Superlattice material and glass cup bottom composite pressing machine

By designing a servo motor-driven composite pressing operation component and a rotary disk structure, combined with automated control from a cloud controller, the problem of wasted human resources in the composite pressing machine for superlattice materials and glass bottoms was solved, realizing an automated glass production process and improving production efficiency.

CN224242964UActive Publication Date: 2026-05-15FUJIAN RUIFENG GLASS MFG CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
FUJIAN RUIFENG GLASS MFG CO LTD
Filing Date
2025-06-17
Publication Date
2026-05-15

AI Technical Summary

Technical Problem

Existing superlattice material bonding machines require personnel to wait continuously when cleaning the adhesive overflowing at the connection between the sleeve and the glass bottom, resulting in wasted human resources and low automation.

Method used

A composite pressing machine for superlattice materials and glass cup bottoms was designed. It adopts a composite pressing operation component driven by a servo motor and a rotating disk structure to realize the lifting and intermittent rotation of the material composite seat. Combined with the automated control of the cloud controller, it realizes the automatic placement and retrieval of the glass cup.

Benefits of technology

It improved the automation performance of the equipment, reduced the waste of human resources, realized the automated production process of glass cups, and improved production efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a superlattice material and glass bottom composite pressing machine, which comprises a composite pressing operation component, a working cabinet, a fixed seat, a placing structure and a front plate, a power switch of the whole device is started, a first servo motor is started, a material composite seat is lifted and changed, the lower end face of the material composite seat is gradually close to a placing block, and the placing block is placed on the working cabinet. The superlattice material is pressed at the bottom of a glass cup, a material composite seat moves upwards, and a second servo motor performs intermittent start-stop movement, so that a rotating disc is conveniently driven to rotate intermittently, a rotating structure is driven to rotate by 120 degrees along with a gear, and a placing block performs position change by 120 degrees; according to the superlattice material laminating device, the material laminating seat intermittently performs superlattice material laminating operation on the placing blocks under the material laminating seat, so that personnel can place glass cups to be laminated on the different placing blocks and take the glass cups subjected to laminating, the automation performance of the device is better, and the personnel operation is convenient.
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Description

Technical Field

[0001] This utility model relates to the field of glass cup bottom composite technology, specifically a superlattice material and glass cup bottom composite pressing machine. Background Technology

[0002] Superlattice materials are composed of multilayer films made up of two different components that are grown alternately in thin layers ranging from a few nanometers to tens of nanometers and maintain a strict periodicity. In fact, they are a specific form of layered fine composite material. Due to their unique structural characteristics, this material is widely used in glass products. When laminated to the bottom of a glass, it can enhance the durability of the glass.

[0003] Existing superlattice material and glass bottom composite pressing machines, when optimized, mostly focus on timely cleaning of the adhesive overflowing at the connection between the sleeve and the glass bottom. For example, Chinese utility model patent application number 202121523466.1 discloses "A Rotary Adhesive Pressing Equipment for Glass Production". In this device, the cleaning device includes a fixed plate, a second rotating component symmetrically fixedly connected to the surface of the double-headed cylinder, a second connecting rod symmetrically fixedly connected to the surface of the second rotating component, a hinge fixedly connected to the opposite side of the arc plate, an adjustment mechanism symmetrically fixedly installed in the inner cavity of the arc plate, a first rotating component symmetrically fixedly installed at both ends of the double-headed cylinder and on the surface of the arc plate, and a first connecting rod fixedly connected between the first rotating components. This utility model relates to the field of glass technology and solves the problem that after automatic equipment performs pressing, adhesive overflows at the connection between the sleeve and the glass bottom. If not treated in time, the adhesive hardens and directly sticks between the bottom of the glass and the sleeve, leaving marks on the bottom of the glass and the sleeve when cleaning is performed later.

[0004] Although the aforementioned superlattice material and glass bottom composite pressing machine has certain advantages in timely cleaning of the adhesive overflowing at the connection between the sleeve and the glass bottom, it still has certain drawbacks: usually there is only one placement block on a composite pressing workbench, and the glass is placed, pressed, and removed on this one placement block. Personnel need to stand by and wait for the device to perform the composite pressing operation before proceeding to the next operation, which consumes personnel's energy. Utility Model Content

[0005] (a) Technical problems to be solved

[0006] To solve the above-mentioned technical problems, this utility model provides a composite pressing machine for superlattice materials and glass bottoms.

[0007] Two technical solutions

[0008] Based on this, the present invention provides the following technical solution: a composite pressing machine for superlattice materials and glass bottoms, comprising a composite pressing operation component, a work cabinet, a fixed base, a placement structure and a front plate, wherein the composite pressing operation component is movably fitted above the placement structure, the fixed base is installed on the upper end face of the work cabinet, the lower end of the placement structure is embedded in the interior of the work cabinet, and the front plate is an integral structure with the work cabinet and is hinged to the front end face of the work cabinet.

[0009] Preferably, the composite pressing operation assembly includes a through seat, a threaded rod, a first servo motor, a material composite seat, a cloud controller, a balance wheel, and a support column. The upper end of the support column is bolted to the side end of the through seat. The threaded rod passes through the interior of the through seat and is engaged. The lower end of the threaded rod is connected to the output end of the first servo motor. The balance wheel is fixedly connected to the outer periphery of the first servo motor. The cloud controller is installed below the first servo motor and is connected above the material composite seat and is electrically engaged. The lower end of the support column is welded to the side end of the fixed seat. The material composite seat is movably engaged above the placement structure.

[0010] Preferably, the work cabinet includes an outer casing, a rotating structure, a mounting bracket, a gear, a second servo motor, a rotating disk, a bearing seat, a connecting column, and a limiting structure. The rotating structure is movable inside the outer casing. The second servo motor is installed inside the outer casing, and its output end is connected to the center of the rotating disk. The rotating disk is located beside the gear and meshes with it. The gear is located below the rotating structure. The mounting bracket is an integral part of the rotating structure and is positioned at the center of its upper end face. The upper end of the bearing seat is fixedly connected to the center of the lower end face of the rotating structure, and the lower end of the bearing seat is connected to the connecting column. The limiting structure is located below the gear and the rotating disk.

[0011] Preferably, the limiting structure includes a limiting block and a rotating locking block, which are arranged adjacent to each other and engaged in a rotating manner.

[0012] Preferably, the placement structure includes a placement block, a platform, and a stabilizing bracket, wherein the platform is embedded in the upper end of the stabilizing bracket, and the placement block is fixedly located on the upper surface of the platform.

[0013] Preferably, the card holder is connected to the lower end of the placement structure via a transmission connection, the rotating structure is installed on the placement structure via the card holder, and the rotating structure is movably engaged with the placement structure via a rotating disk.

[0014] Preferably, a rotating block is provided below the rotating disk, and the rotating disk and the rotating block are driven by a second servo motor to rotate synchronously. The rotating disk has a circular structure and segmented teeth are provided on its outer edge, and the angle between the segments of the teeth is 120 degrees.

[0015] Preferably, the connecting column is connected to the limiting block in a transmission manner, the limiting block is provided below the gear, the belt-driven structure is in a triangular state and can rotate intermittently, with each rotation angle being 120 degrees.

[0016] Preferably, the lower end of the stabilizing bracket is connected to the card seat via a transmission, and the placement block is provided in three places on the platform, rotating about the center with each rotation angle being 120 degrees.

[0017] (III) Beneficial Effects

[0018] Compared with the prior art, this utility model provides a composite pressing machine for superlattice materials and glass bottoms, which has the following beneficial effects:

[0019] 1. The superlattice material and glass cup bottom composite pressing machine is activated by turning on the power switch of the entire device, starting the first servo motor, and causing it to rotate. The first servo motor meshes with the inner wall of the through seat, so that the first servo motor can move up and down, which facilitates the material composite seat to move up and down, so that the lower end face of the material composite seat gradually approaches the placement block, and the superlattice material is pressed into the bottom of a glass cup.

[0020] 2. This superlattice material and glass cup bottom composite pressing machine features an upward-moving material composite seat and a second servo motor that intermittently starts and stops, facilitating the intermittent rotation of the rotating disk. The rotating structure rotates 120 degrees with the gears, and the placement block is repositioned 120 degrees. This allows the material composite seat to intermittently perform superlattice material composite pressing operations on the placement block directly below it. Personnel can easily place the glass cups to be composite pressed on different placement blocks and retrieve the composite pressed glass cups, improving the automation performance of the device and making it more convenient for personnel to operate. Attached Figure Description

[0021] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0022] Figure 2 This is a schematic diagram of the composite pressing operation component of this utility model;

[0023] Figure 3 This is a schematic diagram of the structure of the work cabinet of this utility model;

[0024] Figure 4 This is a schematic diagram of the rotating structure of this utility model;

[0025] Figure 5 This is a schematic diagram of the limiting structure of this utility model;

[0026] Figure 6 This is a schematic diagram of the placement structure of this utility model.

[0027] In the diagram: Composite pressing operation component-1, work cabinet-2, fixed seat-3, placement structure-4, front plate-5, through seat-11, threaded rod-12, first servo motor-13, material composite seat-14, cloud controller-15, balance wheel-16, support column-17, outer box-21, rotating structure-22, card holder-23, gear-24, second servo motor-25, rotating disk-26, bearing seat-27, connecting column-28, limiting structure-29, limiting block-291, rotating card block-292, placement block-41, platform-42, stable bracket-43. Detailed Implementation

[0028] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0029] Please see Figure 1-2 A composite pressing machine for superlattice materials and glass bottoms includes a composite pressing operation component 1, a work cabinet 2, a fixed base 3, a placement structure 4, and a front plate 5. The composite pressing operation component 1 is movably fitted above the placement structure 4. The fixed base 3 is installed on the upper surface of the work cabinet 2. The lower end of the placement structure 4 is embedded inside the work cabinet 2. The front plate 5 is an integral structure with the work cabinet 2 and is hinged to the front end of the work cabinet 2. The composite pressing operation component 1 includes a through seat 11, a threaded rod 12, a first servo motor 13, a material composite seat 14, a cloud controller 15, and a balance wheel. 16 and support column 17, the upper end of support column 17 is bolted to the side end of through seat 11, threaded rod 12 passes through the interior of through seat 11 and is engaged, the lower end of threaded rod 12 is connected to the output end of first servo motor 13, balance wheel 16 is fixedly connected to the outer periphery of first servo motor 13, cloud controller 15 is installed below first servo motor 13, cloud controller 15 is connected above material composite seat 14 and is electrically engaged, the lower end of support column 17 is welded to the side end of fixed seat 3, and material composite seat 14 is movably engaged above placement structure 4.

[0030] Please see Figure 3-5A composite pressing machine for superlattice materials and glass cup bottoms is disclosed. The work cabinet 2 includes an outer casing 21, a rotating structure 22, a mounting base 23, a gear 24, a second servo motor 25, a rotating disk 26, a bearing seat 27, a connecting column 28, and a limiting structure 29. The rotating structure 22 is movable inside the outer casing 21. The second servo motor 25 is installed inside the outer casing 21, and its output end is connected to the center of the rotating disk 26. The rotating disk 26 is located beside and meshes with the gear 24, which is located below the rotating structure 22. The mounting base 23 is an integral structure with the rotating structure 22 and is positioned at the center of its upper end face. The upper end of the bearing seat 27 is fixedly connected to the center of the lower end face of the rotating structure 22, and the lower end of the bearing seat 27 is connected to the connecting column 28. The limiting structure 29 is located between the gear 24 and the rotating disk. Below 26, the limiting structure 29 includes a limiting block 291 and a rotating locking block 292. The limiting block 291 and the rotating locking block 292 are arranged adjacently and rotate and engage. The locking seat 23 is connected to the lower end of the placement structure 4. The rotating structure 22 is installed with the placement structure 4 through the locking seat 23. The rotating structure 22 is movably engaged with the placement structure 4 through the rotating disk 26. The rotating disk 26 is provided with a rotating locking block 292 below it. The rotating disk 26 and the rotating locking block 292 are both driven by the second servo motor 25 and rotate synchronously. The rotating disk 26 has a circular structure and segmented locking teeth on its outer edge. The angle between the locking teeth segments is 120 degrees. The connecting column 28 is connected to the limiting block 291. The gear 24 is provided with a limiting block 291 below it. The rotating structure 22 is in a triangular state and can rotate intermittently. Each rotation angle is 120 degrees.

[0031] Please see Figure 6 A composite pressing machine for superlattice materials and glass cup bottoms, the placement structure 4 includes a placement block 41, a platform 42 and a stabilizing bracket 43. The platform 42 is embedded and fixedly connected to the upper end of the stabilizing bracket 43. The placement block 41 is fixedly located on the upper end surface of the platform 42. The lower end of the stabilizing bracket 43 is connected to the card seat 23 for transmission. The placement block 41 is provided in three places on the platform 42 and rotates about the center. Each rotation angle is 120 degrees.

[0032] In summary, before the superlattice material is laminated to the bottom of the glass, the cloud controller 15 is programmed and controlled in the cloud. The components within the cloud controller 15 electrically act on the material lamination seat 14, embedding the superlattice material film onto the bottom surface of the material lamination seat 14. This facilitates the subsequent lamination of the material film onto the bottom of the glass. After the placement structure 4 is installed using the work cabinet 2, one of the placement blocks 41 is aligned with the fitting opening on the bottom surface of the material lamination seat 14. The glass is then inverted and placed on the placement block 41. The power switch of the entire device is then turned on, activating the first servo motor 13, which rotates. The first servo motor 13 engages with the inner wall of the through seat 11, allowing it to move up and down, thus facilitating the lifting and lowering of the material lamination seat 14. This causes the lower surface of the material lamination seat 14 to gradually approach the placement block 41, pressing the superlattice material onto the bottom of the glass. After the material lamination is completed, the material lamination seat 14 moves upward, and the second servo motor 25... The intermittent start-stop operation facilitates the intermittent rotation of the rotating disk 26. Due to the shape and structure of the rotating disk 26, it intermittently meshes with the gear 24 during rotation, causing the gear 24 to rotate 120 degrees. This causes the rotating structure 22 to rotate 120 degrees along with the gear 24. The limiting block 291 and the rotating locking block 292 rotate 120 degrees with the rotating structure 22 and the rotating disk 26, respectively. The two work together to limit the rotation angle of the connecting column 28, thereby preventing the rotating structure 22 from rotating excessively. The lower end of the stabilizing bracket 43 is pressed into the card seat 23, so the platform 42 also rotates 120 degrees with the rotating structure 22, causing the placement block 41 to be repositioned 120 degrees. This allows the material composite seat 14 to intermittently perform superlattice material composite pressing operations on the placement block 41 directly below it. Personnel can easily place the glass cups to be composite pressed on different placement blocks 41 and take out the composite pressed glass cups, making the automation performance of the device better and the operation more convenient for personnel.

[0033] The control method of this utility model is to control the device by manually starting and stopping the switch. The wiring diagram of the power element and the supply of power are common knowledge in the field. Since this utility model is mainly used to protect mechanical devices, the control method and wiring layout will not be explained in detail.

[0034] The control method of this utility model is automatic control through a controller. The control circuit of the controller can be implemented by simple programming by those skilled in the art. The power supply is also common knowledge in the field. Since this utility model is mainly used to protect mechanical devices, the control method and circuit connection will not be explained in detail.

[0035] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A composite pressing machine for superlattice materials and glass cup bottoms, characterized in that: The device includes a composite pressing operation assembly (1), a work cabinet (2), a fixed base (3), a placement structure (4), and a front panel (5). The composite pressing operation assembly (1) is movably fitted above the placement structure (4). The fixed base (3) is installed on the upper surface of the work cabinet (2). The lower end of the placement structure (4) is embedded in the interior of the work cabinet (2). The front panel (5) is an integral structure with the work cabinet (2) and is hinged to the front end of the work cabinet (2). The composite pressing operation assembly (1) includes a through seat (11), a threaded rod (12), a first servo motor (13), a material composite seat (14), a cloud controller (15), a balance wheel (16), and a support column (17). The upper end of the support column (17) is bolted to the side end of the through seat (11). The threaded rod (12) passes through the interior of the through seat (11) and is engaged. The lower end of the threaded rod (12) is connected to the output end of the first servo motor (13). The balance wheel (16) is fixedly connected to the outer periphery of the first servo motor (13). The cloud controller (15) is installed below the first servo motor (13) and is connected above the material composite seat (14) and electrically engaged. The lower end of the support column (17) is welded to the side end of the fixed seat (3). The material composite seat (14) is movably engaged above the placement structure (4).

2. The composite pressing machine for superlattice materials and glass cup bottoms according to claim 1, characterized in that: The work cabinet (2) includes an outer casing (21), a rotating structure (22), a card holder (23), a gear (24), a second servo motor (25), a rotating disk (26), a bearing seat (27), a connecting column (28), and a limiting structure (29). The rotating structure (22) is movable inside the outer casing (21). The second servo motor (25) is installed inside the outer casing (21). The output end of the second servo motor (25) is connected to the middle of the rotating disk (26). 6) Located beside and meshing with the gear (24), the gear (24) is located below the rotating structure (22), the card holder (23) is an integral structure with the rotating structure (22) and is located at the middle of its upper end face, the upper end of the bearing seat (27) is fixedly connected to the middle of the lower end face of the rotating structure (22), the lower end of the bearing seat (27) is connected to the connecting column (28), and the limiting structure (29) is located below the gear (24) and the rotating disk (26).

3. The composite pressing machine for superlattice materials and glass cup bottoms according to claim 2, characterized in that: The limiting structure (29) includes a limiting block (291) and a rotating locking block (292), which are arranged adjacent to each other and engaged in a rotating manner.

4. The composite pressing machine for superlattice materials and glass cup bottoms according to claim 1, characterized in that: The placement structure (4) includes a placement block (41), a platform (42) and a stabilizing bracket (43). The platform (42) is fixedly connected to the upper end of the stabilizing bracket (43), and the placement block (41) is fixedly located on the upper surface of the platform (42).

5. The composite pressing machine for superlattice materials and glass cup bottoms according to claim 2, characterized in that: The card holder (23) is connected to the lower end of the placement structure (4) via a transmission connection. The rotating structure (22) is installed with the placement structure (4) via the card holder (23). The rotating structure (22) is movably engaged with the placement structure (4) via the rotating disk (26).

6. The composite pressing machine for superlattice materials and glass cup bottoms according to claim 2, characterized in that: The rotating disk (26) is provided with a rotating block (292) below it. The rotating disk (26) and the rotating block (292) are both driven by the second servo motor (25) to rotate synchronously. The rotating disk (26) has a circular structure and is provided with segmented teeth on its outer edge. The angle between the segments of the teeth is 120 degrees.

7. The composite pressing machine for superlattice materials and glass cup bottoms according to claim 2, characterized in that: A limiting block (291) is provided below the gear (24), and the connecting column (28) is connected to the limiting block (291) in a transmission connection.

8. The superlattice material and glass cup bottom composite pressing machine according to claim 4, characterized in that: The lower end of the stabilizing bracket (43) is connected to the card holder (23) via a transmission connection.