Automatic cooling device for hollow tempered glass
By combining air-cooling and water-cooling structures, the problem of low cooling efficiency of hollow tempered glass is solved, achieving efficient cooling and water conservation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- XUZHOU HENGXIN GLASS CO LTD
- Filing Date
- 2025-06-13
- Publication Date
- 2026-05-12
AI Technical Summary
Existing cooling devices for insulating tempered glass only utilize air cooling, resulting in low cooling efficiency and consequently low work efficiency.
Combining air-cooling and water-cooling structures, and adjusting the nozzle angle and reusing water through structural adjustment, the cooling efficiency and range are improved.
This technology enables efficient cooling of hollow tempered glass, improves the operating efficiency of the device, and saves water resources.
Smart Images

Figure CN224226892U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of insulated tempered glass technology, and in particular to an automatic cooling device for insulated tempered glass. Background Technology
[0002] Insulating tempered glass is composed of two pieces of tempered glass and a glass support frame. During the tempering process, tempered glass requires a cooling process. This is because, in the physical and chemical cooling process of tempered glass manufacturing, the tempered glass needs to be cooled to room temperature in a short time. This rapid cooling causes structural changes in the internal structure, resulting in structurally stable and high-strength tempered glass. Therefore, a cooling device is necessary.
[0003] As disclosed in CN217418528U, "An Automatic Cooling Device for Insulating Tempered Glass" specifically discloses: a chain for conveying glass is provided on a support, and two rollers are provided on the chain; a cooling device is slidably arranged in the middle of the support; the cooling device includes multiple air jet pipes, which are connected to sliding rods; the sliding rods are connected to drive rods, which are connected to swing rods; a sliding groove is provided on one side of the swing rod, and a slider is slidably arranged in the sliding groove; the slider is connected to a drive device that drives the slider to rotate; the circumference of one rotation of the slider driven by the drive device is less than the distance the glass moves. In the above technology, only air cooling is used to cool the insulating tempered glass, which results in limited cooling efficiency of the insulating tempered glass, thus reducing the working efficiency of the device during use. Therefore, this utility model proposes an automatic cooling device for insulating tempered glass to solve the problems existing in the prior art. Utility Model Content
[0004] To address the aforementioned problems, this utility model proposes an automatic cooling device for insulated tempered glass, which solves the problem that the above-mentioned technology only uses air cooling to cool insulated tempered glass, resulting in limited cooling efficiency and thus reducing the working efficiency of the device during use.
[0005] To achieve the purpose of this utility model, the utility model is implemented through the following technical solution: an automatic cooling device for hollow tempered glass, including a mounting frame, a rotating shaft, and a cooling device. A rotating shaft is installed between two mounting frames. A conveying wheel is installed on the outer wall of the rotating shaft. A plastic sleeve is provided on the outer wall of the conveying wheel. A cooling device is provided above the mounting frame. The cooling device includes an air-cooling structure and a water-cooling structure. The air-cooling structure and the water-cooling structure dissipate heat from the hollow tempered glass. A water-cooling structure is installed on the left side above the mounting frame, and an air-cooling structure is installed on the right side above the mounting frame.
[0006] The air-cooled structure includes a fixed frame, a first fan, and a second fan. The fixed frame is installed above the mounting frame, the first fan is installed inside the fixed frame, and the second fan is installed inside the mounting frame.
[0007] The water-cooled structure includes an installation cavity, water pipes, nozzles, a water pump, a water storage tank, a cooler, and an adjustment structure. The installation cavity is installed above and below the mounting frame. A water pipe is rotatably connected inside the installation cavity. Multiple nozzles are provided at one end of the water pipe. A water storage tank is installed below the mounting frame. A cooler is installed inside the water storage tank. A water pump is provided on one side of the water storage tank. One end of the water pump is connected to one end of the water storage tank through a pipe, and the other end of the water pump is connected to the water pipe through a flexible hose.
[0008] A further improvement is that a water collection plate is installed above the water storage tank, through which the water source is collected and used.
[0009] A further improvement is made in that the adjustment structure includes a fixed cavity, a servo motor, a drive wheel, a transmission frame, a transmission rack, a driven gear, and a limiting structure. The fixed cavity is installed on one side inside the mounting cavity. The servo motor is installed at the front end of the fixed cavity. A waterproof housing is provided on the outer wall of the servo motor. The drive wheel is installed inside the fixed cavity. The output end of the servo motor is connected to one end of the drive wheel. A transmission frame is provided on the outer wall of the drive wheel. The drive wheel has a half-gear design. Transmission teeth are provided on the upper and lower parts of the transmission frame. The drive wheel and the transmission frame mesh with each other. A transmission rack is installed at the top of the transmission frame. A driven gear meshes on the upper part of the transmission rack. One end of the driven gear is connected to one end of a water pipe.
[0010] A further improvement is that the limiting structure includes a limiting rod and a limiting sleeve. The limiting rod is installed at the bottom of the fixed cavity, and the outer wall of the limiting rod is provided with a limiting sleeve. The top of the limiting sleeve is connected to the bottom of the transmission frame.
[0011] A further improvement is that the outer diameter of the limiting rod is larger than the inner diameter of the limiting sleeve, and the limiting rod and the limiting sleeve form a sliding structure.
[0012] A further improvement is that multiple rotating shafts are provided on the inner side of the mounting frame, and the multiple rotating shafts are distributed at equal intervals on the inner side of the mounting frame.
[0013] The beneficial effects of this utility model are:
[0014] 1. This utility model is equipped with both air-cooled and water-cooled structures. By utilizing the cooperation of the fixed frame of the air-cooled structure, the first fan, the second fan, and the mounting cavity, water pipes, nozzles, water pump, water tank, and refrigeration unit of the water-cooled structure, dual high-efficiency heat dissipation can be achieved for the insulated tempered glass during transportation, greatly improving the cooling efficiency of the device and its working efficiency during use. Furthermore, a water collection plate is installed above the water tank to collect water from the surface into the water tank, realizing the reuse of water resources and thus greatly saving water resources, thereby greatly improving the practicality of the device during use.
[0015] 2. This utility model has an adjustment structure inside the mounting cavity. By utilizing the cooperation between the fixed cavity of the adjustment structure, the servo motor, the driving wheel, the transmission frame, the transmission rack, the driven gear, the limiting rod and the limiting sleeve, the angle of the nozzle can be adjusted when spraying water for cooling. This makes the nozzle spray a wider range and the cooling effect better, thereby greatly improving the practicality of the device in use. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the overall structure of this utility model.
[0017] Figure 2 This is a schematic diagram of the overall structure of the water-cooling structure of this utility model.
[0018] Figure 3 This is a cross-sectional schematic diagram of the adjustment structure of this utility model.
[0019] The components include: 1. Mounting bracket; 2. Rotating shaft; 3. Fixing bracket; 4. First fan; 5. Second fan; 6. Mounting cavity; 7. Water pipe; 8. Spray head; 9. Water pump; 10. Water storage tank; 11. Cooler; 12. Conveyor wheel; 13. Plastic sleeve; 14. Water collection plate; 15. Fixing cavity; 16. Servo motor; 17. Drive wheel; 18. Transmission frame; 19. Transmission rack; 20. Driven gear; 21. Limiting rod; 22. Limiting sleeve. Detailed Implementation
[0020] To deepen the understanding of this utility model, the following detailed description will be provided in conjunction with embodiments. These embodiments are only used to explain this utility model and do not constitute a limitation on the scope of protection of this utility model.
[0021] according to Figure 1-3As shown, this embodiment proposes an automatic cooling device for insulated tempered glass, including a mounting frame 1, a rotating shaft 2, and a cooling device. A rotating shaft 2 is installed between two mounting frames 1. A conveying wheel 12 is installed on the outer wall of the rotating shaft 2. A plastic sleeve 13 is provided on the outer wall of the conveying wheel 12. A cooling device is provided above the mounting frame 1. The cooling device includes an air-cooling structure and a water-cooling structure. The air-cooling structure and the water-cooling structure dissipate heat from the insulated tempered glass. A water-cooling structure is installed on the left side above the mounting frame 1, and an air-cooling structure is installed on the right side above the mounting frame 1. In use, the use of the plastic sleeve 13 can protect the insulated tempered glass, making it less likely to be damaged during transportation.
[0022] The air-cooling structure includes a fixed frame 3, a first fan 4, and a second fan 5. The fixed frame 3 is installed above the mounting frame 1. The first fan 4 is installed inside the fixed frame 3, and the second fan 5 is installed inside the mounting frame 1. When in use, the first fan 4 and the second fan 5 are started to cool the insulated tempered glass.
[0023] The water-cooling structure includes an installation cavity 6, water pipes 7, nozzles 8, a water pump 9, a water tank 10, a cooler 11, and an adjustment structure. The installation cavity 6 is mounted above and below the mounting frame 1. Water pipes 7 are rotatably connected inside the installation cavity 6, and multiple nozzles 8 are installed at one end of each water pipe. The water tank 10 is installed below the mounting frame 1, and the cooler 11 is installed inside the water tank 10. A water pump 9 is installed on one side of the water tank 10, with one end connected to one end of the water tank 10 via a pipe, and the other end connected to the water pipe 7 via a flexible hose. A water collection plate 14 is installed above the water tank 10. The water source... The water is collected and used through the collection plate 14. When in use, the cooler 11 is turned on to cool the water inside the water tank 10, and then the water pump 9 is turned on to transport the water inside the water tank 10 to the water pipe 7. Then, the water is sprayed onto the hollow tempered glass through the nozzle 8 to cool the hollow tempered glass, which greatly improves the cooling efficiency of the device and also improves the working efficiency of the device when in use. Moreover, the collection plate 14 is set above the water tank 10, and the water is collected into the water tank 10 by the collection plate 14, realizing the reuse of water source, thereby greatly saving water resources and greatly improving the practicality of the device when in use.
[0024] The adjustment structure includes a fixed cavity 15, a servo motor 16, a drive wheel 17, a transmission frame 18, a transmission rack 19, a driven gear 20, and a limiting structure. The fixed cavity 15 is installed on one side inside the mounting cavity 6. The servo motor 16 is installed at the front end of the fixed cavity 15, and a waterproof housing is provided on the outer wall of the servo motor 16. The drive wheel 17 is installed inside the fixed cavity 15, and the output end of the servo motor 16 is connected to one end of the drive wheel 17. The transmission frame 18 is provided on the outer wall of the drive wheel 17. The drive wheel 17 has a half-gear design. Transmission teeth are provided at the top and bottom of the transmission frame 18. The drive wheel 17 and the transmission frame 18 mesh with each other. The top of the transmission frame 18 is fitted with... Equipped with a transmission rack 19, above which meshes a driven gear 20, one end of the driven gear 20 is connected to one end of the water pipe 7. In use, the servo motor 16 is started to drive the drive wheel 17 to rotate. Thus, under the limitation of the limit rod 21 and the limit sleeve 22, the drive wheel 17 drives the transmission frame 18 to move, which in turn drives the transmission rack 19 to move left and right. Since the transmission rack 19 and the driven gear 20 mesh with each other, the driven gear 20 drives the water pipe 7 to rotate left and right, which in turn drives the nozzle 8 to swing left and right, so as to spray water to cool the hollow tempered glass. This makes the spray range of the nozzle 8 larger and the cooling effect better, thus greatly improving the practicality of the device in use.
[0025] The limiting structure includes a limiting rod 21 and a limiting sleeve 22. The limiting rod 21 is installed at the bottom inside the fixed cavity 15. The limiting sleeve 22 is provided on the outer side wall of the limiting rod 21. The top end of the limiting sleeve 22 is connected to the bottom end of the transmission frame 18. The outer diameter of the limiting rod 21 is larger than the inner diameter of the limiting sleeve 22. The limiting rod 21 and the limiting sleeve 22 form a sliding structure. In use, the mutual cooperation between the limiting rod 21 and the limiting sleeve 22 can limit the movement of the transmission frame 18, making the transmission frame 18 more stable when moving.
[0026] Multiple rotating shafts 2 are provided on the inner side of the mounting frame 1. The multiple rotating shafts 2 are distributed at equal intervals on the inner side of the mounting frame 1. The use of multiple rotating shafts 2 makes the hollow tempered glass more stable during transportation.
[0027] In use, the operator first places the insulated tempered glass on the outside of the plastic sleeve 13 on the 2nd floor. Then, using the cooperation of the 2nd floor, the conveying wheel 12, and the plastic sleeve 13, the insulated tempered glass is conveyed to the bottom of the installation cavity 6. Then, the cooler 11 is started to cool the water in the water tank 10. Then, the water pump 9 is started to transport the water in the water tank 10 to the inside of the water pipe 7, and then sprayed onto the insulated tempered glass through the nozzle 8. The servo motor 16 is started to drive the drive wheel 17 to rotate. Therefore, under the limit of the limit rod 21 and the limit sleeve 22, The drive wheel 17 drives the transmission frame 18 to move, which in turn drives the transmission rack 19 to move left and right. Since the transmission rack 19 and the driven gear 20 mesh with each other, the driven gear 20 drives the water pipe 7 to rotate left and right, which in turn drives the nozzle 8 to swing left and right, so as to spray water to cool the hollow tempered glass. The sprayed water is collected by the water collection plate 14 and returned to the inside of the water storage tank 10. Then the hollow tempered glass is transported to the bottom of the fixed frame 3. The first fan 4 and the second fan 5 are started to cool the top and bottom of the hollow tempered glass.
[0028] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. An automatic cooling device for insulating tempered glass, comprising a mounting frame (1), a rotating shaft (2), and a cooling device, characterized in that: A rotating shaft (2) is installed between the two mounting brackets (1). A conveyor wheel (12) is installed on the outer wall of the rotating shaft (2). A plastic sleeve (13) is provided on the outer wall of the conveyor wheel (12). A cooling device is provided above the mounting bracket (1). The cooling device includes an air-cooled structure and a water-cooled structure. The air-cooled structure and the water-cooled structure dissipate heat from the hollow tempered glass. A water-cooled structure is installed on the left side above the mounting bracket (1), and an air-cooled structure is installed on the right side above the mounting bracket (1). The air-cooled structure includes a fixed frame (3), a first fan (4) and a second fan (5). The fixed frame (3) is installed above the mounting frame (1). The first fan (4) is installed inside the fixed frame (3), and the second fan (5) is installed inside the mounting frame (1). The water-cooled structure includes an installation cavity (6), a water pipe (7), a nozzle (8), a water pump (9), a water tank (10), a cooler (11), and an adjustment structure. The installation cavity (6) is installed above and below the mounting frame (1). The water pipe (7) is rotatably connected inside the installation cavity (6). Multiple nozzles (8) are provided at one end of the water pipe (7). The water tank (10) is installed below the mounting frame (1). The cooler (11) is installed inside the water tank (10). The water pump (9) is provided on one side of the water tank (10). One end of the water pump (9) is connected to one end of the water tank (10) through a pipe. The other end of the water pump (9) is connected to the water pipe (7) through a hose.
2. The automatic cooling device for insulating tempered glass according to claim 1, characterized in that: A water collection plate (14) is installed above the water storage tank (10), and the water source is collected and used through the water collection plate (14).
3. The automatic cooling device for insulating tempered glass according to claim 1, characterized in that: The adjustment structure includes a fixed cavity (15), a servo motor (16), a drive wheel (17), a transmission frame (18), a transmission rack (19), a driven gear (20), and a limiting structure. The fixed cavity (15) is installed on one side inside the mounting cavity (6). The servo motor (16) is installed at the front end of the fixed cavity (15). The outer wall of the servo motor (16) is provided with a waterproof housing. The drive wheel (17) is installed inside the fixed cavity (15). The output end of the servo motor (16) is connected to the drive wheel. One end of the wheel (17) is connected, and a transmission frame (18) is provided on the outer side wall of the driving wheel (17). The driving wheel (17) is designed as a half gear. Transmission teeth are provided on the upper and lower sides of the transmission frame (18). The driving wheel (17) and the transmission frame (18) mesh with each other. A transmission rack (19) is installed on the top of the transmission frame (18). A driven gear (20) meshes on the upper side of the transmission rack (19). One end of the driven gear (20) is connected to one end of the water pipe (7).
4. The automatic cooling device for insulating tempered glass according to claim 3, characterized in that: The limiting structure includes a limiting rod (21) and a limiting sleeve (22). The limiting rod (21) is installed at the bottom of the fixed cavity (15). The outer side wall of the limiting rod (21) is provided with a limiting sleeve (22). The top end of the limiting sleeve (22) is connected to the bottom end of the transmission frame (18).
5. An automatic cooling device for insulating tempered glass according to claim 4, characterized in that: The outer diameter of the limiting rod (21) is larger than the inner diameter of the limiting sleeve (22), and the limiting rod (21) and the limiting sleeve (22) form a sliding structure.
6. The automatic cooling device for insulating tempered glass according to claim 1, characterized in that: Multiple rotating shafts (2) are provided on the inner side of the mounting frame (1), and the multiple rotating shafts (2) are distributed at equal intervals on the inner side of the mounting frame (1).