Normalizing platform and film pasting equipment

By designing the lifting and lowering process platform and the lifting and lowering mechanism of the lifting and lowering mechanism in the film sticking equipment, the problem of rapid lifting and lowering caused by the size of the conveying mechanism in traditional equipment is solved, and the efficiency of film sticking and straightening is improved.

CN222860771UActive Publication Date: 2025-05-13LAPLACE (WUXI) SEMICON TECH CO LTD
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Patent Information

Application Number
CN202421508564.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-27
Publication Date
2025-05-13
Estimated Expiration
2034-06-27

AI Technical Summary

Technical Problem

In traditional film patching equipment, the conveying mechanism of the regular platform is large in size, which is inconvenient for rapid lifting and lowering, which affects the film patching efficiency.

Method used

A regular platform is designed to drive the process platform, the first and second regular mechanisms to lift and lower the lifting drive mechanism at the same time, replacing the original conveying mechanism lifting method, achieving rapid lifting and improving film pasting efficiency.

Benefits of technology

By driving the lifting and lowering of the process platform and the rectifying mechanism, rapid lifting and lowering are achieved, filming efficiency is improved, and the rectifying efficiency is improved by centering and rectifying.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of photovoltaics, in particular to a normalizing platform and film pasting equipment, and solves the problems that a conveying mechanism in a normalizing platform in the prior art is large in size and inconvenient to lift quickly, and the film pasting efficiency is affected. The normalizing platform comprises a conveying mechanism, a process platform, a first normalizing mechanism, a second normalizing mechanism and a lifting driving mechanism. The lifting driving mechanism can drive the process platform, the first correcting mechanism and the second correcting mechanism to ascend and descend at the same time, a conventional conveying mechanism lifting mode is replaced, the film pasting efficiency can be effectively improved, the distance for pushing a product to move in the centering correcting process is short, and the film pasting efficiency can be further improved.
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Description

Technical Field

[0001] The present disclosure relates to the field of photovoltaic technology, and in particular to a regularization platform and film pasting equipment. Background Art

[0002] Film laminating equipment is widely used in the photovoltaic industry, mainly for attaching reflective film tapes to photovoltaic back panels. In film laminating equipment, the regularization device can position the photovoltaic back panel before laminating, thereby improving the accuracy of film laminating.

[0003] In the traditional film laminating process, the film laminating platform is usually fixed on the frame, and the conveying mechanism is initially higher than the film laminating platform. When the conveying mechanism conveys the photovoltaic backsheet to the top of the film laminating platform, the conveying mechanism will descend below the film laminating platform to place the photovoltaic backsheet on the film laminating platform. The conveying mechanism is generally long and heavy, so it is not easy to achieve rapid lifting during the film laminating process, which affects the film laminating efficiency of the equipment. Utility Model Content

[0004] In view of this, the embodiments of the present disclosure provide a tidying platform and a film pasting device, which solve the problem that the conveying mechanism in the tidying platform in the prior art is large in size, not convenient for rapid lifting and lowering, and affects the film pasting efficiency.

[0005] In a first aspect, an embodiment of the present disclosure provides a tidying platform, comprising: a process platform having two opposite first sides and two opposite second sides, the process platform being provided with a processing station and a tidying station surrounding the processing station, and the process platform being configured to carry a product; at least two first tidying mechanisms, both installed on the process platform, each first side of the process platform being provided with the first tidying mechanism, at least a portion of the first tidying mechanism being located at the tidying station, the first tidying mechanism being configured to push the product away from the first side of the process platform and into the processing station; at least two second tidying mechanisms, both installed on the process platform, each second side of the process platform being provided with the second tidying mechanism, at least a portion of the second tidying mechanism being located at the tidying station, the second tidying mechanism being configured to push the product away from the second side of the process platform and into the processing station; a conveying mechanism being located at one side of the process platform and being configured to convey the product to above the process platform; a lifting drive mechanism being connected to the process platform and being configured to simultaneously drive the process platform and the tidying mechanism to lift and lower.

[0006] In some embodiments, the process platform includes: a plurality of support components, the plurality of support components are arranged in a matrix to form a load-bearing plane, the load-bearing plane has the processing station and the alignment station; an installation bracket, on which a plurality of the first alignment mechanisms, a plurality of the second alignment mechanisms, and a plurality of the support components are installed, and the installation bracket is connected to the lifting drive mechanism, and the installation bracket is configured to be able to be lifted and lowered synchronously with the first alignment mechanism, the second alignment mechanism and the plurality of support components under the drive of the lifting drive mechanism.

[0007] In some embodiments, the mounting bracket includes: a base; a plurality of columns, a plurality of the support assemblies are spaced apart from the base, a plurality of the support assemblies are fixedly connected to the base via a plurality of the columns, and at least a portion of the first aligning mechanism and at least a portion of the second aligning mechanism are located between the support assemblies and the base.

[0008] In some embodiments, two adjacent support components close to the first regulating mechanism or the second regulating mechanism are provided with notches, and the notches of the two adjacent support components are spliced ​​to form a first avoidance opening, and at least part of the first regulating mechanism or at least part of the second regulating mechanism is arranged at the first avoidance opening position.

[0009] In some embodiments, the first calibrating mechanism and the second calibrating mechanism both include: a calibrating piece, at least partially located at the calibrating station; a driving assembly, located between the supporting assembly and the base, and installed on the base, the driving assembly is connected to the calibrating piece, and is used to drive the calibrating piece to move.

[0010] In some embodiments, the regulating parts of the first regulating mechanism and the second regulating mechanism include: a lifting device connected to the driving assembly; a regulating body, at least partially located at the regulating station and connected to the lifting device, and the lifting device is used to drive the regulating body to rise or fall.

[0011] In some embodiments, the driving assembly includes: a mounting seat; a linear driving structure, located between the supporting assembly and the base, and installed on the base, the driving end of the linear driving structure is connected to the mounting seat, and is configured to be able to drive the mounting seat to move along the extension direction of the first avoidance opening; a sliding member, slidably connected to the mounting seat, the sliding direction of the sliding member is parallel to the extension direction of the first avoidance opening, and the sliding member is connected to the regulating member; an elastic member, respectively connected to the mounting seat and the sliding member, and is configured to apply an elastic force to the sliding member along a first direction, the first direction is parallel to the extension direction of the first avoidance opening, and is toward the center direction of the process platform.

[0012] In some embodiments, the driving assembly further includes: a limiting structure disposed on the mounting seat, wherein the limiting structure is configured to limit the sliding member on one side in the first direction.

[0013] In some embodiments, the conveying mechanism includes a plurality of conveyor belts, which are spaced apart and parallel to each other; among the plurality of support assemblies, second avoidance openings are formed between some adjacent support assemblies, and the second avoidance openings are configured to allow the corresponding conveyor belts to pass through.

[0014] In some embodiments, the conveying mechanism also includes a plurality of auxiliary support members, wherein the auxiliary support members are mounted on the mounting bracket, and a rotatable roller is provided at one end of the auxiliary support member facing away from the mounting bracket, and the upper sides of the plurality of rollers are tangent to a first plane, and the support surface of the conveyor belt is arranged coplanar with the first plane; among the plurality of support assemblies, some of the support assemblies are provided with a third avoidance opening, and the third avoidance opening is configured to allow the auxiliary support member to pass through.

[0015] In some embodiments, the lifting drive mechanism includes: a driving motor; a reducer connected to the driving motor; at least three coaxial lifters, which are respectively connected to the reducer and the process platform; wherein at least two of the coaxial lifters are arranged close to one of the first side edges, and at least one of the coaxial lifters is arranged close to another of the first side edges.

[0016] In some embodiments, it also includes: at least one buffer mechanism, the buffer mechanism includes: a connecting block; a buffer installed on the connecting block and arranged below the process platform; a limiter installed on the connecting block and arranged below the process platform, and the height of the limiter is less than the height of the buffer.

[0017] In a second aspect, an embodiment of the present disclosure provides a film pasting device, comprising: a frame; a film pasting device, located above the frame; a tidying platform as described in the first aspect, installed on the frame, and the tidying platform is configured to be able to move away from or approach the film pasting device through the lifting drive mechanism.

[0018] The embodiment of the present disclosure provides a tidying platform and film pasting equipment, which can simultaneously drive the process platform, the first tidying mechanism and the second tidying mechanism to rise and fall through the lifting drive mechanism. In the rising position, the height of the process platform can be raised, so that the product on the process platform is separated from the conveying mechanism, so as to facilitate the tidying and film pasting operations. In the descending position, the product is in contact with the conveying mechanism and carried by the conveying mechanism, so as to facilitate the conveying operation. By driving the process platform, the first tidying mechanism and the second tidying mechanism to rise and fall to replace the original conveying mechanism lifting and falling method, the problem of slow lifting speed affecting the film pasting efficiency can be effectively solved; in addition, at least one first tidying mechanism is respectively provided on the two first sides of the process platform, and at least one second tidying mechanism is respectively provided on the two second sides of the process platform, and the first tidying mechanism and the second tidying mechanism can work together to achieve centering and tidying. Compared with the conventional tidying form of pushing the product in a single direction so that the product cooperates with the blocking member on one side, the centering and tidying process in this embodiment pushes the product to move a shorter distance, so the tidying efficiency is higher, which is conducive to improving the efficiency of film pasting. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 Shown is a schematic structural diagram of a regular platform provided in one embodiment of the present disclosure.

[0020] Figure 2 The figure shows a schematic diagram of the installation positions of the first aligning mechanism and the second aligning mechanism in the aligning platform provided in one embodiment of the present disclosure.

[0021] Figure 3 Shown is a schematic structural diagram of a process platform provided in one embodiment of the present disclosure.

[0022] Figure 4 The present invention provides an embodiment of the present invention. Figure 3 An enlarged view of the process platform at A is shown.

[0023] Figure 5 Shown is a schematic diagram of a structure located below a support assembly provided in an embodiment of the present disclosure.

[0024] Figure 6 Shown is a schematic structural diagram of a regulating mechanism provided in one embodiment of the present disclosure.

[0025] Figure 7 Shown is a schematic structural diagram of a conveying mechanism provided in one embodiment of the present disclosure.

[0026] Figure 8 Shown is a schematic structural diagram of a lifting drive mechanism provided in one embodiment of the present disclosure.

[0027] Fig. 9 Shown is a schematic structural diagram of a buffer mechanism provided in one embodiment of the present disclosure.

[0028] Fig.10 Shown is a schematic structural diagram of a film pasting device provided in one embodiment of the present disclosure.

[0029] Reference numerals:

[0030] 1. Film laminating equipment; 10. Rack; 20. Film laminating device; 30. Smoothing platform; 100. Conveying mechanism; 110. Conveying belt; 120. Auxiliary support member; 130. Conveying drive device; 200. Processing platform; 210. Support assembly; 211. First plate body; 212. Second plate body; 220. Base; 230. Column; 240. First avoidance; 250. Second avoidance; 260. Third avoidance; 270. Processing station; 280. Smoothing station; 300 , first straightening mechanism; 310, straightening member; 311, lifting device; 312, straightening body; 320, driving assembly; 321, mounting seat; 322, linear driving structure; 323, sliding member; 324, elastic member; 325, limiting structure; 400, lifting driving mechanism; 410, driving motor; 420, reducer; 430, coaxial lifter; 500, buffer mechanism; 510, connecting block; 520, buffer; 530, limiting member; 600, second straightening mechanism. DETAILED DESCRIPTION

[0031] The following will be combined with the drawings in the embodiments of the present disclosure to clearly and completely describe the technical solutions in the embodiments of the present disclosure. Obviously, the described embodiments are only part of the embodiments of the present disclosure, not all of the embodiments. Based on the embodiments in the present disclosure, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present disclosure.

[0032] The conveying mechanism of the film pasting equipment is used to realize the mobile conveying of products (for example, photovoltaic products), and the platform meets the support requirements for the products during the film pasting process. During the product film pasting process, the product needs to switch between the state supported by the conveying mechanism and the state supported by the platform. In the prior art, the height of the platform used by the film pasting equipment to support the product during the film pasting process is fixed. In order to realize the switching of the two states of the product supported by the platform and supported by the conveying mechanism, the scheme of lifting the conveying mechanism and the straightening mechanism is usually adopted. Specifically, the conveying mechanism and the straightening mechanism need to be raised during the conveying process so that the conveying mechanism lifts the product to a height away from the platform. During the straightening and film pasting process, the conveying mechanism needs to be lowered so that the height of the conveying mechanism is lower than the height of the platform, and the product is supported by the platform. Usually, the conveying mechanism is provided with a lifting drive structure to meet the needs of the two working conditions of conveying and film pasting, and the conveying mechanism is generally long and heavy, which is not convenient for rapid lifting and lowering. The regularization platform of the disclosed embodiment is intended to solve this problem, reduce the complexity of the overall structure, reduce the execution action, and improve the film pasting efficiency.

[0033] like Figure 1 and Figure 2 As shown, the aligning platform of the embodiment of the present disclosure includes a conveying mechanism 100 , a process platform 200 , a first aligning mechanism 300 , a second aligning mechanism 600 and a lifting drive mechanism 400 .

[0034] The process platform 200 has two opposite first sides and two opposite second sides. The process platform 200 is provided with a processing station 270 and a regularization station 280 surrounding the processing station 270. The process platform 200 is configured to carry a product, which may be glass, silicon wafers or other products that require film pasting.

[0035] At least two first straightening mechanisms 300 are provided, and at least two first straightening mechanisms 300 are installed on the process platform 200. A first straightening mechanism 300 is provided on each first side of the process platform 200. At least part of the first straightening mechanism 300 is located at the straightening station 280. The first straightening mechanism 300 is configured to push the product away from the first side of the process platform 200 and enter the processing station 270.

[0036] There are at least two second straightening mechanisms 600, and at least two second straightening mechanisms 600 are installed on the process platform 200. Each second side of the process platform 200 is provided with a second straightening mechanism 600. At least part of the second straightening mechanism 600 is located at the straightening station 280. The second straightening mechanism 600 is configured to push the product away from the second side of the process platform 200 and enter the processing station 270.

[0037] The conveying mechanism 100 is located on one side of the process platform 200 , and is configured to convey the product to above the process platform 200 .

[0038] The lifting drive mechanism 400 is connected to the process platform 200 , and the lifting drive mechanism 400 is configured to simultaneously drive the process platform 200 and the straightening mechanism 300 to lift and lower.

[0039] The regularization platform of this embodiment changes the overall structure of the regularization platform, and then the execution steps can be changed to achieve the purpose of reducing complexity and improving film pasting efficiency. Specifically, this embodiment adjusts the lifting and lowering mode of the conveying mechanism 100 and the regularization mechanism 300 to the lifting and lowering mode of the process platform 200, the first regularization mechanism 300 and the second regularization mechanism 600. When the lifting drive mechanism 400 drives the process platform 200, the first regularization mechanism 300 and the second regularization mechanism 600 to lower, the conveying mechanism 100 can be used for support and conveyance. When the lifting drive mechanism 400 drives the process platform 200, the first regularization mechanism 300 and the second regularization mechanism 600 to rise, the process platform 200 can be used for support to achieve regularization and film pasting operations. Since the conveying mechanism 100 does not need to be lifted or lowered, the height difference between the conveying mechanism 100 and the film pasting mechanism is fixed, and there will be no interference between them. Moreover, after the process platform 200 is raised, the height difference between the film pasting mechanism and the process platform 200 can be reduced to meet the film pasting requirements. Compared with the lifting and lowering of the conveying mechanism 100 in the related art, the regularization platform of this embodiment can achieve rapid lifting and lowering, effectively improving the efficiency of film pasting. In addition, at least one first regularization mechanism 300 is respectively provided on the two first sides of the process platform 200 of this embodiment, and at least one second regularization mechanism 600 is respectively provided on the two second sides of the process platform 200. The first regularization mechanism 300 and the second regularization mechanism 600 can work together to achieve centering regularization. Compared with the conventional regularization form of pushing the product in a single direction so that the product cooperates with the blocking member on one side, the centering regularization process in this embodiment pushes the product to move a shorter distance, so the regularization efficiency is higher, which is conducive to improving the efficiency of film pasting.

[0040] In some embodiments of the present disclosure, Figures 1 to 4 As shown, the process platform 200 includes a plurality of support components 210, which are arranged in a matrix (arranged in multiple rows in parallel), and the plurality of support components 210 form a carrying plane, which has the above-mentioned processing stations 270 and regularization stations 280.

[0041] Optionally, the support assembly 210 includes a first plate body 211 and a second plate body 212, the first plate body 211 and the second plate body 212 are both arranged horizontally, two second plate bodies 212 are arranged side by side on the upper side of the first plate body 211, and the two second plate bodies 212 are fixedly connected to the first plate body 211 by means of, for example, bolts, screws, clamping or bonding.

[0042] The process platform 200 also includes an installation bracket, on which are installed multiple first straightening mechanisms 300, multiple second straightening mechanisms 600 and multiple support assemblies 210, respectively. Moreover, the installation bracket is connected to the lifting drive mechanism 400, and the installation bracket is configured to be able to be lifted and lowered synchronously with the first straightening mechanism 300, the second straightening mechanism 600 and the multiple support assemblies 210 under the drive of the lifting drive mechanism 400.

[0043] In this embodiment, the first aligning mechanism 300, the second aligning mechanism 600 and the plurality of supporting components 210 are connected by an installation bracket. In the process of the lifting drive mechanism 400 driving the installation bracket to lift and lower, the synchronous movement of the first aligning mechanism 300, the second aligning mechanism 600 and the plurality of supporting components 210 can be ensured, which is conducive to simplifying the driving structure and reducing the difficulty of lifting and lowering driving.

[0044] In some embodiments of the present disclosure, the mounting bracket includes a base 220 and a plurality of columns 230, a plurality of support assemblies 210 are spaced apart from the base 220, the plurality of support assemblies 210 are fixedly connected to the base 220 via the plurality of columns 230, and the first aligning mechanism 300 and the second aligning mechanism 600 are at least partially located between the support assemblies 210 and the base 220.

[0045] The base 220 may adopt a frame structure formed by fixing a plurality of transversely arranged rods and a plurality of longitudinally arranged rods to each other, thereby reducing the overall weight and material of the base 220. The transversely arranged rods and the longitudinally arranged rods may both adopt, for example, a rectangular or circular hollow tube structure, further reducing the overall weight and material. Preferably, the transversely arranged rods and the longitudinally arranged rods both adopt a rectangular hollow tube structure, so as to facilitate connection with other components.

[0046] The setting of the column 230 increases the distance between the support assembly 210 and the base 220, and provides necessary installation space for the first regulating mechanism 300, the second regulating mechanism 600, etc. The entire process platform 200 not only has a supporting function, but also can be flexibly integrated with other process equipment to achieve multifunctionality. In order to reduce the overall weight and reduce costs, the column 230 can adopt a hollow structure.

[0047] The column 230 and the base 220 and the support assembly 210 may be detachably connected by means such as threaded connection or snap connection, or may be non-detachably connected by means such as bonding or welding.

[0048] Each support assembly 210 can be connected to the base 220 via one or more columns 230. This design makes the installation of the support assembly 210 more flexible and can be adjusted according to actual needs. When a support form of multiple columns 230 is adopted, the load-bearing capacity and stability of the support assembly 210 can be further improved.

[0049] Combination Figure 1 and Figure 6 In some embodiments of the present disclosure, two adjacent support assemblies 210 close to the first aligning mechanism 300 or the second aligning mechanism 600 are provided with notches, and the notches of the two adjacent support assemblies 210 are spliced ​​to form a first avoidance opening 240, and at least a portion of the first aligning mechanism 300 or at least a portion of the second aligning mechanism 600 is arranged at the position of the first avoidance opening 240.

[0050] The first avoidance opening 240 starts from the edge of the process platform 200 and extends toward the center of the process platform 200. The first avoidance opening 240 not only provides an installation position for the first and second regulating mechanisms 300 and 600, but also ensures that the first and second regulating mechanisms 300 and 600 have sufficient space when performing the regulating action. When the product is placed on the process platform 200, since the first avoidance opening 240 provides sufficient space for the first and second regulating mechanisms 300 and 600, the first and second regulating mechanisms 300 and 600 can perform their actions without hindrance, ensuring that the product can be accurately regulated.

[0051] In addition, the first avoidance opening 240 is formed by the intervals between adjacent support assemblies 210 , which will not have a negative impact on the support performance of the process platform 200 and can also reduce the overall weight of the process platform 200 .

[0052] In this embodiment, there is no specific limitation on the number of the first straightening mechanisms 300, the second straightening mechanisms 600 and the first avoidance openings 240. For example, the two first side edges of the process platform 200 are respectively provided with two first straightening mechanisms 300 and two first avoidance openings 240, and the two second side edges of the process platform 200 are respectively provided with one second straightening mechanism 600 and one first avoidance opening 240.

[0053] like Figure 6 As shown, in some embodiments of the present disclosure, the first straightening mechanism 300 and the second straightening mechanism 600 include a straightening piece 310 and a driving assembly 320. At least a portion of the straightening piece 310 is located at the straightening station 280 and is located in the first avoidance opening 240. The driving assembly 320 is located between the support assembly 210 and the base 220, and is installed on the base 220. The driving assembly 320 is connected to the straightening piece 310 and is used to drive the straightening piece 310 to move. The driving direction of the driving assembly 320 is parallel to the extension direction of the first avoidance opening 240.

[0054] Specifically, at least part of the gauge 310 is disposed in the first avoidance opening 240, which not only fully utilizes the space on the process platform 200, but also ensures that the gauge 310 can accurately contact the product and perform the correction action. The drive assembly 320 is connected to the gauge 310 to provide power for it. The driving direction of the drive assembly 320 is parallel to the extension direction of the first avoidance opening 240, so that the drive assembly 320 can drive the gauge 310 to move along the extension direction of the first avoidance opening 240, thereby realizing the correction of the product in the extension direction of the first avoidance opening 240.

[0055] Through the coordinated work of the regulating member 310 and the driving assembly 320, the first regulating mechanism 300 and the second regulating mechanism 600 can achieve accurate and efficient regulation of the product. During the film application process, the first regulating mechanism 300 and the second regulating mechanism 600 can adjust the position and posture of the product as needed to ensure that the relative position between the product and the film application mechanism is accurate, thereby improving the film application quality and efficiency.

[0056] Optionally, the regulating part 310 includes a lifting device 311 and a regulating body 312, wherein the lifting device 311 can be a cylinder, an electric push rod, etc., and the lifting device 311 is connected to a driving assembly 320, and the driving assembly 320 can drive the lifting device 311 to move. At least part of the regulating body 312 is located at the regularization station 280 and is connected to the lifting device 311, and the lifting device 311 is used to drive the regulating body 312 to rise or fall. The specific shape and size of the regulating body 312 can be designed according to actual needs to ensure that it can effectively regulate and position the product.

[0057] In some embodiments of the present disclosure, the driving assembly 320 includes a mounting seat 321, a linear driving structure 322, a sliding member 323, and an elastic member 324. The linear driving structure 322 is located between the supporting assembly 210 and the base 220, and is installed on the base 220. The driving end of the linear driving structure 322 is connected to the mounting seat 321, and the linear driving structure 322 is configured to drive the mounting seat 321 to move along the extension direction of the first avoidance opening 240. The sliding member 323 is slidably connected to the mounting seat 321, and the sliding direction of the sliding member 323 is parallel to the extension direction of the first avoidance opening 240. The sliding member 323 is connected to the regulating member 310. The elastic member 324 is respectively connected to the mounting seat 321 and the sliding member 323, and the elastic member 324 is configured to apply an elastic force along the first direction X to the sliding member 323, and the first direction X is parallel to the extension direction of the first avoidance opening 240 and is oriented toward the direction close to the center of the process platform 200.

[0058] In this embodiment, the sliding member 323 is slidably connected to the mounting seat 321, and its sliding direction is also parallel to the extension direction of the first avoidance opening 240. The sliding member 323 is connected to the regulating member 310. When the sliding member 323 slides on the mounting seat 321, the regulating member 310 can move accordingly. Therefore, when the regulating member 310 contacts the product and the linear drive structure 322 continues to drive the mounting seat 321 to move toward the first direction X, the sliding member 323 and the regulating member 310 can generate displacement in the direction opposite to the first direction X relative to the mounting seat 321, thereby preventing the regulating member 310 from exerting too much pressure on the product.

[0059] In this embodiment, the elastic member 324 cooperates with the mounting seat 321 and the sliding member 323 to ensure that the regulating member 310 can exert a certain pressure on the product to meet the pressure requirement of regulation, and the buffering effect of the elastic member 324 ensures that the contact between the regulating member 310 and the product is soft and stable to avoid damage to the product.

[0060] The elastic member 324 can be in various forms, such as a compression spring, a tension spring or an elastic sheet, etc., and can be selected according to actual needs. Taking the elastic member 324 as a compression spring as an example, the elastic member 324 can be arranged on the side of the sliding member 323 opposite to the first direction X, and one end of the elastic member 324 is relatively fixed to the mounting seat 321, and the other end is in abutment with the sliding member 323.

[0061] The linear drive structure 322 of this embodiment can be driven by electric, pneumatic or hydraulic means, depending on actual needs and equipment configuration, and is not specifically limited here.

[0062] In some embodiments, the outer side of the gauge 310 is detachably covered with an elastic layer. The elastic layer can be made of materials such as rubber. When the gauge 310 contacts the product, the elastic layer can play a role of buffering and protection, effectively avoiding the damage that may be caused by the direct hard contact between the gauge 310 and the product. Not only does it protect the surface of the product, but it also extends the service life of the gauge 310. The elastic layer is a detachable structure. In practical applications, elastic layers of different materials, thicknesses or hardness can be flexibly replaced according to different needs and scenarios. For example, for more fragile products or for more precise calibration operations, a softer and thicker elastic layer can be selected; while for more solid products or for scenarios that require greater calibration force, a harder and thinner elastic layer can be selected. Improves its practicality and versatility. In addition, the detachable connection method also facilitates the maintenance and replacement of the elastic layer. When the elastic layer is worn or damaged, it can be easily removed and replaced with a new elastic layer without replacing the entire gauge 310, reducing the cost of use and the difficulty of maintenance.

[0063] In some embodiments of the present disclosure, the driving assembly 320 further includes a limiting structure 325 , which is disposed on the mounting seat 321 , and the limiting structure 325 is configured to limit the sliding member 323 on one side in the first direction X.

[0064] When the sliding member 323 and the regulating member 310 move to a certain position, the limiting structure 325 contacts the sliding member 323 and generates resistance, thereby preventing the sliding member 323 and the regulating member 310 from continuing to move along the first direction X. The limiting structure 325 can adjust the pre-compression amount of the elastic member 324 .

[0065] In practical applications, the limiting structure 325 can be designed and adjusted according to specific needs. For example, the movement range of the sliding member 323 and the regulating member 310 can be controlled by adjusting the position and size of the limiting structure 325, that is, the pre-compression amount of the elastic member 324 can be controlled. In addition, the limiting structure 325 can also be made of different materials and manufacturing processes to meet different working environments and performance requirements.

[0066] Optionally, the sliding member 323 abuts against the limiting structure 325 .

[0067] Optionally, the limiting structure 325 includes a limiting seat and a limiting bolt, the limiting seat is fixedly arranged on the mounting seat 321, the limiting screw is passed through the limiting seat and is threadedly connected to the limiting seat, and the extending direction of the limiting screw is along the first direction X. The limiting length can be adjusted by rotating the limiting screw, and then the pre-compression amount of the elastic member 324 can be adjusted to meet the regulation requirements of different products.

[0068] like Figure 7 As shown, in some embodiments of the present disclosure, the conveying mechanism 100 includes a plurality of conveyor belts 110, which are arranged at intervals and parallel to each other, and a second avoidance opening 250 is formed between some adjacent support assemblies 210 in the plurality of support assemblies 210, and the second avoidance opening 250 is configured to allow the corresponding conveyor belt 110 to pass through. Each second avoidance opening 250 extends from one side of the process platform 200 to the other side, so that the conveyor belt 110 can pass through the process platform 200 as a whole, avoiding interference between the process platform 200 and the conveyor belt 110 when the process platform 200 is raised or lowered.

[0069] Optionally, multiple conveyor belts 110 are connected to each other through multiple connecting shafts, which ensures synchronous movement between the conveyor belts 110 and improves the stability of the overall structure. One of the connecting shafts is connected to the conveyor drive device 130 to provide a stable power source for the conveyor belt 110. The conveyor drive device 130 can be in various forms such as an electric motor or a hydraulic motor, depending on actual needs and equipment configuration.

[0070] In some embodiments of the present disclosure, the conveying mechanism 100 further includes a plurality of auxiliary support members 120, the auxiliary support members 120 are rolling structures, the upper sides of the auxiliary support members 120 are tangent to the first plane, and the support surface of the conveyor belt 110 is coplanar with the first plane.

[0071] Specifically, the auxiliary support member 120 is a roller structure, which is fixedly connected to the bracket of the conveyor belt 110 through a connecting frame, and the rolling direction of the auxiliary support member 120 is parallel to the conveying direction of the conveyor belt 110. The auxiliary support members 120 can be arranged in two rows, and the two rows of auxiliary support members 120 are respectively placed on both sides of a plurality of conveyor belts 110. The arrangement direction of each row of auxiliary support members 120 is parallel to the conveying direction of the conveyor belt 110, and the upper side of each auxiliary support member 120 is coplanar with the support surface of the conveyor belt 110. The auxiliary support members 120 can play an auxiliary supporting role for the product when the conveyor belt 110 conveys the product, thereby increasing the conveying stability.

[0072] Combination Figure 1 In some embodiments of the present disclosure, among the plurality of support assemblies 210 , some of the support assemblies 210 are provided with a third avoidance opening 260 , and the third avoidance opening 260 is configured to allow the auxiliary support member 120 to pass through.

[0073] In the case where the support assembly 210 includes a first plate body 211 and a second plate body 212, the third avoidance opening 260 can be a groove that vertically penetrates the first plate body 211 and one of the second plate bodies 212, or can be a groove that vertically penetrates the first plate body 211 and two second plate bodies 212. In practical applications, the setting of the third avoidance opening 260 can be adjusted and optimized according to specific needs. For example, the number and distribution of the third avoidance openings 260 can be determined according to the number and position of the auxiliary support members 120. At the same time, the shape and size of the third avoidance opening 260 can also be adjusted to adapt to auxiliary support members 120 of different specifications and types.

[0074] By providing the third avoidance opening 260, the auxiliary support member 120 can be allowed to pass through the process platform 200 during the lifting and lowering of the process platform 200 to avoid mutual interference. This arrangement allows the auxiliary support member 120 to flexibly select an installation position according to actual support requirements.

[0075] Combination Figure 8In some embodiments of the present disclosure, the lifting drive mechanism 400 includes a driving motor 410, a reducer 420, and a coaxial lifter 430. The motor shaft of the driving motor 410 is connected to the input end of the reducer 420, the output end of the reducer 420 is directly or indirectly connected to the input end of the coaxial lifter 430, and the output end of the coaxial lifter 430 is connected to the process platform 200. At least three coaxial lifters 430 are provided, and at least three coaxial lifters 430 are connected in sequence through transmission shafts to achieve synchronous lifting, wherein at least two coaxial lifters 430 are arranged near one first side, and at least one coaxial lifter 430 is arranged near another first side.

[0076] The driving motor 410 is the power source of the entire lifting drive mechanism 400, and its motor shaft is connected to the input end of the reducer 420. When the driving motor 410 is started, the power is transmitted to the reducer 420 through the motor shaft. The function of the reducer 420 is to reduce the speed and increase the torque, which can make the lifting process more stable and also reduce energy consumption. The output end of the reducer 420 is connected to the input end of the coaxial lifter 430, and the decelerated power is transmitted to the coaxial lifter 430.

[0077] The output end of the coaxial lifter 430 is connected to the process platform 200. When the coaxial lifter 430 receives power from the reducer 420, it drives the process platform 200 to perform lifting and lowering movements. In order to ensure the stability and efficiency of lifting and lowering, at least three coaxial lifters 430 are provided, and at least three coaxial lifters 430 are connected in sequence through transmission shafts to achieve synchronous lifting and lowering, ensuring that the movements of various parts remain consistent during the lifting and lowering process to avoid deviation or shaking.

[0078] Combination Figure 1 and Fig. 9 In some embodiments of the present disclosure, the regularization platform further includes at least one buffer mechanism 500 , and the buffer mechanism 500 is located below the process platform 200 .

[0079] The buffer mechanism 500 in this embodiment can be implemented in various forms, such as a spring, a rubber pad, a hydraulic cylinder, etc. The buffer mechanism 500 can provide a certain degree of elastic buffering when the process platform 200 is raised or lowered, so that the process platform 200 can stop smoothly when it reaches a specified position, avoiding equipment damage or unstable operation due to sudden impact and vibration.

[0080] The setting of the buffer mechanism 500 not only improves the overall stability and reliability of the regular platform, but also prolongs the service life of the device. At the same time, it also helps to improve the accuracy and efficiency of the film application operation, ensuring that the product can maintain a stable state during the film application process, and avoiding the degradation of the film application quality due to vibration or shaking.

[0081] In some embodiments of the present disclosure, the buffer mechanism 500 includes a connection block 510 and a buffer 520. The buffer mechanism 500 includes a connection block 510 and a buffer 520. The buffer 520 is installed on the connection block 510 and is arranged below the process platform 200. The buffer 520 can effectively reduce the impact and vibration of the process platform 200 during the lifting process, thereby improving the stability and reliability of the entire regular platform.

[0082] In addition, in order to further ensure the safety of the process platform 200 during the lifting process, the buffer mechanism 500 also includes a limiter 530. The limiter 530 is also connected to the connection block 510 and is arranged below the process platform 200. The height of the limiter 530 is less than the height of the buffer 520. During the process of the process platform 200 descending, it will first contact the buffer 520. When the buffer 520 is under pressure to reduce the support height, it can be limited by the limiter 530 to prevent the process platform 200 from excessively descending in an unexpected situation and causing excessive impact on the buffer 520.

[0083] The connection block 510 is provided with a threaded hole, and the limiter 530 is threadedly connected to the connection block 510 through the threaded hole. This connection method can facilitate the installation and removal of the limiter 530, and also facilitate the adjustment of the height of the limiter 530 to meet different work requirements.

[0084] The disclosed embodiment also provides a film pasting device 1, comprising a frame 10, a film pasting device 20 and the tidying platform 30 in the above embodiment. The film pasting device 20 is located above the frame 10, the tidying platform 30 is installed on the frame 10, and the tidying platform 30 is configured to be able to move away from or approach the film pasting device 20 through a lifting drive mechanism 400.

[0085] The frame 10 serves as a supporting structure for the entire device, ensuring the stable installation and operation of each component. The film pasting device 20 is located above the frame 10 and can perform film pasting operations on the products on the regular platform 30.

[0086] Since the film-laminating device 1 of the embodiment of the present disclosure includes the tidying platform 30 , all technical features and technical effects of the film-laminating device 1 including the tidying platform 30 are not repeated here.

[0087] The phrases "one embodiment", "an embodiment", etc. mentioned in the specification indicate that the embodiment described may include a specific feature, structure or characteristic, but not every embodiment may include the specific feature, structure or characteristic. In addition, such phrases do not necessarily refer to the same embodiment. In addition, when a specific feature, structure or characteristic is described in conjunction with an embodiment, it is within the knowledge of those skilled in the art to implement such feature, structure or characteristic in conjunction with other embodiments, whether explicitly or not explicitly described.

[0088] It should be understood that “on,” “above,” and “over” in this disclosure should be interpreted in the broadest manner, so that “on” not only means “directly on something,” but also includes the meaning of “on something” with intervening features or layers therebetween, and “above” or “over” not only includes the meaning of “above” or “over,” but also may include the meaning of “above” or “over something” with no intervening features or layers therebetween (i.e., directly on something).

[0089] Additionally, spatially relative terms, such as "below," "below," "beneath," "above," "above," etc., may be used herein for ease of description to describe the relationship of one component or feature to other components or features as shown in the figures. The spatially relative terms are intended to encompass different orientations of the component in use or operation in addition to the orientation depicted in the figures. The device may be otherwise oriented (rotated 90 degrees or at other orientations), and the spatially relative descriptors used herein may likewise be interpreted accordingly.

[0090] It should be noted that, in this article, the terms "include", "comprises" or any other variations thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such process, method, article or device. In the absence of further restrictions, an element defined by the sentence "comprises a ..." does not exclude the existence of other identical elements in the process, method, article or device including the element.

[0091] The above description is only a preferred embodiment of the present disclosure and is not intended to limit the present disclosure. Any modifications, equivalent substitutions, etc. made within the spirit and principles of the present disclosure should be included in the protection scope of the present disclosure.

Claims

1. A regular platform, characterized in that: include: A process platform having two opposite first sides and two opposite second sides, the process platform being provided with a processing station and a calibrating station surrounding the processing station, and the process platform being configured to carry a product; At least two first straightening mechanisms, both installed on the process platform, each first side of the process platform is provided with the first straightening mechanism, at least part of the first straightening mechanism is located at the straightening station, and the first straightening mechanism is configured to push the product away from the first side of the process platform and into the processing station; At least two second straightening mechanisms, both installed on the process platform, each second side of the process platform is provided with the second straightening mechanism, at least part of the second straightening mechanism is located at the straightening station, and the second straightening mechanism is configured to push the product away from the second side of the process platform and into the processing station; A conveying mechanism, located on one side of the process platform and configured to convey the product to above the process platform; The lifting drive mechanism is connected to the process platform and is configured to simultaneously drive the process platform and the straightening mechanism to lift and lower.

2. The structured platform according to claim 1, characterized in that: The process platform includes: A plurality of support components, wherein the plurality of support components are arranged in a matrix to form a bearing plane, and the bearing plane has the processing station and the regularization station; The mounting bracket is equipped with a plurality of the first aligning mechanisms, a plurality of the second aligning mechanisms, and a plurality of the supporting components, and is connected to the lifting drive mechanism. The mounting bracket is configured to be able to be lifted and lowered synchronously with the first aligning mechanisms, the second aligning mechanisms, and the plurality of the supporting components under the drive of the lifting drive mechanism.

3. The structured platform according to claim 2, characterized in that: The mounting bracket comprises: Base; A plurality of columns, a plurality of the support assemblies are spaced apart from the base, a plurality of the support assemblies are fixedly connected to the base via the plurality of columns, and at least a portion of the first aligning mechanism and at least a portion of the second aligning mechanism are located between the support assemblies and the base.

4. The structured platform according to claim 3, characterized in that: The two adjacent support components close to the first regulating mechanism or the second regulating mechanism are both provided with notches, and the notches of the two adjacent support components are spliced ​​to form a first avoidance opening, and at least part of the first regulating mechanism or at least part of the second regulating mechanism is arranged at the position of the first avoidance opening.

5. The structured platform according to claim 4, characterized in that: The first regulating mechanism and the second regulating mechanism both include: A calibrating piece, at least partly located at the calibrating station; The driving component is located between the supporting component and the base and is installed on the base. The driving component is connected to the regulating piece and is used to drive the regulating piece to move.

6. The structured platform according to claim 5, characterized in that: The regulating parts of the first regulating mechanism and the second regulating mechanism include: A lifting device connected to the driving assembly; The regulating body is at least partially located at the regulating station and is connected to the lifting device, and the lifting device is used to drive the regulating body to rise or fall.

7. The tidying platform according to claim 6, characterized in that: The drive assembly comprises: Mounting seat; A linear drive structure is located between the support assembly and the base and is mounted on the base, wherein a driving end of the linear drive structure is connected to the mounting seat and is configured to drive the mounting seat to move along an extension direction of the first avoidance opening; A sliding member, slidably connected to the mounting seat, wherein the sliding direction of the sliding member is parallel to the extending direction of the first avoidance opening, and the sliding member is connected to the regulating member; The elastic member is respectively connected to the mounting seat and the sliding member, and is configured to apply an elastic force to the sliding member along a first direction, wherein the first direction is parallel to the extension direction of the first avoidance opening and is toward the center direction of the process platform.

8. The structured platform according to claim 7, characterized in that: The drive assembly also includes: A limiting structure is arranged on the mounting seat, and the limiting structure is configured to limit the sliding member on one side in the first direction.

9. The structured platform according to any one of claims 2 to 4, characterized in that: The conveying mechanism comprises a plurality of conveying belts, wherein the plurality of conveying belts are arranged at intervals and parallel to each other; Among the plurality of support assemblies, some adjacent support assemblies are spaced apart to form a second avoidance opening, and the second avoidance opening is configured to allow the corresponding conveyor belt to pass through.

10. The tidying platform according to claim 9, characterized in that: The conveying mechanism further comprises a plurality of auxiliary support members, the auxiliary support members are mounted on the mounting bracket, a rotatable roller is provided at one end of the auxiliary support member away from the mounting bracket, the upper sides of the plurality of rollers are tangent to a first plane, and the support surface of the conveyor belt is arranged coplanar with the first plane; Among the plurality of support assemblies, some of the support assemblies are provided with a third avoidance opening, and the third avoidance opening is configured to allow the auxiliary support member to pass through.

11. The structured platform according to any one of claims 1 to 4, characterized in that: The lifting drive mechanism comprises: Drive motor; A reducer connected to the driving motor; At least three coaxial lifters, each of which is connected to the reducer and the process platform; Among them, at least two of the coaxial lifters are arranged close to one of the first side edges, and at least one of the coaxial lifters is arranged close to another of the first side edges.

12. The structured platform according to any one of claims 1 to 4, characterized in that: Also includes: At least one buffer mechanism, the buffer mechanism comprising: Connect blocks; A buffer is mounted on the connecting block and is arranged below the process platform; A limiting member is installed on the connecting block and is arranged below the process platform, and a height of the limiting member is smaller than a height of the buffer.

13. A film sticking device, characterized in that: include: frame; A film sticking device, located above the frame; The tidying platform as described in any one of claims 1 to 12 is installed on the frame, and the tidying platform is configured to be able to move away from or approach the film sticking device through the lifting drive mechanism.