first guide hole, the upper end of the first guide shaft is connected to the first pressing block, the lower end of the first guide shaft is connected to the first connecting block, the first pressing driver is arranged at the lower end of the first material receiving platform, and the first pressing driver drives the upper end of the first connecting block to drive the first connecting block to rise and fall.

[0016] According to some embodiments of the present application, the second pressing assembly includes a second material receiving platform, a second pressing block and a second pressing driver, the second pressing block and the second material receiving platform are used to pass the second material strip, and the second pressing driver drives the second pressing block to move the second pressing block closer to or away from the second material receiving platform to clamp or loosen the second material strip.

[0017] According to some embodiments of the present application, the second pressing assembly also includes a second guide shaft and a second connecting block, the second pressing block and the second connecting block are respectively located on the upper and lower sides of the second material receiving platform, a second guide hole is opened on the second material receiving platform, the second guide shaft passes through the second guide hole and can slide relative to the second guide hole, the upper end of the second guide shaft is connected to the second pressing block, the lower end of the second guide shaft is connected to the second connecting block, the second pressing driver is arranged at the lower end of the second material receiving platform, and the second pressing driver drives the upper end of the second connecting block to drive the second connecting block to rise and fall.

[0018] According to some embodiments of the present application, the cutter module includes a cutter driver and a cutting knife, and the cutter driver drives the cutting knife to move horizontally along the width direction of the fixed pressing module, so that the cutting knife cuts the first material strip or the second material strip fixed by the fixed pressing module.

[0019] According to some embodiments of the present application, the mobile bonding module further includes a first translation driver, which is driven and connected to the second lifting driver to drive the second lifting driver to translate.

[0020] According to some embodiments of the present application, the storage module includes a first guide roller group, a second guide roller group, and a second translation drive, wherein the first guide roller group includes a plurality of first guide rollers, which are distributed in a height direction, the second guide roller group includes a plurality of second guide rollers, which are distributed in a height direction, and the first guide rollers and the second guide rollers are staggered in the height direction, and the second translation drive drives the second guide roller group to move closer to or away from the first guide roller group. Additional aspects and advantages of the present application will be partially given in the description below, and some will become apparent from the description below, or will be understood through practice of the present application. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] The present application is further described below with reference to the accompanying drawings and embodiments, wherein:

[0022] Figure 1 This is a structural diagram of the splicing belt mechanism of an embodiment of the present application;

[0023] Figure 2 for Figure 1 Schematic diagram of the coordination of the fixed pressing module, movable pressing module, cutter module and rotary laminating module;

[0024] Figure 3 for Figure 1 Schematic diagram of the structure of the intermediate storage module;

[0025] Figure 4for Figure 1 Schematic diagram of the structure of the fixed pressing module;

[0026] Figure 5 for Figure 1 Structural diagram of the movable pressing module;

[0027] Figure 6 for Figure 1 Schematic diagram of the structure of the middle cutter module;

[0028] Figure 7 for Figure 1 Schematic diagram of the structure of the rotation and bonding module;

[0029] Figure 8 for Figure 1 Schematic diagram of the structure of the mobile bonding module.

[0030] Reference numerals:

[0031] Fixed pressing module 100, third material receiving platform 110, third pressing block 120, third pressing driver 130, third guide shaft 140, third connecting shaft block 150;

[0032] The movable pressing module 200, the first pressing assembly 210, the first receiving platform 211, the first pressing block 212, the first pressing driver 213, the first guide shaft 214, and the first connecting block 215; the second pressing assembly 220, the second receiving platform 221, the second pressing block 222, the second pressing driver 223, the second guide shaft 224, and the second connecting block 225; and the first lifting driver 230;

[0033] Cutter module 300, cutter driver 310, cutting knife 320;

[0034] Rotating laminating module 400, rotating driver 410, rotating connecting block 420, rotating vacuum block 430, adsorption surface 431;

[0035] Mobile laminating module 500, second lifting drive 510, mobile vacuum block 520, first translation drive 530;

[0036] Storage module 600, first guide roller set 610, first guide roller 611, second guide roller set 620, second guide roller 621, second translation driver 630;

[0037] Correction module 700;

[0038] A first material strip 810 and a second material strip 820 . DETAILED DESCRIPTION

[0039] The following describes in detail embodiments of the present application. Examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present application and are not to be construed as limiting the present application.

[0040] In the description of this application, it should be understood that descriptions involving orientations, such as up, down, front, back, left, right, etc., indicating orientations or positional relationships, are based on the orientations or positional relationships shown in the accompanying drawings. They are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, they cannot be understood as limitations on this application.

[0041] In the description of this application, "several" means more than one, "plurality" means more than two, "greater than," "less than," and "exceed" are understood to exclude the number itself, while "above," "below," and "within" are understood to include the number itself. The use of "first" and "second" in the description is solely for the purpose of distinguishing technical features and should not be construed as indicating or implying relative importance, implicitly specifying the number of the indicated technical features, or implicitly specifying the order of the indicated technical features.

[0042] In the description of this application, unless otherwise clearly defined, terms such as setting, installing, and connecting should be understood in a broad sense, and technicians in the relevant technical field can reasonably determine the specific meanings of the above terms in this application based on the specific content of the technical solution.

[0043] In the description of this application, reference to the terms "one embodiment," "some embodiments," "illustrative embodiments," "examples," "specific examples," or "some examples" means that the specific features, structures, materials, or characteristics described in conjunction with the embodiment or example are included in at least one embodiment or example of this application. In this specification, the schematic representations of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials, or characteristics described can be combined in any appropriate manner in any one or more embodiments or examples.

[0044] Reference Figures 1 to 3 According to the embodiment of the present application, the material splicing belt mechanism includes: a fixed material pressing module 100, a movable material pressing module 200, a cutter module 300, a rotating bonding module 400, a movable bonding module 500 and a material storage module 600.

[0045] Reference Figure 1 The fixed pressing module 100 is used to pass the first material belt 810 or the second material belt 820 and can press or release the first material belt 810 or the second material belt 820;

[0046] Reference Figure 1 and Figure 2 The movable pressing module 200 includes a first pressing assembly 210, a second pressing assembly 220 and a first lifting driver 230. The first pressing assembly 210 and the second pressing assembly 220 are distributed along the height direction. The first pressing assembly 210 is used to pass the first material belt 810 and can press or release the first material belt 810. The second pressing assembly 220 is used to pass the second material belt 820 and can press or release the second material belt 820. The first lifting driver 230 drives the first pressing assembly 210 and the second pressing assembly 220 to drive the first pressing assembly 210 and the second pressing assembly 220 to rise and fall, so that the first pressing assembly 210 or the second pressing assembly 220 is opposite to the fixed pressing module 100.

[0047] Reference Figure 1 The cutter module 300 is located between the fixed pressing module 100 and the movable pressing module 200 and is used to cut the first material strip 810 or the second material strip 820 pressed by the fixed pressing module 100;

[0048] Reference Figure 1 The rotating laminating module 400 is located above the fixed pressing module 100. Figure 7 The rotary laminating module 400 includes a rotary driver 410, a rotary connecting block 420, and a rotary vacuum block 430. The upper end of the rotary vacuum block 430 forms a suction surface 431, which is used to suck the first adhesive tape. The rotary driver 410 drives the rotary connecting block 420 to drive the rotary vacuum block 430 to flip. The suction surface 431 of the rotary vacuum block 430 passes between the fixed pressing module 100 and the movable pressing module 200.

[0049] Reference Figure 1 The mobile laminating module 500 is located below the fixed pressing module 100. Figure 8 The mobile laminating module 500 includes a second lifting driver 510 and a mobile vacuum block 520. The mobile vacuum block 520 is located between the fixed pressing module 100 and the movable pressing module 200. The upper end of the mobile vacuum block 520 is used to place the tape. The second lifting driver 510 drives the mobile vacuum block 520 to move the mobile vacuum block 520 up and down.

[0050] Reference Figure 1 and Figure 3 The storage module 600 is used to wind the first material tape 810 or the second material tape 820 and can store part of the first material tape 810 or the second material tape 820 .

[0051] One of the operating modes of the splicing belt mechanism of this application is:

[0052] For example, the first material strip 810 serves as the old material strip being transported, and the second material strip 820 serves as the new material strip that needs to be bonded to the first material strip 810. Specifically, the first material strip 810 is unwound by the first unwinding roller and passes through the first pressing assembly 210 and the fixed pressing module 100. At this time, the first material strip 810 and the fixed pressing module 100 are positioned relative to each other to facilitate the transmission of the first material strip 810, and the first pressing assembly 210 and the fixed pressing module 100 are both in a state of releasing the first material strip 810. After passing through the fixed pressing module 100, the first material strip 810 passes through the storage module 600, which winds the first material strip 810. After passing through the storage module 600, the first material strip 810 is attached to the unwound coil containing the parts. During the transmission process of the first material tape 810, the material head of the second material tape 820 on the second unwinding roller can be pulled out in advance and passed through the second pressing assembly 220. The second pressing assembly 220 is in a state of pressing the second material tape 820. It should be understood that the material head of the second material tape 820 exceeds the second pressing assembly 220 and exceeds the cutting path of the cutting block, so as to facilitate the subsequent alignment of the material head of the second material tape 820 with the cutting position of the first material tape 810. After the first material strip 810 is ready for use, the first pressing assembly 210 and the fixed pressing module 100 both press the first material strip 810. Since the storage module 600 can store part of the first material strip 810, when the front end of the first material strip 810 is pressed by the first pressing assembly 210 and the fixed pressing module 100, the rear end of the first material strip 810 can still be transported for a period of time. At the same time, the cutter module 300 cuts between the first pressing assembly 210 and the fixed pressing module 100 to cut the first material strip 810. Subsequently, the first lifting drive 230 drives the first pressing assembly 210 and the second pressing assembly 220 to rise together. The first pressing assembly 210 moves away from the fixed pressing module 100 and takes away the remaining material of the first material strip 810. The second pressing assembly 220 rises to a position opposite to the fixed pressing module 100. The material head of the second material strip 820 on the second pressing assembly 220 is connected to the cut part of the first material strip 810 on the fixed pressing module 100.Next, the second lifting driver 510 drives the mobile vacuum block 520 to rise, and the mobile vacuum block 520 approaches the lower side of the joint between the first material belt 810 and the second material belt 820, so that the tape on the mobile vacuum block 520 is attached to the lower side of the joint between the first material belt 810 and the second material belt 820. At the same time, the rotary driver 410 drives the rotary connecting block 420 to drive the rotary vacuum block 430 to rotate, and the rotary vacuum block 430 moves toward the upper side of the joint between the first material belt 810 and the second material belt 820. Get closer so that the tape on the adsorption surface 431 of the rotating vacuum block 430 is attached to the upper side of the joint between the first material tape 810 and the second material tape 820 to complete the splicing of the first material tape 810 and the second material tape 820, and the moving vacuum block 520 cooperates with the rotating vacuum block 430 to squeeze the joint between the first material tape 810 and the second material tape 820 to tightly attach the tape to the joint between the first material tape 810 and the second material tape 820, thereby improving the splicing quality of the first material tape 810 and the second material tape 820. After the material head of the second material tape 820 and the cut point of the first material tape 810 are bonded together by the tape, the rotary driver 410 drives the rotary vacuum block 430 to reset, the second lifting driver 510 drives the movable vacuum block 520 to reset, the second pressing assembly 220 releases the second material tape 820, and the fixed pressing module 100 releases the first material tape 810. As the rear end of the first material tape 810 is conveyed, the second material tape 820 connected to the first material tape 810 can be driven to be conveyed, thereby completing the splicing of the first material tape 810 and the second material tape 820 without stopping the machine and while part of the first material tape 810 can continue to be transported and used.

[0053] Similarly, at this point, the second material strip 820 serves as the old material strip being transported, while the first material strip 810 serves as the new material strip to be bonded to the second material strip 820. Specifically, the second material strip 820 is unwound by the second unwinding roller and passes through the second pressing assembly 220 and the fixed pressing module 100. At this point, the second material strip 820 and the fixed pressing module 100 are positioned relative to each other to facilitate the transport of the second material strip 820, and the second pressing assembly 220 and the fixed pressing module 100 are both in a state of releasing the second material strip 820. After passing through the fixed pressing module 100, the second material strip 820 passes through the accumulator module 600, which winds the second material strip 820. After passing through the accumulator module 600, the second material strip 820 is attached to the unwound coil containing the parts. During the transmission process of the second material tape 820, the material head of another first material tape 810 on the first unwinding roller can be pulled out in advance and passed through the first pressing component 210. The first pressing component 210 is in a state of pressing the first material tape 810. It should be understood that the material head of the first material tape 810 exceeds the first pressing component 210 and exceeds the cutting path of the cutting block, so as to facilitate the subsequent alignment of the material head of the first material tape 810 with the cutting position of the second material tape 820. After the second material tape 820 is ready for use, the second pressing assembly 220 and the fixed pressing module 100 both press the second material tape 820. Since the storage module 600 can store part of the second material tape 820, when the front end of the second material tape 820 is pressed by the second pressing assembly 220 and the fixed pressing module 100, the rear end of the second material tape 820 can still be transmitted for a period of time. At the same time, the cutter module 300 cuts between the second pressing assembly 220 and the fixed pressing module 100 to cut off the second material tape 820. Subsequently, the second lifting drive 510 drives the second pressing assembly 220 and the first pressing assembly 210 to descend together, the second pressing assembly 220 moves away from the fixed pressing module 100 and takes away the remaining material of the second material strip 820, and the first pressing assembly 210 descends to a position opposite to the fixed pressing module 100, and the material head of the first material strip 810 on the first pressing assembly 210 is connected to the cut end of the second material strip 820 on the fixed pressing module 100.Next, the first lifting driver 230 drives the mobile vacuum block 520 to rise, and the mobile vacuum block 520 approaches the lower side of the joint between the second material belt 820 and the first material belt 810, so that the tape on the mobile vacuum block 520 is attached to the lower side of the joint between the second material belt 820 and the first material belt 810. At the same time, the rotary driver 410 drives the rotary connecting block 420 to drive the rotary vacuum block 430 to rotate, and the rotary vacuum block 430 moves toward the upper side of the joint between the second material belt 820 and the first material belt 810. Move closer to stick the tape on the adsorption surface 431 of the rotating vacuum block 430 to the upper side of the joint between the second material tape 820 and the first material tape 810 to complete the splicing of the second material tape 820 and the first material tape 810, and move the vacuum block 520 to cooperate with the rotating vacuum block 430 to squeeze the joint between the second material tape 820 and the first material tape 810 to stick the tape tightly to the joint between the second material tape 820 and the first material tape 810, thereby improving the splicing quality of the second material tape 820 and the first material tape 810. After the material head of the first material tape 810 and the cut point of the second material tape 820 are bonded together by the tape, the rotary driver 410 drives the rotary vacuum block 430 to reset, the first lifting driver 230 drives the movable vacuum block 520 to reset, the first pressing assembly 210 releases the first material tape 810, and the fixed pressing module 100 releases the second material tape 820. As the rear end of the second material tape 820 is conveyed, the first material tape 810 connected to the second material tape 820 can be driven to be conveyed, so that the second material tape 820 and the first material tape 810 can be connected without stopping the machine and while part of the second material tape 820 can continue to be transported and used.

[0054] This process is repeated so that the first material belt 810 and the second material belt 820 can be transferred alternately without stopping the machine.

[0055] It should be understood that the first material tape 810 and the second material tape 820 can be the same material tape. In some application scenarios, if different material tapes need to be used crosswise, the first material tape 810 and the second material tape 820 can also be different material tapes.

[0056] Specifically, both the mobile vacuum block 520 and the rotating vacuum block 430 can be connected to a vacuum pump to create an adsorption effect on the tape, preventing the tape from falling during the upward movement of the mobile vacuum block 520 and the rotation of the rotating vacuum block 430. Furthermore, by rotating the rotating vacuum block 430 by rotating the actuator 410 to rotate the tape, when the tape needs to be placed on the rotating vacuum block 430, the adsorption surface 431 on the rotating vacuum block 430 can face upward, facilitating the placement of the tape.

[0057] Specifically, the material splicing mechanism of the present application may also include a correction module 700. After the first material belt 810 or the second material belt 820 passes through the storage module 600, it will pass through the correction module 700. The correction module 700 adjusts the conveying direction of the first material belt 810 or the second material belt 820 to ensure that the conveying direction of the first material belt 810 or the second material belt 820 is accurate after splicing, thereby improving the lamination accuracy.

[0058] Reference Figure 4 According to some embodiments of the present application, the fixed pressing module 100 includes a third material receiving platform 110, a third pressing block 120 and a third pressing driver 130. The third pressing block 120 and the third material receiving platform 110 are used to pass the first material strip 810 or the second material strip 820. The third pressing driver 130 drives the third pressing block 120 to move the third pressing block 120 closer to or away from the third material receiving platform 110 to clamp or loosen the first material strip 810 or the second material strip 820.

[0059] It is understandable that the first material strip 810 or the second material strip 820 can pass between the third pressing block 120 and the third material receiving platform 110. When the third pressing driver 130 drives the third pressing block 120 away from the third material receiving platform 110, the third pressing block 120 and the third material receiving platform 110 are in a state of releasing the first material strip 810 or the second material strip 820, and the first material strip 810 or the second material strip 820 can pass normally between the third pressing block 120 and the third material receiving platform 110. When it is necessary to clamp the first material strip 810 or the second material strip 820, the third pressing driver 130 drives the third pressing block 120 close to the third material receiving platform 110, and the third pressing block 120 cooperates with the third material receiving platform 110 to press the first material strip 810 or the second material strip 820.

[0060] Specifically, adsorption holes may be formed on the third material receiving platform 110 , and the adsorption holes may be connected to a vacuum pumping device to absorb the first material strip 810 or the second material strip 820 during the material receiving process.

[0061] Reference Figure 4According to some embodiments of the present application, the fixed pressing module 100 also includes a third guide shaft 140 and a third connecting block 150. The third pressing block 120 and the third connecting block 150 are respectively located on the upper and lower sides of the third material receiving platform 110. A third guide hole is opened on the third material receiving platform 110. The third guide shaft 140 passes through the third guide hole and can slide relative to the third guide hole. The upper end of the third guide shaft 140 is connected to the third pressing block 120, and the lower end of the third guide shaft 140 is connected to the third connecting block 150. The third pressing driver 130 is arranged at the lower end of the third material receiving platform 110, and the third pressing driver 130 drives the upper end of the third connecting block 150 to drive the third connecting block 150 to rise and fall.

[0062] It can be understood that the third pressing driver 130 drives the third connecting block 150 to rise and fall, thereby driving the third guide shaft 140 to rise and fall, thereby driving the third pressing block 120 connected to the third guide shaft 140 to rise and fall, so that the third pressing block 120 can approach or move away from the third material receiving platform 110 to press or release the first material strip 810 or the second material strip 820.

[0063] It is understandable that the lifting process of the third guide shaft 140 can be guided by the third guide hole to improve the stability of the lifting path of the third pressing block 120.

[0064] It can be understood that by arranging the third pressing block 120 and the third pressing driver 130 on the upper and lower sides of the third material receiving platform 110 respectively, and the third pressing driver 130 can be connected to the third pressing block 120 through the third connecting block 150 and the third guide shaft 140, the space utilization can be improved.

[0065] Reference Figure 5 According to some embodiments of the present application, the first pressing assembly 210 includes a first material receiving platform 211, a first pressing block 212 and a first pressing driver 213. The first pressing block 212 and the first material receiving platform 211 are used to pass the first material strip 810. The first pressing driver 213 drives the first pressing block 212 to move the first pressing block 212 closer to or away from the first material receiving platform 211 to clamp or loosen the first material strip 810.

[0066] It is understandable that the first material strip 810 can pass between the first pressing block 212 and the first material receiving platform 211. When the first pressing drive 213 drives the first pressing block 212 away from the first material receiving platform 211, the first pressing block 212 and the first material receiving platform 211 are in a state of releasing the first material strip 810, and the first material strip 810 can pass normally between the first pressing block 212 and the first material receiving platform 211. When it is necessary to clamp the first material strip 810, the first pressing drive 213 drives the first pressing block 212 close to the first material receiving platform 211, and the first pressing block 212 cooperates with the first material receiving platform 211 to press the first material strip 810.

[0067] Specifically, adsorption holes may be formed on the first receiving platform 211 , and the adsorption holes are connected to a vacuum pumping device to adsorb the first material strip 810 during the receiving process of the first material strip 810 and the second material strip 820 .

[0068] Reference Figure 5 According to some embodiments of the present application, the first pressing assembly 210 also includes a first guide shaft 214 and a first connecting block 215. The first pressing block 212 and the first connecting block 215 are respectively located on the upper and lower sides of the first material receiving platform 211. A first guide hole is opened on the first material receiving platform 211. The first guide shaft 214 passes through the first guide hole and can slide relative to the first guide hole. The upper end of the first guide shaft 214 is connected to the first pressing block 212, and the lower end of the first guide shaft 214 is connected to the first connecting block 215. The first pressing driver 213 is arranged at the lower end of the first material receiving platform 211, and the first pressing driver 213 drives the upper end of the first connecting block 215 to drive the first connecting block 215 to rise and fall.

[0069] It can be understood that the first pressing driver 213 drives the first connecting block 215 to rise and fall, thereby driving the first guide shaft 214 to rise and fall, thereby driving the first pressing block 212 connected to the first guide shaft 214 to rise and fall, so that the first pressing block 212 can approach or move away from the first material receiving platform 211 to press or release the first material strip 810.

[0070] It is understandable that the lifting process of the first guide shaft 214 can be guided by the first guide hole to improve the stability of the lifting path of the first pressing block 212.

[0071] It can be understood that by arranging the first pressing block 212 and the first pressing driver 213 on the upper and lower sides of the first material receiving platform 211 respectively, and the first pressing driver 213 can be connected to the first pressing block 212 through the first connecting block 215 and the first guide shaft 214, the space utilization can be improved.

[0072] Reference Figure 5According to some embodiments of the present application, the second pressing assembly 220 includes a second material receiving platform 221, a second pressing block 222 and a second pressing driver 223. The second pressing block 222 and the second material receiving platform 221 are used to pass the second material strip 820. The second pressing driver 223 drives the second pressing block 222 to move the second pressing block 222 closer to or away from the second material receiving platform 221 to clamp or release the second material strip 820.

[0073] It is understandable that the second material strip 820 can pass between the second pressing block 222 and the second material receiving platform 221. When the second pressing drive 223 drives the second pressing block 222 away from the second material receiving platform 221, the second pressing block 222 and the second material receiving platform 221 are in a state of releasing the second material strip 820, and the second material strip 820 can pass normally between the second pressing block 222 and the second material receiving platform 221. When it is necessary to clamp the second material strip 820, the second pressing drive 223 drives the second pressing block 222 close to the second material receiving platform 221, and the second pressing block 222 cooperates with the second material receiving platform 221 to press the second material strip 820.

[0074] Specifically, adsorption holes may be formed on the second material receiving platform 221 , and the adsorption holes may be connected to a vacuum pumping device to adsorb the second material strip 820 during the process of receiving the second material strip 820 .

[0075] Reference Figure 5 According to some embodiments of the present application, the second pressing assembly 220 also includes a second guide shaft 224 and a second connecting block 225. The second pressing block 222 and the second connecting block 225 are respectively located on the upper and lower sides of the second material receiving platform 221. A second guide hole is opened on the second material receiving platform 221. The second guide shaft 224 passes through the second guide hole and can slide relative to the second guide hole. The upper end of the second guide shaft 224 is connected to the second pressing block 222, and the lower end of the second guide shaft 224 is connected to the second connecting block 225. The second pressing driver 223 is arranged at the lower end of the second material receiving platform 221, and the second pressing driver 223 drives the upper end of the second connecting block 225 to drive the second connecting block 225 to rise and fall.

[0076] It can be understood that the second pressing driver 223 drives the second connecting block 225 to rise and fall, thereby driving the second guide shaft 224 to rise and fall, thereby driving the second pressing block 222 connected to the second guide shaft 224 to rise and fall, so that the second pressing block 222 can approach or move away from the second material receiving platform 221 to press or release the second material strip 820.

[0077] It is understandable that the lifting process of the second guide shaft 224 can be guided by the second guide hole to improve the stability of the lifting path of the second pressing block 222.

[0078] It can be understood that by arranging the second pressing block 222 and the second pressing driver 223 on the upper and lower sides of the second material receiving platform 221 respectively, and the second pressing driver 223 can be connected to the second pressing block 222 through the second connecting block 225 and the second guide shaft 224, the space utilization can be improved.

[0079] Reference Figure 6 According to some embodiments of the present application, the cutter module 300 includes a cutter driver 310 and a cutting knife 320. The cutter driver 310 drives the connected cutting knife 320 to move the cutting knife 320 horizontally along the width direction of the fixed pressing module 100, so as to make the cutting knife 320 cut the first material strip 810 or the second material strip 820 fixed by the fixed pressing module 100.

[0080] It can be understood that in the initial state, the cutter driver 310 drives the cutting knife 320 to retract to move away from between the movable pressing module 200 and the fixed pressing module 100. When it is necessary to cut the first material strip 810 or the second material strip 820, the cutter driver 310 drives the cutting knife 320 to move horizontally along the width direction of the fixed pressing module 100 to cut the first material strip 810 or the second material strip 820 along the width direction of the first material strip 810 or the second material strip 820.

[0081] Reference Figure 8 According to some embodiments of the present application, the mobile bonding module 500 further includes a first translation driver 530, and the first translation driver 530 is connected to the second lifting driver 510 to drive the second lifting driver 510 to translate.

[0082] It can be understood that the first translation driver 530 can drive the second lifter to move in the horizontal direction to drive the movable vacuum block 520 to move in the horizontal direction, and drive the movable vacuum block 520 away from the fixed pressing module 100 and the movable pressing module 200, so as to facilitate the placement of the tape on the movable vacuum block 520.

[0083] Reference Figure 3 According to some embodiments of the present application, the storage module 600 includes a first guide roller group 610, a second guide roller group 620 and a second translation drive 630. The first guide roller group 610 includes a plurality of first guide rollers 611, and the first guide rollers 611 are distributed along the height direction. The second guide roller group 620 includes a plurality of second guide rollers 621, and the second guide rollers 621 are distributed along the height direction. The first guide rollers 611 and the second guide rollers 621 are staggered in the height direction. The second translation drive 630 drives the second guide roller group 620 to approach or move away from the first guide roller group 610.

[0084] It can be understood that the first material belt 810 or the second material belt 820 is sequentially wound around the first guide roller 611 and the second guide roller 621. During the normal transmission of the first material belt 810 or the second material belt 820, the second translation drive 630 drives the second guide roller group 620 away from the first guide roller group 610, so that the first guide roller 611 in the first guide roller group 610 and the second guide roller 621 in the second guide roller group 620 are farther apart, thereby making the first material belt 810 or the second material belt 820 sequentially wound around the first guide roller 611 and the second guide roller 621 longer. When the first material strip 810 and the second material strip 820 need to be connected, the second translation driver 630 drives the second guide roller group 620 close to the first guide roller group 610 to allow the first guide roller 611 and the second guide roller 621 to be close to each other, thereby reducing the tension of the first material strip 810 or the second material strip 820 originally wound around the first guide roller 611 and the second guide roller 621. Therefore, even if the first material strip 810 or the second material strip 820 at the front end is clamped by the fixed pressing module 100, the first material strip 810 or the second material strip 820 wound around the first guide roller 611 and the second guide roller 621 can still continue to be transmitted and used.

[0085] The embodiments of the present application have been described in detail above with reference to the accompanying drawings. However, the present application is not limited to the above embodiments. Various modifications can be made within the scope of knowledge possessed by ordinary technicians in the relevant technical field without departing from the purpose of the present application. In addition, the embodiments of the present application and the features of the embodiments can be combined with each other unless there is a conflict.

Claims

1. The splicing belt mechanism is characterized by: include: A fixed pressing module, used for passing the first material belt or the second material belt, and capable of pressing or releasing the first material belt or the second material belt; The movable pressing module includes a first pressing assembly, a second pressing assembly, and a first lifting drive, wherein the first pressing assembly and the second pressing assembly are distributed in the height direction; the first pressing assembly is used to pass a first material belt and can press or release the first material belt; the second pressing assembly is used to pass a second material belt and can press or release the second material belt; the first lifting drive drives the first pressing assembly and the second pressing assembly to move them up and down so that the first pressing assembly or the second pressing assembly is opposite to the fixed pressing module; a cutter module, located between the fixed pressing module and the movable pressing module, for cutting the first material strip or the second material strip pressed by the fixed pressing module; A rotary laminating module is located above the fixed pressing module, and includes a rotary driver, a rotary connecting block, and a rotary vacuum block. The upper end of the rotary vacuum block forms an adsorption surface, and the adsorption surface is used to adsorb the first adhesive tape. The rotary driver drives the rotary connecting block to drive the rotary vacuum block to flip, and the adsorption surface of the rotary vacuum block passes between the fixed pressing module and the movable pressing module. The mobile laminating module is located below the fixed pressing module, and includes a second lifting drive and a mobile vacuum block. The mobile vacuum block is located between the fixed pressing module and the movable pressing module. The upper end of the mobile vacuum block is used to place the tape. The second lifting drive drives the mobile vacuum block to move the mobile vacuum block up and down. The material storage module is used to wind the first material tape or the second material tape and can store part of the first material tape or the second material tape.

2. The splicing belt mechanism according to claim 1, characterized in that: The fixed pressing module includes a third material receiving platform, a third pressing block and a third pressing driver. The third pressing block and the third material receiving platform are used to pass the first material strip or the second material strip. The third pressing driver drives the third pressing block to move the third pressing block closer to or away from the third material receiving platform to clamp or release the first material strip or the second material strip.

3. The splicing belt mechanism according to claim 2, characterized in that: The fixed pressing module also includes a third guide shaft and a third connecting block, the third pressing block and the third connecting block are respectively located on the upper and lower sides of the third material receiving platform, a third guide hole is opened on the third material receiving platform, the third guide shaft passes through the third guide hole and can slide relative to the third guide hole, the upper end of the third guide shaft is connected to the third pressing block, the lower end of the third guide shaft is connected to the third connecting block, the third pressing driver is arranged at the lower end of the third material receiving platform, and the third pressing driver drives the upper end of the third connecting block to drive the third connecting block to rise and fall.

4. The splicing belt mechanism according to claim 1, characterized in that: The first pressing assembly includes a first material receiving platform, a first pressing block and a first pressing driver. The first pressing block and the first material receiving platform are used to pass the first material strip. The first pressing driver drives the first pressing block to move the first pressing block closer to or away from the first material receiving platform to clamp or loosen the first material strip.

5. The splicing belt mechanism according to claim 4, characterized in that: The first pressing assembly also includes a first guide shaft and a first connecting block, the first pressing block and the first connecting block are respectively located on the upper and lower sides of the first material receiving platform, a first guide hole is opened on the first material receiving platform, the first guide shaft passes through the first guide hole and can slide relative to the first guide hole, the upper end of the first guide shaft is connected to the first pressing block, the lower end of the first guide shaft is connected to the first connecting block, the first pressing driver is arranged at the lower end of the first material receiving platform, and the first pressing driver drives the upper end of the first connecting block to drive the first connecting block to rise and fall.

6. The splicing belt mechanism according to claim 1, characterized in that: The second pressing assembly includes a second material receiving platform, a second pressing block and a second pressing driver. The second pressing block and the second material receiving platform are used to pass the second material strip. The second pressing driver drives the second pressing block to move the second pressing block closer to or away from the second material receiving platform to clamp or loosen the second material strip.

7. The splicing belt mechanism according to claim 6, characterized in that: The second pressing assembly also includes a second guide shaft and a second connecting block. The second pressing block and the second connecting block are respectively located on the upper and lower sides of the second material receiving platform. A second guide hole is opened on the second material receiving platform. The second guide shaft passes through the second guide hole and can slide relative to the second guide hole. The upper end of the second guide shaft is connected to the second pressing block, and the lower end of the second guide shaft is connected to the second connecting block. The second pressing driver is arranged at the lower end of the second material receiving platform, and the second pressing driver drives the upper end of the second connecting block to drive the second connecting block to rise and fall.

8. The splicing belt mechanism according to claim 1, characterized in that: The cutter module includes a cutter driver and a cutting knife. The cutter driver drives the cutting knife to move horizontally along the width direction of the fixed pressing module, so that the cutting knife cuts the first material strip or the second material strip fixed by the fixed pressing module.

9. The splicing belt mechanism according to claim 1, characterized in that: The mobile laminating module further includes a first translation driver, which is drivingly connected to the second lifting driver and is used to drive the second lifting driver to translate.

10. The splicing belt mechanism according to claim 1, characterized in that: The material storage module includes a first guide roller group, a second guide roller group and a second translation drive, the first guide roller group includes a plurality of first guide rollers, and the first guide rollers are distributed along the height direction, the second guide roller group includes a plurality of second guide rollers, and the second guide rollers are distributed along the height direction, and the first guide rollers and the second guide rollers are staggered in the height direction, and the second translation drive drives the second guide roller group to approach or move away from the first guide roller group.