A cooling device for processing of architectural safety glass

By designing a motor-driven shaft and a half-gear system in the cooling device, continuous water supply and tumbling cooling of semi-tempered glass were achieved, solving the problem of low cooling efficiency in existing technologies and realizing a highly efficient and uniform cooling effect.

CN224530825UActive Publication Date: 2026-07-21GUANGDONG AVIC SPECIAL GLASS TECH
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
GUANGDONG AVIC SPECIAL GLASS TECH
Filing Date
2025-11-04
Publication Date
2026-07-21

AI Technical Summary

Technical Problem

Existing water-cooling spray methods are insufficient to achieve continuous water supply and uniform cooling on both sides of semi-tempered glass, resulting in low cooling efficiency.

Method used

A cooling device was designed, in which a motor-driven rotating shaft and half gear drive a rack to move, pushing an extrusion plate to move within a cooling box, thereby achieving a continuous supply of coolant. The glass is then uniformly cooled by a spray plate, and a flipping mechanism is used to flip the glass to ensure uniform cooling on both sides.

Benefits of technology

It achieves efficient and uniform cooling of semi-tempered glass, improves cooling effect and flipping stability, and ensures the continuity and uniformity of the cooling process.

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Abstract

The utility model relates to glass processing technical field, propose a kind of cooling device for building safety glass processing, including processing box, the bottom of the processing box is fixedly connected with support, the side of the processing box is equipped with inlet, the inside of the processing box is provided with cooling mechanism, the utility model when cooling semi toughened glass, staff places semi toughened glass on placing rack, and starts motor, drives the rotation of rotating shaft, drives half gear and rack to engage, rack moves extrusion plate in cooling box by connecting rod, and pressurizes coolant, pushes cooling fluid to flow into delivery pipe, then half toughened glass is cooled by spraying plate, cooling water after use enters cooling box recycling by recovery pipe, one-way valve prevents water backflow, such design reaches the effect that half toughened glass is continuously cooled, enhances heat reflection and reduces heat absorption, ensure the high efficiency of cooling process.
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Description

Technical Field

[0001] This utility model relates to the field of glass processing technology, specifically to a cooling device for processing architectural safety glass. Background Technology

[0002] Semi-tempered glass, also known as heat-strengthened glass or tempered glass, is commonly used in building safety. Its production process is basically the same as tempered glass, involving heating the glass to near its softening temperature and then uniformly freezing it. During the cooling process, due to the lower cooling air pressure, the cooling rate is slower than that of tempered glass. Therefore, the temperature difference between the intermediate layer and the surface layer is relatively small, resulting in lower surface stress. Semi-tempered glass is annealed glass that undergoes high temperature and quenching, creating a compressive stress of less than 69 MPa on the surface, which increases the glass's mechanical strength several times over. After breakage, it behaves like ordinary glass, but its thermal shock resistance is significantly improved and it will not spontaneously shatter.

[0003] In existing technologies, semi-tempered glass needs to be rapidly cooled at high temperatures, so it is generally cooled quickly by water cooling at a temperature of about 20 degrees Celsius. However, existing water cooling spraying methods are not convenient for achieving continuous water supply and uniform cooling of both sides of the glass. Therefore, we propose a cooling device for the processing of architectural safety glass. Utility Model Content

[0004] This utility model proposes a cooling device for processing architectural safety glass.

[0005] The technical solution of this utility model is as follows: A cooling device for processing architectural safety glass includes a processing box, a support is fixedly connected to the bottom of the processing box, an entrance is opened on the side of the processing box, and a cooling mechanism is provided inside the processing box; The cooling mechanism includes a motor, which is fixedly connected inside the bracket. The output shaft of the motor is fixedly connected to a rotating shaft, and a half gear is fixedly connected to the circumferential surface of the rotating shaft. A sliding groove is formed on the inner wall of the bracket, and a rack is slidably connected inside the sliding groove. A connecting rod is fixedly connected to the bottom of the rack, and a pressing plate is fixedly connected to the end of the connecting rod away from the bottom of the rack. A cooling box is fixedly connected inside the bracket, and the side of the cooling box is slidably connected to the side of the connecting rod. A conveying pipe is fixedly connected to the side of the cooling box, and a spray plate is fixedly connected to the end of the conveying pipe away from the side of the cooling box. The purpose of this is to allow the cooling water to contact the coating surface and carry away the heat inside the device.

[0006] A return spring is fixedly connected to the side of the cooling box. The end of the return spring away from the side of the cooling box is fixedly connected to the side of the rack. The purpose is to ensure that the rack can automatically return to its original position and reduce manual intervention.

[0007] A recovery pipe is fixedly installed through the top of the cooling tank, and a one-way valve is provided on the circumferential surface of the recovery pipe, the purpose of which is to recycle and reuse the used coolant.

[0008] The circumferential surface of the half gear meshes with the top of the rack. The interior of the processing box is equipped with a rack to ensure that the rotation of the half gear can drive the rack to move.

[0009] The processing box is equipped with a flipping mechanism, which includes a pulley 1 fixedly connected to the circumferential surface of a rotating shaft. A belt is provided on the circumferential surface of the pulley 1. A support shaft is rotatably connected to the inner wall of the processing box. One end of the support shaft away from the inner wall of the processing box is fixedly connected to the side of the placement rack. A second pulley is fixedly connected to the circumferential surface of the support shaft. The purpose of this mechanism is to ensure that the semi-tempered glass can be flipped so that the semi-tempered glass can be cooled completely.

[0010] A fixing plate is fixedly connected to the top of the placement rack, and a compression spring is fixedly connected to the bottom of the fixing plate. A clamping plate is fixedly connected to the end of the compression spring away from the bottom of the fixing plate. The purpose of this is to ensure that the semi-tempered glass can be stably fixed during the flipping process and to prevent it from falling.

[0011] The inside of the belt meshes with the circumferential surfaces of pulley one and pulley two. Pulley one is connected to pulley two via the belt for transmission. The purpose is to ensure that the rotation of pulley one can drive pulley two to rotate via the belt.

[0012] There are two of the support shaft, compression spring and clamping plate, which are symmetrical to each other along the vertical central axis of the processing box. The initial state of the compression spring is relaxed, which is to stably clamp the two sides of the semi-tempered glass.

[0013] The working principle and beneficial effects of this utility model are as follows: 1. This utility model utilizes the coordinated operation of components such as the motor, cooling tank, and spray plate in a cooling mechanism. When cooling semi-tempered glass, the operator places the glass on a rack and starts the motor, driving the rotating shaft to rotate. This causes the half-gear to mesh with the rack, which in turn pushes the pressing plate within the cooling tank via a connecting rod, pressurizing the coolant and propelling it into the delivery pipe. The coolant is then cooled by the spray plate. Used cooling water is recycled back into the cooling tank via a recovery pipe, and a one-way valve prevents backflow. When the half-gear rotates to the toothless region, the rack automatically resets via a return spring, achieving reciprocating linear motion and continuously supplying cooling water. This design achieves continuous cooling of the semi-tempered glass, enhancing heat reflection and reducing heat absorption, ensuring high efficiency in the cooling process.

[0014] 2. This utility model utilizes the cooperation between components such as the belt, support shaft, and clamping plate of the flipping mechanism. The rotating shaft drives the first pulley to rotate, which in turn drives the second pulley to rotate the support shaft. The support shaft flips the semi-tempered glass through the placement frame. During the flipping process, the clamping plate cooperates with the compression spring to ensure the stable rotation of the semi-tempered glass and prevent it from falling. At the same time, cooling water is continuously sprayed to uniformly cool the other side of the semi-tempered glass. This design achieves the effect of flipping the semi-tempered glass, improves the cooling effect and the stability of the semi-tempered glass flipping, and ensures uniform cooling.

[0015] Of course, any product implementing this utility model does not necessarily need to achieve all of the advantages described above at the same time. Attached Figure Description

[0016] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments.

[0017] Figure 1 This is a structural schematic diagram of the overall three-dimensional appearance of the processing box of this utility model; Figure 2 This is a three-dimensional cross-sectional structural diagram of the processing box of this utility model; Figure 3 This is a three-dimensional enlarged structural schematic diagram of the cooling mechanism of this utility model; Figure 4 This utility model Figure 3 A three-dimensional magnified structural diagram of A in the middle; Figure 5 This utility model Figure 2 A three-dimensional magnified structural diagram of B.

[0018] In the diagram: 1. Processing box; 2. Support; 3. Inlet; 4. Cooling mechanism; 41. Motor; 42. Rotating shaft; 43. Half gear; 44. Slide groove; 45. Rack; 46. Connecting rod; 47. Extrusion plate; 48. Cooling box; 49. Conveying pipe; 410. Spraying plate; 411. Return spring; 412. Recovery pipe; 413. One-way valve; 5. Placement rack; 6. Tilting mechanism; 61. Pulley 1; 62. Belt; 63. Support shaft; 64. Pulley 2; 65. Fixing plate; 66. Compression spring; 67. Clamping plate. Detailed Implementation

[0019] The technical solutions of this utility model will be clearly and completely described below with reference to the embodiments of this utility model. Obviously, the described embodiments are only some embodiments of this utility model, and not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this utility model.

[0020] Example 1 like Figures 1-5 As shown, this embodiment proposes a cooling device for processing architectural safety glass, including a processing box 1, a support 2 fixedly connected to the bottom of the processing box 1, an inlet 3 opened on the side of the processing box 1, and a cooling mechanism 4 installed inside the processing box 1. The cooling mechanism 4 includes a motor 41, which is fixedly connected inside the bracket 2. The output shaft of the motor 41 is fixedly connected to a rotating shaft 42, and a half gear 43 is fixedly connected to the circumferential surface of the rotating shaft 42. A sliding groove 44 is provided on the inner wall of the bracket 2. A rack 45 is slidably connected inside the sliding groove 44. A connecting rod 46 is fixedly connected to the bottom of the rack 45. An extrusion plate 47 is fixedly connected to the end of the connecting rod 46 away from the bottom of the rack 45. A cooling box 48 is fixedly connected inside the bracket 2. The side of the cooling box 48 is slidably connected to the side of the connecting rod 46. A conveying pipe 49 is fixedly connected to the side of the cooling box 48. A spray plate 410 is fixedly connected to the end of the conveying pipe 49 away from the side of the cooling box 48. The purpose of this is to make the cooling water contact the coating surface and remove the heat inside the device.

[0021] A return spring 411 is fixedly connected to the side of the cooling box 48. The end of the return spring 411 away from the side of the cooling box 48 is fixedly connected to the side of the rack 45. The purpose is to ensure that the rack 45 can automatically reset and reduce manual intervention.

[0022] A recovery pipe 412 is fixedly inserted through the top of the cooling tank 48. A one-way valve 413 is provided on the circumferential surface of the recovery pipe 412, the purpose of which is to recycle and reuse the used coolant.

[0023] The circumferential surface of the half gear 43 meshes with the top of the rack 45. The processing box 1 is equipped with a placement rack 5, the purpose of which is to ensure that the rotation of the half gear 43 can drive the rack 45 to move.

[0024] In this embodiment, when the semi-tempered glass needs to be cooled, the worker places the semi-tempered glass on the placement rack 5 through inlet 3, then starts the motor 41. The output shaft of the motor 41 rotates, which drives the rotating shaft 42 to rotate. The rotating shaft 42 drives the half gear 43 to rotate. The half gear 43 meshes with the rack 45, causing the rack 45 to move inside the slide groove 44. The movement of the rack 45 drives the extrusion plate 47 to move inside the cooling box 48 via the connecting rod 46. The movement of the extrusion plate 47 cools the glass. The coolant inside the cooling tank 48 is pressurized, allowing it to enter the delivery pipe 49. Then, the semi-tempered glass on top of the placement rack 5 is cooled by the spray plate 410. The used cooling water enters the cooling tank 48 for reuse through the recovery pipe 412. The one-way valve 413 prevents the cooling water from flowing back. When the half gear 43 continues to rotate to the toothless area, the rack 45 is automatically reset by the elasticity of the return spring 411. As the half gear 43 continues to rotate, the rack 45 performs reciprocating linear motion, thereby continuously supplying cooling water to the delivery pipe 49.

[0025] Example 2 like Figures 1-5 As shown, based on the same concept as Embodiment 1 above, this embodiment also proposes that the interior of the processing box 1 is provided with a flipping mechanism 6. The flipping mechanism 6 includes a pulley 61, which is fixedly connected to the circumferential surface of the rotating shaft 42. A belt 62 is provided on the circumferential surface of the pulley 61. A support shaft 63 is rotatably connected to the inner wall of the processing box 1. One end of the support shaft 63 away from the inner wall of the processing box 1 is fixedly connected to the side of the placement rack 5. A pulley 64 is fixedly connected to the circumferential surface of the support shaft 63. The purpose is to ensure that the semi-tempered glass can be flipped so that the semi-tempered glass can be cooled completely.

[0026] A fixing plate 65 is fixedly connected to the top of the placement rack 5, and a compression spring 66 is fixedly connected to the bottom of the fixing plate 65. A clamping plate 67 is fixedly connected to the end of the compression spring 66 away from the bottom of the fixing plate 65. The purpose is to ensure that the semi-tempered glass can be stably fixed during the flipping process and prevent it from falling.

[0027] The inside of belt 62 meshes with the circumferential surfaces of pulley 61 and pulley 64. Pulley 61 is connected to pulley 64 via belt 62. The purpose is to ensure that the rotation of pulley 61 can drive pulley 64 to rotate via belt 62.

[0028] There are two support shafts 63, compression springs 66 and clamping plates 67, which are symmetrical to each other along the vertical central axis of the processing box 1. The initial state of the compression springs 66 is relaxed, which is to stably clamp the two sides of the semi-tempered glass.

[0029] In this embodiment, the rotation of the rotating shaft 42 drives the first pulley 61 to rotate. The rotation of the first pulley 61 drives the second pulley 64 to rotate via the belt 62. The rotation of the second pulley 64 drives the support shaft 63 to rotate. The rotation of the support shaft 63 drives the semi-tempered glass to flip through the placement frame 5. During the flipping process, the clamping plate 67 cooperates with the compression spring 66 to make the semi-tempered glass rotate stably and prevent it from falling. At this time, the other side of the semi-tempered glass is uniformly cooled by continuously sprayed cooling water.

[0030] The above are merely preferred embodiments of the present utility model and are not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model shall be included within the protection scope of the present utility model.

Claims

1. A cooling device for processing architectural safety glass, characterized in that, The processing box (1) includes a support (2) fixedly connected to the bottom of the processing box (1), an inlet (3) is opened on the side of the processing box (1), and a cooling mechanism (4) is provided inside the processing box (1). The cooling mechanism (4) includes a motor (41), which is fixedly connected inside the bracket (2). The output shaft of the motor (41) is fixedly connected to a rotating shaft (42). A half gear (43) is fixedly connected to the circumferential surface of the rotating shaft (42). A sliding groove (44) is provided on the inner wall of the bracket (2). A rack (45) is slidably connected inside the sliding groove (44). A connecting rod (46) is fixedly connected to the bottom of the rack (45). A pressing plate (47) is fixedly connected to one end of the connecting rod (46) away from the bottom of the rack (45). A cooling box (48) is fixedly connected inside the bracket (2). The side of the cooling box (48) is slidably connected to the side of the connecting rod (46). A conveying pipe (49) is fixedly connected to the side of the cooling box (48). A spraying plate (410) is fixedly connected to one end of the conveying pipe (49) away from the side of the cooling box (48).

2. The cooling device for processing architectural safety glass according to claim 1, characterized in that, A return spring (411) is fixedly connected to the side of the cooling box (48), and the end of the return spring (411) away from the side of the cooling box (48) is fixedly connected to the side of the rack (45).

3. A cooling device for processing architectural safety glass according to claim 2, characterized in that, A recovery pipe (412) is fixedly inserted through the top of the cooling box (48), and a one-way valve (413) is provided on the circumferential surface of the recovery pipe (412).

4. A cooling device for processing architectural safety glass according to claim 3, characterized in that, The circumferential surface of the half gear (43) meshes with the top of the rack (45), and the interior of the processing box (1) is provided with a placement rack (5).

5. A cooling device for processing architectural safety glass according to claim 4, characterized in that, The processing box (1) is equipped with a flipping mechanism (6), which includes a pulley (61) and a belt (62) on the circumferential surface of a rotating shaft (42). The inner wall of the processing box (1) is rotatably connected to a support shaft (63). One end of the support shaft (63) away from the inner wall of the processing box (1) is fixedly connected to the side of a placement rack (5). The circumferential surface of the support shaft (63) is fixedly connected to a pulley (64).

6. A cooling device for processing architectural safety glass according to claim 5, characterized in that, The top of the placement rack (5) is fixedly connected to a fixing plate (65), the bottom of the fixing plate (65) is fixedly connected to a compression spring (66), and the end of the compression spring (66) away from the bottom of the fixing plate (65) is fixedly connected to a clamping plate (67).

7. A cooling device for processing architectural safety glass according to claim 6, characterized in that, The inside of the belt (62) meshes with the circumferential surfaces of pulley one (61) and pulley two (64), and pulley one (61) is connected to pulley two (64) via the belt (62).

8. A cooling device for processing architectural safety glass according to claim 7, characterized in that, There are two of the support shaft (63), compression spring (66) and clamping plate (67), and they are symmetrical to each other along the vertical central axis of the processing box (1). The initial state of the compression spring (66) is relaxed.