A film-coated glass production pick-up device
By employing a multi-traction shaft and rotating structure in the glass-picking device during coated glass production, combined with a suction device and buffer ring design, the problems of coating scratches and glass damage caused by the glass-picking device are solved, achieving a stable and safe glass sheet removal process and improving production efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- 石家庄迎新节能科技有限公司
- Filing Date
- 2025-08-04
- Publication Date
- 2026-05-29
Smart Images

Figure CN224298334U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of coated glass production technology, specifically to a sheet-taking device in coated glass production. Background Technology
[0002] Coated glass is a type of glass with a thin film coated on its surface using physical or chemical methods. This film imparts specific functions to the glass, such as anti-reflection, heat insulation, UV protection, and anti-glare. Coated glass is widely used in construction, automotive, and electronics industries, for example, in low-emissivity windows, energy-saving windows, and solar panels. In the production process, the use of a sheet-retrieving device is crucial. During the manufacturing process, coated glass typically has a very thin coating on its surface, which can be quite fragile and easily scratched or contaminated. Therefore, a sheet-retrieving device is needed to help automatically or manually and safely handle these glass sheets, avoiding direct contact with the glass surface and ensuring the integrity of the coating. Thus, a sheet-retrieving device is required in the production of coated glass.
[0003] If the glass picker is poorly designed or not precisely controlled during operation, the coating on the glass surface may be scratched or peeled off. Since coated glass may be relatively thin and brittle, improper operating force, position, or misoperation of the picker may cause the glass to deform or break. Utility Model Content
[0004] The purpose of this utility model is to provide a sheet-retrieving device in the production of coated glass, so as to solve the problems mentioned in the background art, that if the sheet-retrieving device is not designed properly or is not precisely controlled during operation, the coating on the glass surface may be scratched or peeled off. Since coated glass may be relatively thin and brittle, improper operating force, position or misoperation of the sheet-retrieving device may cause deformation or breakage of the glass.
[0005] To achieve the above objectives, the present invention provides the following technical solution: a sheet-taking device in the production of coated glass, comprising a device frame, a first motor, a second motor, a transmission assembly, and a sheet-taking assembly. The first motor is disposed at the bottom of the device frame, the second motor is disposed inside the first motor, the transmission assembly is mounted above the device frame, and the sheet-taking assembly is disposed outside the transmission assembly.
[0006] The tablet retrieval assembly includes a main rotating shaft, a vertical plate, an inner groove, a fixed plate, a first traction shaft, a right side plate, a second traction shaft, a lifting plate, a third traction shaft, a left side plate, a fourth traction shaft, and a tablet suction device. The main rotating shaft is mounted above the device frame. A vertical plate is connected to the outer side of the main rotating shaft. An inner groove is formed above the vertical plate. A fixed plate is mounted on the inner side of the inner groove. The first traction shaft is connected to the right side of the fixed plate. The right side plate is connected to the upper side of the first traction shaft. The second traction shaft is connected to the other side of the right side plate. The lifting plate is connected to the other side of the second traction shaft. The third traction shaft is connected to the left side of the fixed plate. The left side plate is connected to the left side of the third traction shaft. The fourth traction shaft is connected to the other side of the left side plate. A tablet suction device is mounted on the surface of the lifting plate.
[0007] Preferably, the device frame has a built-in groove on top, and the transmission component and the sheet-picking component are both disposed inside it. The first motor is electrically connected to the transmission component, and the second motor is electrically connected to the sheet-picking component.
[0008] Preferably, the transmission assembly includes a rotating drum and a buffer ring, with rotating drums provided on both sides of the wafer picking assembly, and a buffer ring installed on the outer side of the rotating drum.
[0009] Preferably, the first motor drives the drum to rotate, and the buffer ring is provided with anti-slip burrs around it.
[0010] Preferably, the device frame forms a rotating structure with the upright plate via the main rotating shaft, the right side plate forms a rotating structure with the lifting plate via the second traction shaft, the fixed plate forms a rotating structure with the left side plate via the third traction shaft, and the lifting plate forms a rotating structure with the left side plate via the fourth traction shaft.
[0011] Compared with the prior art, the beneficial effects of this utility model are:
[0012] The glass sheet picking assembly employs multiple traction shafts and rotating structures. Through coordinated movement, the erection process of the coated glass sheet can be precisely controlled, avoiding damage caused by excessively fast or uneven movements. The design of the suction device and slow, stable mechanical movement allows the glass sheet to be removed from the production line without applying excessive force, effectively reducing the risk of damage and ensuring the integrity of the glass sheet. The design of the rotating drum and buffer ring, especially the anti-slip burrs on the buffer ring, not only increases friction but also prevents slippage or instability during operation, improving the stability and reliability of the device. The cooperation of the first and second motors ensures continuous and stable production without frequent manual intervention, thus improving production efficiency. The coordination of the rotating structures and traction shafts between the device frame 1 and various plates (such as the main rotating shaft, upright plate, and right side plate) effectively ensures synchronized movements of all parts during the glass sheet picking process, avoiding conflicts or incoordination between components. Through the collaboration of the suction device and multiple rotating structures, the device operates stably while reducing operational risks and ensuring the safety of the production process. Attached Figure Description
[0013] Figure 1 This is a schematic diagram of the overall structure of this utility model.
[0014] Figure 2 This is a top view of the device of this utility model.
[0015] Figure 3 This is a schematic diagram of the slice-taking assembly of this utility model.
[0016] In the diagram: 1. Device frame; 2. First motor; 3. Second motor; 4. Transmission assembly; 401. Rotary drum; 402. Buffer ring; 5. Tablet picking assembly; 501. Main rotating shaft; 502. Vertical plate; 503. Inner groove; 504. Fixing plate; 505. First traction shaft; 506. Right side plate; 507. Second traction shaft; 508. Pushing plate; 509. Third traction shaft; 510. Left side plate; 511. Fourth traction shaft; 512. Tablet suction device. Detailed Implementation
[0017] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.
[0018] Please see Figure 1-3The present invention provides an embodiment of a sheet-taking device in the production of coated glass, comprising a device frame 1, a first motor 2, a second motor 3, a transmission assembly 4, and a sheet-taking assembly 5. The first motor 2 is disposed at the bottom of the device frame 1, the second motor 3 is disposed inside the first motor 2, the transmission assembly 4 is mounted on the top of the device frame 1, and the sheet-taking assembly 5 is disposed outside the transmission assembly 4.
[0019] The tablet-receiving assembly 5 includes a main rotating shaft 501, a vertical plate 502, an inner groove 503, a fixing plate 504, a first traction shaft 505, a right side plate 506, a second traction shaft 507, a pushing plate 508, a third traction shaft 509, a left side plate 510, a fourth traction shaft 511, and a tablet suction device 512. The main rotating shaft 501 is mounted above the device frame 1. The vertical plate 502 is connected to the outer side of the main rotating shaft 501. An inner groove 503 is formed above the vertical plate 502. A fixing plate 504 is mounted on the inner side of the inner groove 503. The first traction shaft 505 is connected to the right side of the fixing plate 504, and a right side plate 506 is connected to the top of the first traction shaft 505. Side plate 506, right side plate 506, the other side of right side plate 506 is connected to a second traction shaft 507, the other side of the second traction shaft 507 is connected to a lifting plate 508, the left side of fixed plate 504 is connected to a third traction shaft 509, the left side of the third traction shaft 509 is connected to a left side plate 510, the other side of left side plate 510 is connected to a fourth traction shaft 511, the surface of lifting plate 508 is equipped with a suction device 512. Through the coordinated movement of the traction shafts, the main rotating shaft 501 drives the upright plate 502, right side plate 506, left side plate 510 and other plates to move up and down, thereby slowly and accurately erecting the coated glass sheet. This ensures that the glass sheet is not damaged and can move stably.
[0020] The device frame 1 has an internal groove on top, and the transmission component 4 and the sheet-taking component 5 are both located inside. The first motor 2 is electrically connected to the transmission component 4. The first motor 2 drives the rotating drum 401 to rotate, so that the coated glass can be fed smoothly. The second motor 3 is electrically connected to the sheet-taking component 5. The second motor 3 is responsible for driving the movement of the sheet-taking component 5 to ensure the smooth operation of each traction shaft.
[0021] The transmission assembly 4 includes a rotating drum 401 and a buffer ring 402. The plate-taking assembly 5 has rotating drums 401 on both sides, and buffer rings 402 are installed on the outer sides of the rotating drums 401. The transmission assembly 4, through the cooperation of the rotating drums 401 and the buffer rings 402, enables the device to operate smoothly. The anti-slip burr design of the buffer ring increases friction, preventing slippage or instability during rotation, and contributing to a smooth and powerful push.
[0022] The first electric motor 2 drives the rotating drum 401 to rotate. Anti-slip burrs are provided around the buffer ring 402. The anti-slip burrs around the buffer ring 402 enhance the friction, making the device more stable when transmitting power, avoiding slippage or jamming, and improving the reliability of the device.
[0023] The device frame 1 forms a rotating structure with the main rotating shaft 501 and the upright plate 502. The right side plate 506 forms a rotating structure with the lifting plate 508 through the second traction shaft 507. The fixed plate 504 forms a rotating structure with the left side plate 510 through the third traction shaft 509. The lifting plate 508 forms a rotating structure with the left side plate 510 through the fourth traction shaft 511. These structures interact with each other, and their linkage mechanism ensures the synchronization and stability of each part during the film taking process.
[0024] Working Principle: First, the first motor 2, located at the bottom of the device frame 1, is started, driving the rotating drum 401 to rotate. The rotation of the rotating drum 401 drives the entire glass-picking device through the transmission assembly 4. As the first motor starts, the rotating drum 401 begins to rotate, driving the buffer ring 402 to rotate. The anti-slip burr design around the buffer ring 402 helps to enhance friction and ensure the stable operation of the entire system. The glass-picking device 512 is installed on the surface of the lifting plate 508. When the lifting plate 508 starts to operate, the glass-picking device starts and picks up the coated glass sheet. At this time, the second motor 3 drives the movement of various components of the glass-picking assembly 5, including the first traction shaft 505, the second traction shaft 507, the third traction shaft 509, and the fourth traction shaft 511. As the main rotating shaft 501 is lifted upward, the several traction shafts move upward in sequence. The left side plate 510 is lifted to the left, and the right side plate 506 is also lifted by the force of the lifting plate 508, slowly erecting the coated glass. The glass-picking device 512 plays an auxiliary fixing role in the process.
[0025] The above description is merely an embodiment of this utility model, and common knowledge regarding specific structures and characteristics is not described in detail here. It will be apparent to those skilled in the art that this utility model is not limited to the details of the above exemplary embodiments, and that it can be implemented in other specific forms without departing from the spirit or essential characteristics of this utility model. Therefore, the embodiments should be considered exemplary and non-limiting in all respects, and the scope of this utility model is defined by the appended claims rather than the foregoing description. Thus, it is intended that all variations falling within the meaning and scope of equivalents of the claims be included within this utility model. No reference numerals in the claims should be construed as limiting the scope of the claims.
Claims
1. A sheet-retrieving device for coated glass production, comprising a device frame (1), a first electric motor (2), a second electric motor (3), a transmission assembly (4), and a sheet-retrieving assembly (5), characterized in that: The first motor (2) is located at the bottom of the device frame (1), and a second motor (3) is located inside the first motor (2). A transmission assembly (4) is installed above the device frame (1), and a chip-taking assembly (5) is located outside the transmission assembly (4). The tablet taking assembly (5) includes a main rotating shaft (501), a vertical plate (502), an inner groove (503), a fixing plate (504), a first traction shaft (505), a right side plate (506), a second traction shaft (507), a lifting plate (508), a third traction shaft (509), a left side plate (510), a fourth traction shaft (511), and a tablet suction device (512). The main rotating shaft (501) is installed above the device frame (1). The vertical plate (502) is connected to the outside of the main rotating shaft (501). An inner groove (503) is opened above the vertical plate (502). A fixing plate (504) is installed on the inner side of the inner groove (503). A first traction shaft (505) is connected to the right side of the plate (504), a right side plate (506) is connected above the first traction shaft (505), a second traction shaft (507) is connected to the other side of the right side plate (506), a lifting plate (508) is connected to the other side of the second traction shaft (507), a third traction shaft (509) is connected to the left side of the fixed plate (504), a left side plate (510) is connected to the left side of the third traction shaft (509), a fourth traction shaft (511) is connected to the other side of the left side plate (510), and a suction device (512) is installed on the surface of the lifting plate (508).
2. The sheet-taking device for coated glass production according to claim 1, characterized in that: The device frame (1) has an internal groove on its upper part, and the transmission component (4) and the piece-taking component (5) are both located inside it. The first motor (2) is electrically connected to the transmission component (4), and the second motor (3) is electrically connected to the piece-taking component (5).
3. The sheet-taking device in the production of coated glass according to claim 1, characterized in that: The transmission assembly (4) includes a rotating drum (401) and a buffer ring (402). The two sides of the take-up assembly (5) are provided with rotating drums (401), and the outer side of the rotating drum (401) is equipped with a buffer ring (402).
4. The sheet-taking device in the production of coated glass according to claim 3, characterized in that: The first motor (2) drives the rotating drum (401) to rotate, and the buffer ring (402) is provided with anti-slip burrs around it.
5. The sheet-taking device for coated glass production according to claim 1, characterized in that: The device frame (1) forms a rotating structure with the upright plate (502) via the main rotating shaft (501), the right side plate (506) forms a rotating structure with the lifting plate (508) via the second traction shaft (507), the fixed plate (504) forms a rotating structure with the left side plate (510) via the third traction shaft (509), and the lifting plate (508) forms a rotating structure with the left side plate (510) via the fourth traction shaft (511).