Material storage and laminating machine

By designing the supporting power components and material moving components in the material warehouse, the automatic loading of white film is realized, which solves the problem of low efficiency of manual placement of white film in the laminating machine and improves the lamination efficiency.

CN120423306BActive Publication Date: 2025-10-03SHENZHEN JINMINJIANG RIVER MECHANICAL & ELECTRICAL EQUIP
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Patent Information

Application Number
CN202510929744.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-07-07
Publication Date
2025-10-03
Estimated Expiration
2045-07-07

AI Technical Summary

Technical Problem

The loading efficiency of white film in existing laminating machines is low, which affects the laminating efficiency and requires manual placement.

Method used

A material warehouse is designed, which includes a bottom support frame, a bottom support plate, a material storage frame and a material transfer assembly. The bottom support plate is driven to slide by a supporting power assembly, and the material transfer assembly is used to realize automatic loading of white film and automatically place the white film between adjacent products.

Benefits of technology

The automatic loading of white film is realized, the laminating efficiency of the laminating machine is improved, and the need for manual operation is reduced.

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Abstract

The present application provides a material warehouse and a laminating machine, the material warehouse includes a bottom support frame, a bottom support plate, two material storage frames, a support power assembly, a top support frame and a material transfer assembly. The present application can drive the bottom support plate to slide back and forth along the first direction on the bottom support frame through the support power assembly. When the bottom support plate moves to a position where a material storage frame and the material transfer assembly are aligned, the white film can be sucked up by the material transfer assembly; when the bottom support plate moves to a position where another material storage frame and the material transfer assembly are aligned, the sucked white film can be placed between two adjacent products in the material storage frame again by the material transfer assembly. By repeating the above-mentioned operation steps, the white film can be placed one by one between two adjacent products to separate the two adjacent products. The laminating machine using this material warehouse can realize automatic loading of white film by alternately cooperating with the two material storage frames through the material transfer assembly, thereby replacing manual operations and improving the laminating efficiency of the laminating machine.
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Description

Technical Field

[0001] The present application belongs to the field of film lamination technology, and more specifically, relates to a material library and a laminating machine using the material library. Background Art

[0002] A laminator is a device that laminates multiple electrode membranes into products through the cooperation of upper and lower laminating assemblies. After lamination, the products need to be removed and placed in a storage silo for storage. Multiple products are typically stacked. To protect the products and prevent scratches from friction between adjacent products, a layer of white film is often placed between them to provide a protective barrier.

[0003] However, the white film is usually placed manually between two adjacent products by an operator, which results in low efficiency of the white film loading operation and affects the lamination efficiency of the laminating machine. Summary of the Invention

[0004] The purpose of the embodiments of the present application is to provide a material warehouse and a laminating machine to solve the problem existing in the related art: white film is usually manually placed between two adjacent products by an operator, resulting in low efficiency of the white film loading operation and affecting the laminating efficiency of the laminating machine.

[0005] To achieve the above objectives, the technical solutions adopted in the embodiments of the present application are:

[0006] In one aspect, a material library is provided, comprising:

[0007] bottom support frame;

[0008] A bottom support plate is slidably mounted on the bottom support frame, and two storage positions are provided on the bottom support plate at intervals along a first direction;

[0009] Two material storage frames, the two material storage frames are respectively installed on the two material storage positions, one material storage frame is used to store the laminated products, and the other material storage frame is used to store white film;

[0010] a supporting power assembly, mounted on the bottom support frame and connected to the bottom support plate, for driving the bottom support plate to slide back and forth along the first direction;

[0011] A top support frame, arranged above the bottom support frame;

[0012] The material transfer assembly is installed on the top support frame and is used to transfer the white film in one material storage frame to another material storage frame.

[0013] In one embodiment, each of the material storage frames includes a material storage top seat having an accommodating chamber and a material storage base slidably mounted on the bottom support plate, and the material storage top seat is mounted on the material storage base.

[0014] In one embodiment, each of the material storage top seats includes a material storage frame having the accommodating chamber and a material storage support plate installed in the material storage frame, and the material storage frame is installed on the material storage base; the top of each of the material storage bases is provided with a positioning protrusion, and the bottom of each of the material storage frames is provided with a positioning hole for the corresponding positioning protrusion to extend into.

[0015] In one embodiment, a first handle is installed on the storage base; and / or,

[0016] Second handles are respectively installed at both ends of the material storage frame.

[0017] In one embodiment, the bottom support plate is respectively provided with a first through hole at the position of the two storage positions, each storage base is provided with a second through hole for communicating with the corresponding first through hole, and the bottom of each storage frame is provided with a third through hole for communicating with the corresponding second through hole; the material depot also includes a storage jacking assembly installed on the bottom support frame, and the storage jacking assembly is arranged directly below the material moving assembly, and the output end of the storage jacking assembly is used to pass through the corresponding first through hole, the corresponding second through hole and the corresponding third through hole, respectively, and push the corresponding storage support plate to rise and fall.

[0018] In one embodiment, the material storage jacking assembly includes a jacking bracket installed on the bottom support frame, a jacking plate for pushing the material storage support plate, and a jacking power unit for driving the jacking plate to rise and fall. The jacking power unit is installed on the jacking bracket, and the output end of the jacking power unit is connected to the jacking plate.

[0019] In one embodiment, the material moving assembly includes a material moving sliding seat slidably installed on the top support frame along the second direction, a material moving power unit for driving the material moving sliding seat to slide back and forth, and a plurality of material moving suction nozzles; the material moving power unit is installed on the top support frame, the output end of the material moving power unit is connected to the material moving sliding seat, and the plurality of material moving suction nozzles are installed at the bottom of the material moving sliding seat.

[0020] In one embodiment, the material moving sliding seat includes a material moving support top seat slidably installed on the top support frame along the second direction, a material moving support base movably installed on the material moving support top seat along the vertical direction, and a material moving lifting member for driving the material moving support base to rise and fall, the material moving lifting member is installed on the material moving support top seat, the output end of the material moving lifting member is connected to the material moving support base, a plurality of the material moving suction nozzles are installed at the bottom of the material moving support base, and the output end of the material moving power unit is connected to the material moving support top seat.

[0021] In one embodiment, the supporting power assembly includes a supporting screw rotatably mounted on the bottom support frame, a supporting nut mounted on the supporting screw, and a supporting power member for driving the supporting screw to rotate forward and reverse; the length direction of the supporting screw is set along the first direction, the supporting power member is mounted on the bottom support frame, the output end of the supporting power member is connected to the supporting screw, and the supporting nut is connected to the bottom support plate.

[0022] On the other hand, a laminating machine is provided, comprising the material storage provided by any of the above embodiments.

[0023] The material storage and laminating machine provided by the embodiment of the present application have at least the following beneficial effects: the present application can drive the bottom support plate to slide back and forth along the first direction on the bottom support frame through the supporting power component, and when the bottom support plate moves to a position where a material storage frame and the material shifting component are aligned, the white film can be sucked up by the material shifting component; when the bottom support plate moves to a position where another material storage frame and the material shifting component are aligned, the sucked white film can be placed between two adjacent products in the material storage frame again through the material shifting component. By repeating the above-mentioned operation steps, the white film can be placed one by one between two adjacent products to separate the two adjacent products. The laminating machine using this material storage can realize automatic loading of white film by alternately cooperating with the two material storage frames through the material shifting component, thereby replacing manual operations and improving the laminating efficiency of the laminating machine. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following briefly introduces the drawings required for use in the embodiments or exemplary technical descriptions. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.

[0025] Figure 1 A schematic diagram of the structure of the material warehouse provided in the embodiment of the present application;

[0026] Figure 2 A schematic diagram of the structure of the material storage frame provided in an embodiment of the present application;

[0027] Figure 3 for Figure 2 Schematic diagram of the decomposition;

[0028] Figure 4 A schematic structural diagram of a material storage jacking assembly provided in an embodiment of the present application;

[0029] Figure 5 A schematic structural diagram of a material transfer assembly provided in an embodiment of the present application;

[0030] Figure 6 for Figure 5 Schematic diagram of the decomposition;

[0031] Figure 7 A schematic diagram of the structure in which the supporting power assembly provided in an embodiment of the present application is installed on a bottom support frame.

[0032] Among them, the main marks of the drawings in the figure are:

[0033] 10. Product; 20. White film;

[0034] 1. Bottom support frame;

[0035] 2. Bottom support plate; 21. First through hole; 22. Mounting base; 23. Material storage guide rail pair;

[0036] 3. Material storage frame; 31. Material storage top seat; 311. Material storage frame body; 3111. Positioning hole; 3112. Second handle; 3113. Third through hole; 3114. Frame bottom plate; 3115. Frame corner seat; 3116. Second reserved hole; 312. Material storage support plate; 3121. Third reserved hole; 3122. Fifth reserved hole; 32. Material storage base; 321. Positioning protrusion; 322. First handle; 323. Second through hole; 324. Material storage sliding plate; 325. First reserved hole;

[0037] 4. Support power assembly; 41. Support screw rod; 42. Support nut; 43. Support power part;

[0038] 5. Top support frame;

[0039] 6. Material transfer assembly; 61. Material transfer sliding seat; 611. Material transfer support top seat; 6111. Material transfer sleeve; 6112. First opening; 612. Material transfer support base; 6121. Material transfer guide rod; 6122. Material transfer stop seat; 6123. Second opening; 613. Material transfer lifting member; 62. Material transfer power unit; 63. Material transfer nozzle;

[0040] 7. Material storage jacking assembly; 71. Jacking bracket; 72. Jacking plate; 721. Fourth reserved hole; 73. Jacking power unit; 731. Jacking rod; 732. Jacking cylinder; 733. Jacking fixing seat; 734. Jacking sensor plate; 735. Jacking sensor; 736. Jacking guide rod. DETAILED DESCRIPTION

[0041] In order to make the technical problems, technical solutions and beneficial effects to be solved by this application more clearly understood, this application is further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain this application and are not intended to limit this application.

[0042] It should be noted that when an element is referred to as being “fixed on” or “disposed on” another element, it may be directly on the other element or indirectly on the other element. When an element is referred to as being “connected to” another element, it may be directly connected to the other element or indirectly connected to the other element.

[0043] In addition, the terms "first," "second," etc. are used for descriptive purposes only and should not be understood as indicating or implying relative importance or implicitly indicating the number of the technical features indicated. Therefore, a feature defined as "first," "second," etc. may explicitly or implicitly include one or more of the features. In the description of this application, "plurality" means two or more, unless otherwise specifically defined. "Several" means one or more, unless otherwise specifically defined.

[0044] In the description of this application, it should be understood that the terms "center", "length", "width", "thickness", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", etc., indicating the orientation or position relationship, are based on the orientation or position relationship shown in the accompanying drawings, and are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation on this application.

[0045] In the description of this application, it should be noted that, unless otherwise expressly specified or limited, the terms "installed," "connected," and "connected" should be understood in a broad sense. For example, they can refer to fixed connections, detachable connections, or integral connections; they can refer to mechanical connections or electrical connections; they can refer to direct connections or indirect connections through an intermediate medium; they can refer to internal communication between two components or the interaction between two components. Those skilled in the art will understand the specific meanings of the above terms in this application based on the specific circumstances.

[0046] Reference throughout this specification to "one embodiment" or "an embodiment" means that a particular feature, structure, or characteristic described in connection with the embodiment is included in at least one embodiment of the present application. Thus, when the phrases "in one embodiment" or "in some embodiments" appear in various places throughout this specification, not all references are to the same embodiment. Furthermore, the particular features, structures, or characteristics may be combined in any suitable manner in one or more embodiments.

[0047] For ease of description, we define three mutually perpendicular coordinate axes in space as the X-axis, the Y-axis, and the Z-axis. The direction along the X-axis is the longitudinal direction, the direction along the Y-axis is the transverse direction, and the direction along the Z-axis is the vertical direction. The X-axis and Y-axis are two mutually perpendicular coordinate axes in the same horizontal plane, and the Z-axis is the vertical coordinate axis. The X-axis, Y-axis, and Z-axis are located in three mutually perpendicular planes in space: the XY plane, the YZ plane, and the XZ plane. The XY plane is a horizontal plane, the XZ plane and the YZ plane are both vertical planes, and the XZ plane is perpendicular to the YZ plane. The three axes in space are the X-axis, Y-axis, and Z-axis. Movement along these three axes in space refers to movement along the three mutually perpendicular axes in space, specifically movement along the X-axis, Y-axis, and Z-axis in space. Planar movement, on the other hand, refers to movement in the XY plane.

[0048] See also Figure 1 and Figure 7, the material storage provided in the embodiment of the present application is now described. The material storage includes a bottom support frame 1, a bottom support plate 2, two material storage frames 3, a support power assembly 4, a top support frame 5 and a material moving assembly 6. Among them, the bottom support plate 2 is slidably mounted on the bottom support frame 1, and two material storage positions are spaced apart along the first direction on the bottom support plate 2. It should be noted that the first direction can be the X-axis direction in the figure. Optionally, a guide rail pair is respectively installed at both ends of the bottom support frame 1, and the two guide rail pairs are extended along the first direction; the two ends of the bottom support plate 2 are respectively installed on the two guide rail pairs. The guide rail pair can improve the reliability of the bottom support plate 2 sliding back and forth along the first direction on the bottom support frame 1. The two material storage frames 3 are respectively installed on the two material storage positions, one material storage frame 3 is used to store the stacked products 10, and the other material storage frame 3 is used to store white film 20. The support power assembly 4 is installed on the bottom support frame 1, and the output end of the support power assembly 4 is connected to the bottom support plate 2, and the support power assembly 4 is used to drive the bottom support plate 2 to slide back and forth along the first direction. The top support frame 5 can be installed on the frame of the laminating machine, and the top support frame 5 is arranged above the bottom support frame 1. The material transfer assembly 6 is installed on the top support frame 5, and the support power assembly 4 can drive the bottom support plate 2 to move along the first direction, so that the two storage frames 3 can be respectively arranged opposite to the material transfer assembly 6, so that the material transfer assembly 6 can transfer the white film 20 in one storage frame 3 to the other storage frame 3. In this structure, the support power assembly 4 can drive the bottom support plate 2 to slide back and forth along the first direction on the bottom support frame 1. When the bottom support plate 2 moves to a position where one storage frame 3 is aligned with the material transfer assembly 6, the white film 20 can be sucked up by the material transfer assembly 6; when the bottom support plate 2 moves to a position where the other storage frame 3 is aligned with the material transfer assembly 6, the sucked white film 20 can be placed between two adjacent products 10 in the storage frame 3 by the material transfer assembly 6 again. By repeating the above steps, the white film 20 can be placed between two adjacent products 10 one by one to separate the two adjacent products 10.

[0049] In one embodiment, see Figure 2 and Figure 3 As a specific embodiment of the material storage provided in the embodiment of the present application, each material storage frame 3 includes a material storage top seat 31 having a accommodating chamber and a material storage base 32 slidably mounted on the bottom support plate 2, and the material storage top seat 31 is mounted on the material storage base 32. The cross-section of the accommodating chamber is adapted to the cross-section of the product 10 or the white film 20, and both can be a square structure, such as a rectangle, a square, etc. This structure can realize the positioning and accommodation of the product 10 or the white film 20 through the accommodating chamber; by sliding the material storage base 32 on the bottom support plate 2, the material storage top seat 31 can be pulled out from the working area of ​​the bottom support frame 1, making it convenient for the operator to take and place the product 10 or the white film 20.

[0050] In one embodiment, see Figures 1 to 3Four mounting bases 22 are spaced apart along the first direction on the bottom support plate 2, and each mounting base 22 extends along the second direction. It should be noted that the second direction is the Y-axis direction in the figure. A material storage guide rail pair 23 is mounted on each mounting base 22. Two material storage sliding plates 324 are spaced apart at the bottom of each material storage base 32, and the two material storage sliding plates 324 are respectively mounted on the corresponding two material storage guide rail pairs 23. This structure, through the two material storage guide rail pairs 23, can improve the reliability of each material storage base 32 sliding back and forth along the second direction on the bottom support plate 2.

[0051] Optionally, each mounting base 22 can be installed on the bottom support plate 2 by fasteners such as screws, so that each mounting base 22 can be detachably connected to the bottom support plate 2. Each material storage sliding plate 324 can also be installed on the material storage base 32 by fasteners such as screws, so that each material storage sliding plate 324 can be detachably connected to the material storage sliding plate 324. This structure, by adjusting the position that each mounting base 22 is installed on the bottom support plate 2, can adjust the distance between two adjacent mounting bases 22, and then adjust the spacing between two material storage frames 3, so that the material taking and discharging efficiency can be adjusted. Correspondingly, by adjusting the position that each material storage sliding plate 324 is installed on the material storage base 32, can adjust the distance between two adjacent material storage sliding plates 324, so that according to the white film 20 of different sizes, the corresponding material storage base 32 of appropriate size can be selected.

[0052] In one embodiment, see Figure 3 As a specific embodiment of the material storage provided in the embodiment of the present application, each material storage top seat 31 includes a material storage frame 311 having a accommodating chamber and a material storage support plate 312 installed in the material storage frame 311. The material storage frame 311 is installed on the material storage base 32. The top of each material storage base 32 is provided with a positioning protrusion 321, and the bottom of each material storage frame 311 is provided with a positioning hole 3111 for the corresponding positioning protrusion 321 to extend into. This structure, through the positioning and cooperation between the positioning protrusion 321 and the positioning hole 3111, can prevent each material storage frame 311 from sliding relative to the corresponding material storage base 32. Each material storage frame 311 can be detachably connected to the corresponding material storage base 32, which makes it easier for operators to take and place the products 10 or white film 20.

[0053] In one embodiment, see Figure 3The storage frame 311 may include a square bottom plate 3114 and corner seats 3115 installed at the four corners of the bottom plate 3114. Each corner seat 3115 is L-shaped, and the four corner seats 3115 enclose a storage chamber. The bottom plate 3114 is provided with positioning holes 3111. Each corner seat 3115 can be installed on the bottom plate 3114 using fasteners such as screws, thereby achieving a detachable connection between each corner seat 3115 and the bottom plate 3114. This structure allows the area of ​​the storage chamber enclosed by the four corner seats 3115 to be adjusted by adjusting the position of each corner seat 3115 installed on the bottom plate 3114, thereby adapting to products 10 or white film 20 of different sizes.

[0054] In one embodiment, see Figure 3 The number of positioning holes 3111 on the frame bottom plate 3114 can be multiple; correspondingly, the number of positioning protrusions 321 can also be multiple, and the number of positioning protrusions 321 is the same as the number of positioning holes 3111. The multiple positioning protrusions 321 can respectively extend into the multiple positioning holes 3111. This structure, through the mating fit of the multiple positioning protrusions 321 and the multiple positioning holes 3111, helps prevent the horizontal rotation of each storage top seat 31 on the corresponding storage base 32.

[0055] In one embodiment, see Figure 3 Each material storage base 32 is provided with a first reserved hole 325, and each material storage frame 311 is provided with a second reserved hole 3116 at the bottom thereof, which is in communication with the corresponding first reserved hole 325. Each material storage support plate 312 is provided with a third reserved hole 3121, which is in communication with the corresponding second reserved hole 3116. This structure prevents the phenomenon of a vacuum forming between each material storage frame 311 and the corresponding material storage base 32, and the phenomenon of a vacuum forming between each material storage support plate 312 and the corresponding material storage frame 311, by connecting each first reserved hole 325 with the corresponding second reserved hole 3116 and the corresponding third reserved hole 3121.

[0056] In one embodiment, see Figure 2 and Figure 3As a specific embodiment of the material storage provided in the embodiment of the present application, a first handle 322 is installed on the material storage base 32. Alternatively, second handles 3112 are respectively installed at both ends of the material storage frame 311. Alternatively, a first handle 322 is installed on the material storage base 32, and a second handle 3112 is respectively installed at both ends of the material storage frame 311. With this structure, the material storage frame 3 can be pulled out along the second direction by the first handle 322, which makes it easier for the operator to take and place the product 10 or the white film 20; the second handle 3112 can be used for the operator to hold, making it easier for the operator to separate the material storage top seat 31 from the material storage base 32, further facilitating the operator to take and place the product 10 or the white film 20.

[0057] In one embodiment, see Figure 1 、 Figure 3 and Figure 4 As a specific embodiment of the material storage provided in the embodiment of the present application, the bottom support plate 2 is provided with a first through hole 21 at the position of the two storage positions, and each storage base 32 is provided with a second through hole 323 for conducting with the corresponding first through hole 21, and the bottom of each storage frame 311 is provided with a third through hole 3113 for conducting with the corresponding second through hole 323; the material storage further includes a storage lifting assembly 7 installed on the bottom support frame 1, and the storage lifting assembly 7 is provided directly below the material transfer assembly 6. The output end of the storage lifting assembly 7 is used to pass through the corresponding first through hole 21, the corresponding second through hole 323 and the corresponding third through hole 3113, and push the corresponding storage support plate 312 to rise and fall. With this structure, the storage lifting assembly 7 can lift the corresponding storage support plate 312, adjust the distance between the storage support plate 312 and the material transfer assembly 6, and facilitate the storage support plate 312 to take and place the product 10 or white film 20.

[0058] In one embodiment, see Figure 4As a specific embodiment of the material storage provided by the embodiment of the present application, the storage lifting assembly 7 includes a lifting bracket 71, a lifting plate 72 and a lifting power unit 73. The lifting bracket 71 is installed on the bottom support frame 1, and the lifting power unit 73 is installed on the lifting bracket 71. The output end of the lifting power unit 73 is connected to the lifting plate 72. With this structure, when the empty storage frame 3 is aligned with the material transfer assembly 6, the lifting power unit 73 can drive the lifting plate 72 to rise. The lifting plate 72 can lift the storage support plate 312 in the storage frame 3 to shorten the distance between the storage support plate 312 and the material transfer assembly 6, thereby facilitating the transfer assembly 6 loaded with products 10 to place the products 10 on the storage support plate 312. As the number of stacked products 10 increases, the lifting power unit 73 drives the lifting plate 72 to gradually descend until the storage frame 3 is filled with products 10. When the storage frame 3 containing the white film 20 is aligned with the material transfer assembly 6, the lifting power unit 73 can drive the lifting plate 72 to rise, and the lifting plate 72 can lift the storage support plate 312 supporting the white film 20 to shorten the distance between the white film 20 and the material transfer assembly 6, thereby facilitating the material transfer assembly 6 to transfer the white film 20 one by one to another storage frame 3. Through the cooperation of the storage lifting assembly 7, the travel of the material transfer assembly 6 along the vertical Z-axis direction can be shortened, thereby improving the material transfer efficiency of the product 10 or white film 20.

[0059] In one embodiment, see Figure 4 The lifting power unit 73 includes a lifting rod 731 and a lifting cylinder 732, which are arranged through the lifting bracket 71. One end of the lifting rod 731 is connected to the lifting plate 72, and the other end of the lifting rod 731 is connected to the output end of the lifting cylinder 732. The lifting cylinder 732 is mounted on the lifting bracket 71. With this structure, the lifting cylinder 732 can drive the lifting rod 731 to move up and down, thereby driving the lifting plate 72 to move up and down. Of course, the lifting power unit 73 can also be a screw transmission mechanism, a slide linear motor, etc., and this is not a sole limitation.

[0060] In one embodiment, see Figure 4A lifting fixed seat 733 is installed on the lifting rod 731, and a lifting sensor piece 734 is installed on the lifting fixed seat 733; two lifting sensors 735 are installed on the lifting bracket 71, and the two lifting sensors 735 are arranged at intervals along the vertical Z-axis direction, and the lifting rod 731 sensor piece is arranged between the two lifting sensors 735. This structure can limit the lifting stroke of the lifting plate 72 by the cooperation between the lifting sensor piece 734 and the two lifting sensors 735 respectively. Among them, the lifting fixed seat 733 is installed on the lifting rod 731 by screws and other fasteners, the lifting sensor piece 734 is installed on the lifting fixed seat 733 by screws and other fasteners, and each lifting sensor 735 is installed on the lifting bracket 71 by screws and other fasteners. In this way, the lifting fixed seat 733, the lifting sensor piece 734 and the lifting sensor 735 can be detachably installed.

[0061] In one embodiment, see Figure 4 The storage jacking assembly 7 further includes a plurality of jacking guide rods 736 disposed through the jacking bracket 71, with the ends of each jacking guide rod 736 connected to the jacking plate 72. This structure, through the plurality of jacking guide rods 736, can improve the reliability of the reciprocating lifting of the jacking plate 72. The number of jacking guide rods 736 can be two, and the two jacking guide rods 736 are respectively installed at both ends of the jacking plate 72.

[0062] In one embodiment, see Figure 3 and Figure 4 The lifting plate 72 is provided with a fourth reserved hole 721, and each material storage support plate 312 is provided with a fifth reserved hole 3122 connected to the fourth reserved hole 721. This structure prevents the lifting plate 72 and each material storage support plate 312 from being unable to separate due to the presence of a vacuum between them by connecting the fourth reserved hole 721 and the fifth reserved hole 3122.

[0063] Optionally, a lifting protrusion is provided on the top of the lifting plate 72, and each material storage support plate 312 is provided with a lifting groove into which the lifting protrusion extends. This structure, through the cooperation between the lifting protrusion and the lifting groove, can achieve positioning between the lifting plate 72 and each material storage support plate 312. The number of lifting protrusions and the number of lifting grooves can both be multiple, and the multiple lifting protrusions can respectively extend into the multiple lifting grooves, thereby preventing the lifting plate 72 and the material storage support plate 312 from being positioned relative to each other.

[0064] In one embodiment, see Figure 5 and Figure 6As a specific embodiment of the material storage provided in the embodiment of the present application, the material moving assembly 6 includes a material moving sliding seat 61, a material moving power unit 62 and a plurality of material moving suction nozzles 63. The material moving sliding seat 61 is slidably mounted on the top support frame 5 along the second direction. The material moving power unit 62 is mounted on the top support frame 5. The output end of the material moving power unit 62 is connected to the material moving sliding seat 61. A plurality of material moving suction nozzles 63 are mounted on the bottom of the material moving sliding seat 61. Among them, guide rail pairs are respectively installed at both ends of the top support frame 5, and the two ends of the material moving sliding seat 61 are respectively installed on the guide rail pairs, which can improve the reliability of the reciprocating sliding of the material moving sliding seat 61 on the top support frame 5. The plurality of material moving suction nozzles 63 are mounted on the material moving sliding seat 61 in a circular structure, and the plurality of material moving suction nozzles 63 can adsorb the four sides of the product 10 or the white film 20. This structure can absorb the product 10 or white film 20 through multiple material transfer suction nozzles 63; the material transfer sliding seat 61 is driven to move along the second direction by the material transfer power unit 62, so that the material transfer component 6 is respectively opposite to the two material storage frames 3, so as to realize the taking and placing of the product 10 or white film 20.

[0065] Optionally, each material transfer nozzle 63 is detachably connected to the material transfer sliding seat 61, so that the positions of multiple material transfer nozzles 63 can be adjusted to adapt to products 10 or white films 20 of different sizes.

[0066] Optionally, the material moving power unit 62 may be a bite chain, which has the advantages of small displacement stroke, small footprint, and long service life. Of course, the material moving power unit 62 may also be a screw transmission mechanism, a cylinder / electric cylinder transmission mechanism, a slide linear motor, etc., and this is not the only limitation.

[0067] Optionally, a material shifting sensor sheet is mounted on the material shifting slide 61, and two material shifting sensors are mounted on the top support frame 5. The two material shifting sensors are spaced apart along the second direction, with the material shifting sensor sheet positioned between the two material shifting sensors. This structure, through the sensing cooperation between the material shifting sensor sheet and the two material shifting sensors, can limit the reciprocating travel of the material shifting slide 61 in the second direction.

[0068] In one embodiment, see Figure 6As a specific embodiment of the material storage provided in the embodiment of the present application, the material transfer sliding seat 61 includes a material transfer support top seat 611 slidably installed on the top support frame 5 along the second direction, a material transfer support base 612 movably installed on the material transfer support top seat 611 along the vertical direction, and a material transfer lifting member 613 for driving the material transfer support base 612 to move up and down. The material transfer lifting member 613 is installed on the material transfer support top seat 611, and the output end of the material transfer lifting member 613 is connected to the material transfer support base 612. A plurality of material transfer suction nozzles 63 are installed at the bottom of the material transfer support base 612, and the output end of the material transfer power unit 62 is connected to the material transfer support top seat 611. Among them, the number of the material transfer lifting members 613 can be two, and the two material transfer lifting members 613 are respectively installed at the two ends of the material transfer support top seat 611. The material transfer lifting member 613 can be a pneumatic cylinder, an electric cylinder, etc. This structure drives the material transfer support base 612 to move back and forth on the material transfer support top seat 611 through the material transfer lifting member 613, so that the distance between multiple material transfer nozzles 63 and each material storage support plate 312 along the Z-axis direction can be adjusted, which makes it easier to take and place the product 10 or white film 20.

[0069] In one embodiment, see Figure 6 The material transfer support top seat 611 is mounted with multiple material transfer sleeves 6111, and the material transfer support base 612 is mounted with multiple material transfer guide rods 6121. The multiple material transfer guide rods 6121 are respectively disposed through the multiple material transfer sleeves 6111. This structure, through the cooperation of the multiple material transfer guide rods 6121 and the multiple material transfer sleeves 6111, can improve the reliability of the reciprocating lifting and lowering of the material transfer support base 612 along the Z-axis direction.

[0070] In one embodiment, see Figure 6 Each material moving guide rod 6121 passes through the top of the corresponding material moving sleeve 6111 and is provided with a material moving stop 6122. The material moving stop 6122 can cooperate with the material moving sleeve 6111 to resist, thereby limiting the lifting stroke of the material moving guide rod 6121 along the Z-axis direction. In particular, each material moving stop 6122 can be installed on the corresponding material moving guide rod 6121 using fasteners such as screws. In this way, each material moving stop 6122 can be detachably connected, and the position of each material moving stop 6122 installed on the corresponding material moving guide rod 6121 can be adjusted, thereby controlling the reciprocating lifting stroke of the material moving support base 612 and the multiple material moving nozzles 63 along the Z-axis direction.

[0071] In one embodiment, see Figure 6The material transfer support top seat 611 is provided with a first opening 6112, and the material transfer support base 612 is provided with a second opening 6123. The second opening 6123 is aligned with and communicates with the first opening 6112. This structure reduces the weight of the material transfer support top seat 611 through the first opening 6112, thereby reducing production costs; and reduces the weight of the material transfer support base 612 through the second opening 6123, thereby reducing production costs.

[0072] In one embodiment, the material moving assembly 6 also includes a material moving transverse movement unit for driving a plurality of material moving nozzles 63 to move back and forth along a first direction. The material moving transverse movement unit is installed on the frame of the laminating machine, and the output end of the material moving transverse movement unit is connected to the top support frame 5. Among them, the material moving transverse movement unit can be a cylinder / electric cylinder transmission mechanism, a screw transmission mechanism, a slide linear motor, etc., and is not the only limitation here. This structure can drive a plurality of material moving nozzles 63 to achieve multi-directional movement along the XYZ axis through the material moving transverse movement unit, the material moving power unit 62 and the material moving lifting member 613, and cooperate with the support power assembly 4 to drive the two material storage frames 3 to move back and forth along the X axis, which helps to improve the efficiency of taking and placing the product 10 or the white film 20.

[0073] In one embodiment, see Figure 7 As a specific embodiment of the material storage provided in the embodiment of the present application, the support power assembly 4 includes a support screw 41 rotatably mounted on the bottom support frame 1, a support nut 42 mounted on the support screw 41, and a support power member 43 for driving the support screw 41 to rotate forward and reverse; the length direction of the support screw 41 is arranged along the first direction, the support power member 43 is mounted on the bottom support frame 1, the output end of the support power member 43 is connected to the support screw 41, and the support nut 42 is connected to the bottom support plate 2. The support power member 43 can be a motor. In this structure, the support screw 41 is driven to rotate forward and reverse by the support power member 43, and the support nut 42 and the bottom support plate 2 can be driven to reciprocate along the first direction (X-axis direction).

[0074] Optionally, the supporting power assembly 4 may also be a pneumatic cylinder / electric cylinder transmission mechanism, a slide linear motor, etc., which is not the only limitation here.

[0075] In one embodiment, a support sensor sheet is mounted on the support nut 42, and two support sensors are mounted on the bottom support frame 1. The two support sensors are spaced apart along the first direction, with the support sensor sheet positioned between the two support sensors. This structure, through the sensing interaction between the support sensor sheet and the two support sensors, limits the reciprocating travel of the bottom support plate 2 along the first direction.

[0076] The embodiment of the present application also provides a laminating machine, including the material storage provided by any of the above embodiments. In this structure, the bottom support plate 2 can be driven to slide back and forth along the first direction on the bottom support frame 1 by supporting the power component 4. When the bottom support plate 2 moves to a position where a material storage frame 3 is aligned with the material transfer component 6, the white film 20 can be sucked by the material transfer component 6; when the bottom support plate 2 moves to a position where another material storage frame 3 is aligned with the material transfer component 6, the sucked white film 20 can be placed between two adjacent products 10 of the material storage frame 3 again by the material transfer component 6. By repeating the above-mentioned operation steps, the white film 20 can be placed one by one between two adjacent products 10 to separate the two adjacent products 10. The laminating machine using this material storage can realize automatic loading of the white film 20 by alternately cooperating with the two material storage frames 3 through the material transfer component 6, thereby replacing manual operations and improving the laminating efficiency of the laminating machine.

[0077] The above description is merely an optional embodiment of the present application and is not intended to limit the present application. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present application shall be included in the scope of protection of the present application.

Claims

1. A material warehouse, characterized in that: include: bottom support frame; A bottom support plate is slidably mounted on the bottom support frame, and two storage positions are provided on the bottom support plate at intervals along a first direction; Two material storage frames, the two material storage frames are respectively installed on the two material storage positions, one material storage frame is used to store the stacked products, and the other material storage frame is used to store white film; a supporting power assembly, mounted on the bottom support frame and connected to the bottom support plate, for driving the bottom support plate to slide back and forth along the first direction; A top support frame, arranged above the bottom support frame; A material transfer assembly, mounted on the top support frame, for transferring the white film in one material storage frame to another material storage frame; and a magazine base, the magazine base comprising a first magazine base and a second magazine base with the magazine base being arranged on a bottom surface of the magazine base and a magazine base with the magazine base being arranged on the bottom surface of the magazine base. The top of each material storage base is provided with a positioning protrusion, and the bottom of each material storage frame is provided with a positioning hole for the corresponding positioning protrusion to extend into; the material storage frame comprises a frame bottom plate with a square structure and frame corner seats installed at the four corners of the frame bottom plate, each of the frame corner seats is an L-shaped structure, and the four frame corner seats enclose a accommodating chamber, the frame bottom plate is provided with the positioning hole, and each of the frame corner seats is detachably connected to the frame bottom plate; The bottom support plate is respectively provided with a first through hole at the position of the two storage positions, each storage base is provided with a second through hole for communicating with the corresponding first through hole, and the bottom of each storage frame is provided with a third through hole for communicating with the corresponding second through hole; the material depot also includes a storage jacking assembly installed on the bottom support frame, and the storage jacking assembly is arranged directly below the material moving assembly, and the output end of the storage jacking assembly is used to pass through the corresponding first through hole, the corresponding second through hole and the corresponding third through hole, and push the corresponding storage support plate to rise and fall.

2. The material storage according to claim 1, characterized in that: A first handle is installed on the storage base; and / or, Second handles are respectively installed at both ends of the material storage frame.

3. The material storage according to claim 1, characterized in that: The material storage jacking assembly includes a jacking bracket installed on the bottom support frame, a jacking plate for pushing the material storage support plate, and a jacking power unit for driving the jacking plate to rise and fall. The jacking power unit is installed on the jacking bracket, and the output end of the jacking power unit is connected to the jacking plate.

4. The material warehouse according to any one of claims 1 to 3, characterized in that: The material moving assembly includes a material moving sliding seat installed on the top support frame for sliding along the second direction, a material moving power unit for driving the material moving sliding seat to slide back and forth, and a plurality of material moving suction nozzles; the material moving power unit is installed on the top support frame, the output end of the material moving power unit is connected to the material moving sliding seat, and the plurality of material moving suction nozzles are installed at the bottom of the material moving sliding seat.

5. The material storage according to claim 4, characterized in that: The material shifting sliding seat includes a material shifting support top seat slidably mounted on the top support frame along the second direction, a material shifting support base movably mounted on the material shifting support top seat along the vertical direction, and a material shifting lifting member for driving the material shifting support base to rise and fall. The material shifting lifting member is mounted on the material shifting support top seat, the output end of the material shifting lifting member is connected to the material shifting support base, a plurality of material shifting suction nozzles are mounted on the bottom of the material shifting support base, and the output end of the material shifting power unit is connected to the material shifting support top seat.

6. The material warehouse according to any one of claims 1 to 3, characterized in that: The supporting power assembly includes a supporting screw rotatably mounted on the bottom support frame, a supporting nut mounted on the supporting screw, and a supporting power member for driving the supporting screw to rotate forward and reverse; the length direction of the supporting screw is set along the first direction, the supporting power member is mounted on the bottom support frame, the output end of the supporting power member is connected to the supporting screw, and the supporting nut is connected to the bottom support plate.

7. A laminating machine, characterized in that: Comprising the material storage as described in any one of claims 1-6.

Citation Information

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