Laminating machine

By designing a laminating mechanism in the laminating machine that adapts the template to the curved surface, automated laminating is achieved, solving the problems of low efficiency and poor effect of manual laminating, and improving the quality and efficiency of laminating curved surfaces.

CN119388744BActive Publication Date: 2025-10-28DONGGUAN NODA INTELLIGENT EQUIP CO LTD
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Patent Information

Application Number
CN202411378470.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-09-30
Publication Date
2025-10-28
Estimated Expiration
2044-09-30

AI Technical Summary

Technical Problem

Existing laminating machines rely on manual operation when laminating curved surfaces, resulting in high labor intensity, poor laminating effect and low efficiency.

Method used

A laminating machine was designed. By setting a template on the carrier film and using the template plate in the laminating mechanism to adapt to the top contour of the part to be laminated, the template plate is pressed down as a whole to attach the template to the part to be laminated, thus realizing automated lamination.

Benefits of technology

It improves the production efficiency and coating effect of curved surface coating, reduces manual intervention, and ensures the adhesion quality of the coating film.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention discloses a laminating machine, relating to the field of laminating equipment technology. The laminating machine includes: a mounting frame mechanism comprising a mounting plate and a feed roll and a take-up roll mounted on the mounting plate. The feed roll is wound with a template film and a carrier film. The template film is placed on the carrier film, and the take-up roll is used to collect the carrier film, thus providing a laminating position for the template film; and a laminating mechanism located between the feed roll and the take-up roll. The laminating mechanism includes a laminating drive component and a template plate. The laminating drive component is drivenly connected to the template plate. The bottom contour of the template plate is adapted to the top contour of the part to be laminated. At the laminating position, the template film and the part to be laminated are correspondingly positioned. The laminating drive component drives the template plate to move towards the part to be laminated, clamping the template film and the carrier film between the part to be laminated and the template plate, causing the template film to leave the carrier film and adhere to the top surface of the part to be laminated. The laminating machine provided by this invention eliminates the need for manual laminating of curved surfaces, improving the laminating effect.
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Description

Technical Field

[0001] This invention relates to the field of coating equipment technology, and in particular to a coating machine. Background Technology

[0002] Most laminating machines typically use rollers or similar methods to cover the film in the appropriate position during the lamination process. However, when laminating curved surfaces, manual lamination is usually required. This is labor-intensive and can easily lead to improper film adhesion, resulting in low work efficiency and poor lamination quality. Summary of the Invention

[0003] The main objective of this invention is to provide a laminating machine that solves the technical problem of poor laminating effect when laminating curved surfaces by relying on manual labor.

[0004] To achieve the above objectives, the present invention provides a laminating machine, comprising:

[0005] The mounting frame mechanism includes a mounting plate and a feed roll and a take-up roll disposed on the mounting plate. The feed roll is wound with a forming film and a carrier film. The forming film is disposed on the carrier film. The take-up roll is used to collect the carrier film, so that the forming film has a film-coating position.

[0006] A laminating mechanism is located between the unwinding roll and the take-up roll. The laminating mechanism includes a laminating drive and a template. The laminating drive is driven to the template. The bottom contour of the template is adapted to the top contour of the workpiece to be laminated. At the laminating position, the template is correspondingly positioned to the workpiece to be laminated. The laminating drive drives the template to move toward the workpiece to be laminated, thereby clamping the template and the carrier film between the workpiece to be laminated and the template, so that the template leaves the carrier film and adheres to the top surface of the workpiece to be laminated.

[0007] In one embodiment, the coating mechanism further includes a bracket, a fixing plate, and a guide assembly. The bracket is fixedly connected to both ends of the fixing plate. The coating drive is disposed on the fixing plate. The template is located on the side of the fixing plate facing the workpiece to be coated, and the output end of the coating drive is connected to the template. The guide assembly connects the template and the fixing plate respectively.

[0008] In one embodiment, the template includes a connecting layer, a supporting layer, and a flexible layer. The film-coating drive and the guiding assembly are respectively connected to the connecting layer. The supporting layer is disposed on the side of the connecting layer opposite to the film-coating drive. The flexible layer is disposed on the side of the supporting layer opposite to the connecting layer, and the flexible layer is used to contact the carrier film.

[0009] In one embodiment, the mounting plate is provided with a drive roller and a clamping roller, and the carrier film passes through the two and is wound on the take-up roll. The drive roller is connected to a drive motor, which drives the drive roller to rotate. The clamping roller is connected to a clamping drive member, which is fixedly connected to the mounting plate. The clamping drive member drives the clamping roller to approach the drive roller, so that the clamping roller cooperates with the drive roller to clamp the carrier film.

[0010] In one embodiment, the drive motor is further connected to a transmission component, which is connected to the take-up roll; and / or,

[0011] The mounting plate is provided with multiple guide rollers, and the carrier film is in contact with the guide rollers.

[0012] In one embodiment, the laminating machine further includes a cleaning mechanism, which includes a blower pipe and an exhaust pipe. The blower pipe is used to blow out ionized air. The mounting plate is provided with a first sealing cover and a second sealing cover. The unloading roll is disposed inside the first sealing cover, and the reloading roll is disposed inside the second sealing cover. The blower pipe and the exhaust pipe are respectively disposed inside the first sealing cover and the second sealing cover.

[0013] In one embodiment, the laminating machine further includes a film-picking mechanism, which includes a film-picking rod and a film-picking drive assembly. The film-picking drive assembly is drivenly connected to the film-picking rod and drives the film-picking rod to move from one end of the workpiece to be laminated to the other end, thereby driving the carrier film away from the molded film.

[0014] In one embodiment, the laminating machine further includes an adjustment mechanism, which includes a support plate, a correction component, and a lifting adjustment component. The support plate is fixedly connected to the lifting adjustment component, and the lifting adjustment component is also connected to the mounting plate and drives the mounting plate to move in the vertical direction. The correction component includes a correction drive and a first guide rail, and the correction drive drives the support plate to slide along the first guide rail.

[0015] In one embodiment, two correction components are provided, one of which is provided with a second guide rail. The first guide rail is perpendicular to the second guide rail. The two correction components are rotatably connected to the support plate, and the two correction components also drive the support plate to rotate.

[0016] In one embodiment, the laminating machine further includes a positioning component, which includes a first positioning sensor and at least two second positioning sensors. The first positioning sensor is located at one end of the laminating mechanism, and the carrier film is provided with a sensing hole. The first positioning sensor cooperates with the sensing hole to sense the edge of the carrier film. The second positioning sensors are located on one side of the carrier film and are used to sense the edge of the carrier film.

[0017] The technical solution of this invention involves placing a template film on a carrier film and then pressing the template film onto the workpiece using a laminating mechanism. Specifically, the bottom contour of the template plate matches the top contour of the workpiece to be laminated. A laminating drive unit presses the template plate down to press the template film onto the workpiece. Furthermore, the matching of the bottom contour of the template plate with the top contour of the workpiece ensures effective lamination. The laminating machine provided by this invention uses a template plate pressing method to apply the template film to the workpiece, eliminating the need for manual lamination and improving production efficiency and lamination effect. Attached Figure Description

[0018] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on the structures shown in these drawings without creative effort.

[0019] Figure 1 This is a front structural diagram of an embodiment of the coating machine provided by the present invention;

[0020] Figure 2 This is a schematic diagram of the back structure of an embodiment of the coating machine provided by the present invention;

[0021] Figure 3 This is a schematic diagram of the coating mechanism in an embodiment of the coating machine provided by the present invention;

[0022] Figure 4 This is a schematic diagram of the mounting frame mechanism of the laminating machine embodiment provided by the present invention;

[0023] Figure 5 This is a schematic diagram of the adjustment mechanism of the laminating machine embodiment provided by the present invention.

[0024] Explanation of icon numbers:

[0025] 110. Mounting plate; 120. Unwinding roll; 130. Rewinding roll; 140. Drive roller; 141. Drive motor; 142. Transmission component; 150. Clamping roller; 151. Clamping drive component; 160. Guide roller;

[0026] 200. Coating mechanism; 210. Coating drive component; 220. Template; 221. Connecting layer; 222. Supporting layer; 223. Flexible layer; 240. Fixing plate; 250. Guide assembly;

[0027] 300, carrier membrane; 310, type membrane;

[0028] 400. Cleaning mechanism; 410. Air blower duct; 420. Exhaust duct; 430. First sealing cover; 440. Second sealing cover;

[0029] 500. Film picking mechanism; 510. Film picking rod; 520. Film picking drive assembly; 521. Film picking drive motor; 522. Synchronous belt; 523. Mounting block; 524. Support slide rail;

[0030] 600. Adjustment mechanism; 610. Support plate; 620. Correction assembly; 621. Correction drive component; 622. First guide rail; 623. Second guide rail; 630. Lifting and adjusting assembly;

[0031] 700, Positioning component; 710, First positioning sensor; 720, Second positioning sensor;

[0032] 800. Items to be coated.

[0033] The realization of the objective, functional features and advantages of the present invention will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation

[0034] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of the present invention, and not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present invention.

[0035] It should be noted that if the embodiments of the present invention involve directional indicators (such as up, down, left, right, front, back, etc.), the directional indicators are only used to explain the relative positional relationship and movement of the components in a specific posture. If the specific posture changes, the directional indicators will also change accordingly.

[0036] Furthermore, if the embodiments of this invention involve descriptions such as "first" or "second," these descriptions are for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined with "first" or "second" may explicitly or implicitly include at least one of those features. Additionally, the use of "and / or" or "and / or" throughout the text includes three parallel solutions. For example, "A and / or B" includes solution A, solution B, or a solution where both A and B are satisfied simultaneously. Furthermore, the technical solutions of the various embodiments can be combined with each other, but this must be based on the ability of those skilled in the art to implement them. When the combination of technical solutions is contradictory or impossible to implement, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection claimed by this invention.

[0037] In existing technologies, most laminating machines typically use rollers or similar methods to cover the film in the corresponding positions during the lamination process. However, when laminating curved surfaces, manual lamination is usually required, which is labor-intensive and prone to causing improper film adhesion, resulting in low work efficiency and poor lamination effect.

[0038] This invention proposes a laminating machine.

[0039] Please see Figures 1 to 5 As shown, in one embodiment of the present invention, the laminating machine includes: a mounting frame mechanism and a laminating mechanism 200, wherein the mounting frame mechanism includes a mounting plate 110 and a feed roll 120 and a take-up roll 130 disposed on the mounting plate 110. The feed roll 120 is wound with a forming film 310 and a carrier film 300. The forming film 310 is disposed on the carrier film 300. The take-up roll 130 is used to take up the carrier film 300, so that the forming film 310 has a laminating position.

[0040] In the specific implementation process, the template film 310 is used to attach to the workpiece 800 to be coated, and the carrier film 300 is used to support several template films 310. The surfaces where the template films 310 and the carrier film 300 are connected have adhesive, and the surfaces where the carrier film 300 and the template films 310 are connected are smoothly configured. In this embodiment, the workpiece 800 to be coated is a carrier plate. In the previous step of coating, adhesive is provided on the carrier plate for bonding the template films 310. In addition, the carrier plate has several through holes, and correspondingly, the template films 310 are adapted to the carrier plate, and the through holes of the template films 310 are consistent with the through holes of the carrier plate. The take-up roll 130 and the unwind roll 120 are rotatably connected to the mounting plate 110, respectively. It can be understood that the template films 310 are on the carrier film 300 and wound on the unwind roll 120. During the lamination process, the molded film 310 separates from the carrier film 300 and adheres to the carrier plate. After the lamination is completed, the take-up roll 130 rotates to wind the carrier film 300 onto the take-up roll 130 and collect the carrier film 300.

[0041] The laminating mechanism 200 is located between the unwinding roll 120 and the take-up roll 130. The laminating mechanism 200 includes a laminating drive 210 and a template 220. The laminating drive 210 is driven to connect with the template 220. The bottom contour of the template 220 is adapted to the top contour of the part to be laminated 800. At the laminating position, the template 310 is correspondingly arranged with the part to be laminated 800. The laminating drive 210 drives the template 220 to move toward the part to be laminated 800 so as to clamp the template 310 and the carrier film 300 between the part to be laminated 800 and the template 220, so that the template 310 leaves the carrier film 300 and attaches to the top surface of the part to be laminated 800.

[0042] In this embodiment, the template film 310 is attached to the workpiece 800 to be coated by the coating mechanism 200. Specifically, the template film 310 and the carrier film 300 move from the feed roller toward the take-up roll. At the coating position, the template film 310 is positioned above and corresponds to the workpiece 800 to be coated. The coating drive unit 210 drives the template plate 220 to press down the carrier film 300 and the template film 310 as a whole, so that the template film 310 is attached to the workpiece 800 to be coated and moves away from the carrier film 300. The carrier film 300 is then collected by the take-up roll. To facilitate the attachment of the template film 310, the contour of the template plate 220 facing the workpiece 800 is adapted to the contour of the workpiece 800 to be coated. In the specific process, the film-coating drive component 210 can be a motor or a drive cylinder, etc. The top surface of the part to be coated 800 is a convex arc shape, and the bottom surface of the template 220 is a concave shape. The two cooperate with each other, and then the template 220 presses down to stick the template 310 onto the part to be coated 800 as a whole, thus achieving film coating.

[0043] For laminating curved panel surfaces, manual lamination using rollers is typically employed. This method is prone to errors in controlling lamination precision, resulting in poor lamination quality and low manual efficiency. The present invention addresses this by placing a template 310 on a carrier film 300 and then pressing it onto the workpiece using a lamination mechanism 200. Specifically, the bottom contour of the template 220 is adapted to the top contour of the workpiece 800. The lamination drive 210 drives the template 220 to press down, thus pressing the template 310 onto the workpiece 800. Furthermore, the alignment of the bottom surface of the template 220 with the top contour of the workpiece 800 ensures effective adhesion of the template 310. The lamination machine provided by this invention uses the method of pressing down the template 220 to attach the template 310 to the workpiece 800, eliminating the need for manual lamination and improving both production efficiency and lamination quality.

[0044] In one embodiment, reference Figure 3As shown, the coating mechanism 200 also includes a bracket, a fixed plate 240 and a guide assembly 250. The two ends of the fixed plate 240 are respectively fixedly connected to the bracket. The coating drive 210 is disposed on the fixed plate 240. The template 220 is located on the side of the fixed plate 240 facing the workpiece 800 to be coated, and the output end of the coating drive 210 is connected to the template 220. The guide assembly 250 connects the template 220 and the fixed plate 240 respectively.

[0045] In this embodiment, the bracket is fixedly supported on the support surface, serving a supporting function. In specific implementation, the bracket is a gantry structure, with brackets connected to both ends of the fixing plate 240, and the extension direction of both ends of the fixing plate 240 is consistent with the length direction of the part to be supported. The fixing plate 240 is used to install the film-coating drive component 210. Specifically, the film-coating drive component 210 is a drive cylinder, and the output end of the drive cylinder is connected to the template plate 220 to drive the template plate 220 to rise and fall. In specific implementation, multiple film-coating drive components 210 can be spaced apart along the length direction of the fixing plate 240 according to the required length of the part to be coated 800, so as to ensure the stability and balance of the movement of the template plate 220, thereby ensuring the coating effect.

[0046] The guide assembly 250 includes a linear bearing and a guide post. The linear bearing is mounted on the fixed plate 240. One end of the guide post is connected to the template 220, and the other end passes through the linear bearing and extends to the side of the fixed plate 240 away from the template 220. The outer wall of the guide post is connected to the linear bearing. This can further improve the stability of the movement of the template 220. In the specific implementation process, multiple guide assemblies 250 are arranged at intervals on the fixed plate 240 to further improve the stability of the lifting and laminating movement of the template 220 and further improve the laminating effect.

[0047] In this embodiment, reference continues to be made to Figure 3 As shown, the template 220 includes a connecting layer 221, a supporting layer 222, and a flexible layer 223. The film-coating drive 210 and the guide assembly 250 are respectively connected to the connecting layer 221. The supporting layer 222 is located on the side of the connecting layer 221 away from the film-coating drive 210. The flexible layer 223 is located on the side of the supporting layer 222 away from the connecting layer 221, and the flexible layer 223 is used to contact the carrier film 300.

[0048] Specifically, the connecting layer 221 is connected to the coating drive component 210. The connecting layer 221 has a flat structure and is made of metal to provide sufficient strength. The support layer 222 is connected to the connecting layer 221. In practice, the side of the support layer 222 facing away from the connecting layer 221 is curved and adapts to the part to be coated 800. The flexible layer 223 is made of silicone or rubber and is used to contact the carrier film 300. It should be noted that the surface of the part to be coated 800 has adhesive applied in the previous process to adhere the molded film 310. The flexible layer 223 is adhered to the support layer 222, and the position of the flexible layer 223 on the support layer 222 corresponds to the position of the adhesive on the part to be coated 800. In this way, during the coating process, the flexible layer 223 can squeeze and adhere the molded film 310 to the part to be coated 800, so that the molded film 310 is connected to the adhesive, ensuring the coating effect of the molded film 310.

[0049] In one embodiment, reference Figure 4 As shown, the mounting plate 110 is provided with a drive roller 140 and a clamping roller 150. The carrier film 300 passes through the two and is wound on the take-up roll 130. The drive roller 140 is connected to a drive motor 141, which drives the drive roller 140 to rotate. The clamping roller 150 is connected to a clamping drive member 151, which is fixedly connected to the mounting plate 110. The clamping drive member 151 drives the clamping roller 150 to approach the drive roller 140, so that the clamping roller 150 cooperates with the drive roller 140 to clamp the carrier film 300.

[0050] In the specific implementation, the drive roller 140 and the clamping roller 150 are arranged opposite each other and close to the take-up roll. The clamping drive component 151 is fixedly installed on the mounting plate 110. The clamping drive component 151 is a drive cylinder. The drive cylinder drives the clamping roller 150 to approach the drive roller 140, thereby cooperating with the drive roller 140 to clamp the carrier film 300, so that there is a certain friction between the drive roller 140 and the carrier film 300. When the drive motor 141 drives the drive roller 140 to rotate, it can drive the carrier film 300 to move under the action of friction, thereby causing the carrier film 300 and the forming film 310 to leave the feed roller. At the same time, the movement of the carrier film 300 also drives the clamping roller 150 to rotate, so that the two are in rolling friction. In the specific implementation, the mounting plate 110 is provided with multiple guide rollers 160, and the carrier film 300 is in contact with the guide rollers 160. The guide roller 160 contacts the carrier film 300, and there is rolling friction between them. Multiple guide rollers 160 are provided to guide the movement of the carrier film 300 and make the molded film 310 face the workpiece 800 to be coated at the coating position, so as to facilitate the coating assembly to press down to perform the coating operation.

[0051] Furthermore, the active motor 141 is also connected to a transmission component 142, which is connected to the take-up roll. The transmission component 142 is a transmission belt, which causes the take-up roll to rotate, thereby facilitating the take-up of the carrier film 300. Understandably, the take-up roll is also equipped with a differential speed mechanism to facilitate the winding of the carrier film 300 onto the take-up roll. In addition, it is understood that the feed roller is connected to a torque motor, which is mounted on the mounting plate 110 to prevent the feed roller from feeding too much material due to rotational inertia, thus affecting the film coating.

[0052] In one embodiment, reference continues Figure 4 As shown, the laminating machine also includes a cleaning mechanism 400, which includes a blower pipe 410 and an exhaust pipe 420. The blower pipe 410 is used to blow out ion air. The mounting plate 110 is provided with a first sealing cover 430 and a second sealing cover 440. The unloading roll 120 is located inside the first sealing cover 430, and the take-up roll 130 is located inside the second sealing cover 440. The blower pipe 410 and the exhaust pipe 420 are respectively installed inside the first sealing cover 430 and the second sealing cover 440.

[0053] In the specific implementation process, the coating process requires a high degree of cleanliness in the working environment. The carrier film 300 and the molded film 310 are finished products wound onto the feed roller in a separate process, and dust may be present. To avoid the dust affecting the coating process and the entire coating process, this embodiment reduces dust emission by setting up a cleaning mechanism 400. Specifically, the mounting plate 110 is equipped with a first sealing cover 430, the feed roll 120 is placed inside the first sealing cover 430, and the blowing pipe 410 blows ionizing air into the first sealing cover 430, causing the dust to carry static electricity. Then, the air inside the first sealing cover 430 is extracted through the exhaust pipe 420 to achieve the purpose of dust removal. The take-up roll 130 is installed inside the second sealing cover 440, and dust removal is also achieved through the blowing pipe 410 and the exhaust pipe 420.

[0054] Reference in one embodiment Figure 2 and Figure 4 As shown, the laminating machine also includes a film picking mechanism 500, which includes a film picking rod 510 and a film picking drive assembly 520. The film picking drive assembly 520 is drivenly connected to the film picking rod 510 and drives the film picking rod 510 to move from one end of the workpiece 800 to the other end, thereby driving the carrier film 300 to leave the molded film 310.

[0055] It should be noted that the carrier film 300 acts as release paper. When the laminating mechanism 200 descends to attach the template film 310 to the workpiece 800 to be laminated, and the laminating mechanism 200 rises away from the carrier film 300, the film picking mechanism 500 drives the carrier film 300 to leave the template film 310. Specifically, the film picking drive assembly 520 drives the film picking rod 510 to move along the carrier film 300, causing the carrier film 300 to leave the template film 310. The film picking rod 510 is equipped with a film picking roller, which contacts the carrier film 300 to form rolling friction.

[0056] In specific implementation, the film-picking drive assembly 520 includes a film-picking drive motor 521, a synchronous belt 522, and a mounting block 523. The film-picking drive motor 521 is mounted on the mounting plate 110 and located at one end of the mounting plate 110 in the direction of movement of the carrier film 300. The output end of the film-picking drive motor 521 is connected to a synchronous pulley, and the other end of the mounting plate 110 is connected to another synchronous pulley. The two synchronous pulleys are connected to the synchronous belt 522. The mounting block 523 clamps and connects to the synchronous belt 522 and is also connected to the film-picking rod 510. In this way, the film-picking drive motor 521 drives the synchronous pulley to rotate and drives the synchronous belt 522 to rotate. The synchronous belt 522 drives the mounting block 523 to move along the mounting plate 110, and during the movement, the forming film 310 and the carrier film 300 are separated.

[0057] Furthermore, a support slide rail 524 is provided on the mounting plate 110. The support slide rail 524 extends along the moving direction of the film-lifting rod 510. The mounting block 523 also slides on the support slide rail 524. The support slide rail 524 plays a supporting and guiding role, improving the stability of the film-lifting rod 510.

[0058] In one embodiment, reference Figure 5 As shown, the laminating machine also includes an adjustment mechanism 600, which includes a support plate 610, a correction component 620, and a lifting adjustment component 630. The support plate 610 is fixedly connected to the lifting adjustment component 630, and the lifting adjustment component 630 is also connected to the mounting plate 110 and drives the mounting plate 110 to move in the vertical direction. The correction component 620 includes a correction drive component 621 and a first guide rail 622. The correction drive component 621 drives the support plate 610 to slide along the first guide rail 622.

[0059] The laminating machine provided by this invention uses a laminating mechanism 200 to perform lamination by pressing down as a whole. Multiple template films 310 are spaced apart on the carrier film 300. When changing the take-up roll 130 or the unwind roll 120, or when using template films 310 and carrier films 300 of different sizes, the template films 310 may shift, causing them to misalign with the workpiece 800 to be laminated, thus affecting the lamination effect. This embodiment uses an adjusting mechanism 600 to adjust the positions of the carrier film 300 and the template films 310, ensuring that the template films 310 correspond to the workpiece 800 to be laminated, thus guaranteeing the lamination effect. Furthermore, the vertical position is adjusted to accommodate different workpieces 800 to be laminated.

[0060] Specifically, the support plate 610 is vertically arranged and located on the side of the mounting plate 110 away from the laminating mechanism 200. The lifting adjustment assembly 630 includes a lifting adjustment drive module and a lifting adjustment block. The lifting adjustment module drives the lifting adjustment block to move. The lifting adjustment module is fixedly connected to the support plate 610, and the lifting adjustment block is fixedly connected to the mounting plate 110. The lifting adjustment assembly 630 adjusts the height of the mounting plate 110 in the vertical direction by driving the lifting adjustment block to lift, thereby adjusting the height of the unloading roll 120 and the take-up roll 130 to accommodate different sizes of parts 800 to be laminated.

[0061] In this embodiment, the extension direction of the first guide rail 622 is consistent with the width direction of the part to be coated 800. The correction drive 621 adopts a motor screw slider mechanism. The support plate 610 is connected to the slider. The correction drive 621 drives the support plate 610 to move along the first guide rail 622, thereby adjusting the position of the mounting plate 110 in the width direction.

[0062] Furthermore, there are two correction components 620. One of the two correction components 620 is provided with a second guide rail 623. The first guide rail 622 is perpendicular to the second guide rail 623. The two correction components 620 are rotatably connected to the support plate 610 respectively. The two correction components 620 also drive the support plate 610 to rotate.

[0063] Two alignment components 620 are arranged side-by-side at the bottom of the support plate 610 along its length. A second guide rail 623 extends along its length, and two sliders are rotatably connected to the support plate 610 via corresponding bearings. In practice, the alignment drive components 621 of the two alignment components 620 operate asynchronously, causing the support plate 610 to deflect and rotate in the width direction, further driving the mounting plate 110 to deflect and adjust the position of the carrier membrane 300. It should be noted that the support plate 610 is slidably connected to the second guide rail 623, and the positions of the two alignment components 620 are relatively fixed. When the support plate 610 deflects, it slides along the second guide rail 623, which acts as a compensation mechanism.

[0064] In one embodiment, reference Figure 1 As shown, the laminating machine also includes a positioning component 700, which includes a first positioning sensor 710 and at least two second positioning sensors 720. The first positioning sensor 710 is located at one end of the laminating mechanism 200, and the carrier film 300 is provided with a sensing hole. The first positioning sensor 710 cooperates with the sensing hole to sense the edge of the carrier film 300. The second positioning sensor 720 is located on one side of the carrier film 300 and is used to sense the edge of the carrier film 300.

[0065] It should be noted that the carrier film 300 is provided with positioning holes, which are oblong in shape. In specific implementation, the first positioning sensor 710 is installed at one end of the template 220 near the take-up roll 130. The first positioning sensor 710 cooperates with the positioning hole to detect whether the template film 310 is in place, that is, to detect the positioning of the template film 310 in the length direction. Two second positioning sensors 720 are respectively located near both ends of the template 220 and near the edge of the carrier film 300 to sense the carrier film 300, so as to detect the position of the template film 310 in the width direction and whether the template film 310 has deflected.

[0066] The above description is merely an exemplary embodiment of the present invention and does not limit the patent scope of the present invention. Any equivalent structural transformations made using the contents of the present invention's specification and drawings under the inventive concept of the present invention, or direct / indirect applications in other related technical fields, are included within the patent protection scope of the present invention.

Claims

1. A laminating machine, characterized in that, include: The mounting frame mechanism includes a mounting plate and a feed roll and a take-up roll disposed on the mounting plate. The feed roll is wound with a forming film and a carrier film. The forming film is disposed on the carrier film. The take-up roll is used to collect the carrier film, so that the forming film has a film-coating position. A laminating mechanism is located between the unwinding roll and the take-up roll. The laminating mechanism includes a laminating drive and a template. The laminating drive is driven to the template. The bottom contour of the template is adapted to the top contour of the workpiece to be laminated. At the laminating position, the template is correspondingly disposed to the workpiece to be laminated. The laminating drive drives the template to move toward the workpiece to be laminated, so as to clamp the template and the carrier film between the workpiece to be laminated and the template, thereby causing the template to leave the carrier film and adhere to the top surface of the workpiece to be laminated. The coating mechanism further includes a bracket, a fixed plate, and a guide assembly. The bracket is fixedly connected to both ends of the fixed plate. The coating drive is disposed on the fixed plate. The template is located on the side of the fixed plate facing the workpiece to be coated, and the output end of the coating drive is connected to the template. The guide assembly connects the template and the fixed plate respectively. The template includes a connecting layer, a supporting layer, and a flexible layer. The film-coating drive and the guiding assembly are respectively connected to the connecting layer. The supporting layer is located on the side of the connecting layer away from the film-coating drive. The flexible layer is located on the side of the supporting layer away from the connecting layer, and the flexible layer is used to contact the carrier film. The laminating machine also includes a cleaning mechanism, which includes a blower pipe and an exhaust pipe. The blower pipe is used to blow out ion air. The mounting plate is provided with a first sealing cover and a second sealing cover. The unloading roll is located inside the first sealing cover, and the reloading roll is located inside the second sealing cover. The blower pipe and the exhaust pipe are respectively installed inside the first sealing cover and the second sealing cover. The laminating machine also includes a film-picking mechanism, which includes a film-picking rod and a film-picking drive assembly. The film-picking drive assembly is drivenly connected to the film-picking rod and drives the film-picking rod to move from one end of the piece to be laminated to the other end, thereby driving the carrier film away from the molded film. The laminating machine also includes an adjustment mechanism, which includes a support plate, a correction component, and a lifting adjustment component. The support plate is fixedly connected to the lifting adjustment component, and the lifting adjustment component is also connected to the mounting plate and drives the mounting plate to move vertically. The correction component includes a correction drive and a first guide rail, and the correction drive drives the support plate to slide along the first guide rail.

2. The laminating machine as described in claim 1, characterized in that, The mounting plate is equipped with a drive roller and a clamping roller. The carrier film passes between the two and is wound around the take-up roll. The drive roller is connected to a drive motor, which drives the drive roller to rotate. The clamping roller is connected to a clamping drive component, which is fixedly connected to the mounting plate. The clamping drive component drives the clamping roller to approach the drive roller, so that the clamping roller cooperates with the drive roller to clamp the carrier film.

3. The laminating machine as described in claim 2, characterized in that, The drive motor is also connected to a transmission component, which is connected to the take-up roll; and / or, The mounting plate is provided with multiple guide rollers, and the carrier film is in contact with the guide rollers.

4. The laminating machine as described in claim 1, characterized in that, The correction assembly is provided in two parts, one of which is provided with a second guide rail. The first guide rail is perpendicular to the second guide rail. The two correction assemblies are respectively rotatably connected to the support plate, and the two correction assemblies also drive the support plate to rotate.

5. The laminating machine as described in claim 1, characterized in that, The laminating machine also includes a positioning component, which includes a first positioning sensor and at least two second positioning sensors. The first positioning sensor is located at one end of the laminating mechanism. The carrier film is provided with a sensing hole. The first positioning sensor cooperates with the sensing hole to sense the edge of the carrier film. The second positioning sensors are located on one side of the carrier film and are used to sense the edge of the carrier film.

Citation Information

Patent Citations

  • Automatic change arc glass laminating machine

    CN207310748U

  • Continuous Film Feeder

    KR102316831B1