Multi-curved-surface glass tempering cooling device
By designing a multi-curved glass tempering cooling device, the problem of heat waste in the cooling device is solved by using a recycling mechanism and a conveying mechanism to reuse the cooled hot air, thus achieving efficient energy utilization.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-30
- Publication Date
- 2026-03-13
AI Technical Summary
Existing glass tempering cooling devices fail to effectively utilize the heat carried away by the cooling air, resulting in energy waste.
A multi-curved glass tempering cooling device is designed. The device uses a recycling mechanism to draw the cooled hot air, which still contains heat, to the exhaust pipe and then to the heating device for reuse. By combining the conveying mechanism and the cooling mechanism, the device ensures that all parts of the glass are cooled evenly and that the heat is reused.
This enables the reuse of heat, improves energy efficiency, and reduces energy waste.
Smart Images

Figure CN223991051U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of glass tempering and cooling technology, specifically to a multi-curved glass tempering and cooling device. Background Technology
[0002] In the tempered glass processing, the glass is heated until it softens and then cooled by blowing air. The cooling effect is one of the main factors affecting the quality of tempered glass. The ideal state of cooling is to allow all parts of the glass to be processed to be cooled simultaneously and evenly.
[0003] In the prior art, such as the Chinese patent with publication number CN215667710U entitled "A Cooling Air Grille for a Hyperbolic Tempering Furnace," the disclosed technical solution describes that the device has an upper support frame inside the fixed frame, with multiple sets of fixing blocks A on the upper support frame, and multiple air ducts below each fixing block A. The fixed frame also has a lower support frame inside the fixed frame, with multiple sets of fixing blocks B on the lower support frame, and multiple air ducts above each fixing block B. By replacing the original integral air grille with spliced fixing blocks, only the fixing blocks of key parts can be replaced according to the needs of production, reducing the weight of the air grille that needs to be replaced and improving production efficiency. However, during the cooling of glass tempering, the cooling air blown out by the air grille takes away the heat of the glass after contacting the tempered glass, turning into hot air. The existing device does not utilize this heat, which leads to energy waste. Utility Model Content
[0004] This invention provides a multi-curved glass tempering and cooling device to solve the above-mentioned problems.
[0005] This utility model adopts the following technical solution: a multi-curved glass tempering cooling device, including a cooling box, a recovery mechanism, a conveying mechanism, and a cooling mechanism; the recovery mechanism includes an exhaust fan and an exhaust pipe, a support is fixedly installed at the lower end of the cooling box, an exhaust port is opened on the side wall of the cooling box, the exhaust fan is rotatably installed in the exhaust port, the exhaust pipe is fixedly installed on the side wall of the cooling box, one end of the exhaust pipe is fixedly connected to the exhaust port, and the other end is connected to the heating device of the tempered glass; the conveying mechanism is located in the cooling box and is used to convey the tempered glass; the cooling mechanism is located in the cooling box and is used to cool the tempered glass; the conveying mechanism conveys the heated tempered glass to the cooling box, and the cooling mechanism cools the heated tempered glass; the hot air with heat after cooling is retained in the cooling box, the exhaust fan is started to draw the hot air in the cooling box to the exhaust pipe, and the hot air is conveyed to the heating device through the exhaust pipe for reuse, realizing the reuse of heat and improving energy utilization.
[0006] Furthermore, the conveying mechanism includes a guide rail, a rotating shaft, and a conveyor belt. The guide rail is fixedly installed on the inner wall of the cooling box, the rotating shaft is rotatably installed in the guide rail, and the conveyor belt is sleeved on the rotating shaft. The cooling box is equipped with a drive assembly, which includes a first gear, a second gear, and a drive motor. The first gear is fixedly installed on the rotating shaft, the drive motor is fixedly installed on the cooling box, and the second gear is fixedly installed on the output shaft of the drive motor. The first gear and the second gear mesh. The drive motor drives the rotating shaft to rotate through the meshing of the first gear and the second gear, and the rotating shaft drives the conveyor belt to rotate, conveying the heated tempered glass into the cooling box.
[0007] Furthermore, the cooling mechanism includes a bellows, nozzles, and a fan. The cooling box has a connecting hole, and the fan is fixedly installed in the connecting hole. The bellows are fixedly installed in the cooling box. Multiple nozzles are evenly distributed at one end of the bellows, and the nozzles and the bellows are slidably connected. The end of the bellows away from the nozzles is connected to the fan. The fan delivers cold air to the bellows, and then blows it out through the nozzles to cool the heated tempered glass. The multiple nozzles are slidably connected to the bellows, and the vertical position of the nozzles can be adjusted according to the shape of the tempered glass to fit a curved surface that matches the shape of the tempered glass surface, so that all parts of the tempered glass can be cooled simultaneously and evenly.
[0008] The beneficial effects are: the cooling air sprayed from the nozzle cools the tempered glass and becomes hot air with heat. The hot air is drawn into the exhaust duct by the exhaust fan and then transported to the heating device through the exhaust duct, realizing the recycling of heat, improving the heat utilization rate, thereby improving the energy utilization rate and reducing energy waste. Attached Figure Description
[0009] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0010] Figure 1 This is a schematic diagram of an embodiment of the multi-curved glass tempering and cooling device of this utility model;
[0011] Figure 2 This is a cross-sectional view of the cooling box according to an embodiment of the present invention;
[0012] Figure 3 This is a schematic diagram of the cooling mechanism according to an embodiment of the present invention;
[0013] Figure 4 for Figure 1 Enlarged view of point A in the middle.
[0014] In the diagram: 100, cooling box; 110, guide rail; 120, rotating shaft; 130, conveyor belt; 140, first gear; 150, second gear; 160, drive motor; 170, support; 200, exhaust port; 210, exhaust fan; 220, exhaust duct; 300, connecting hole; 310, air box; 320, air nozzle; 330, fan. Detailed Implementation
[0015] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.
[0016] An embodiment of the multi-curved surface glass tempering cooling device of this utility model is as follows: Figures 1 to 4 As shown: A multi-curved glass tempering and cooling device includes a cooling box 100, a recovery mechanism, a conveying mechanism, and a cooling mechanism; the recovery mechanism includes an exhaust fan 210 and an exhaust pipe 220. A support 170 is fixedly installed at the lower end of the cooling box 100, and an exhaust port 200 is opened on the side wall of the cooling box 100. The exhaust fan 210 is rotatably installed in the exhaust port 200, and the exhaust pipe 220 is fixedly installed on the side wall of the cooling box 100. One end of the exhaust pipe 220 is fixedly connected to the exhaust port 200, and the other end is connected to the heating device of the tempered glass; the conveying mechanism is located in the cooling box 100. In the cooling box 100, a conveying mechanism is used to convey tempered glass; a cooling mechanism is located in the cooling box 100 and is used to cool the tempered glass; the conveying mechanism conveys the heated tempered glass to the cooling box 100, and the cooling mechanism cools the heated tempered glass; the hot air with heat after cooling is retained in the cooling box 100, and the exhaust fan 210 is started to draw the hot air in the cooling box 100 to the exhaust pipe 220. The hot air is then transferred to the heating device through the exhaust pipe 220 for reuse, realizing the reuse of heat and improving energy utilization.
[0017] The conveying mechanism includes a guide rail 110, a rotating shaft 120, and a conveyor belt 130. The guide rail 110 is fixedly installed on the inner wall of the cooling box 100, the rotating shaft 120 is rotatably installed in the guide rail 110, and the conveyor belt 130 is sleeved on the rotating shaft 120. The cooling box 100 is provided with a drive assembly, which includes a first gear 140, a second gear 150, and a drive motor 160. The first gear 140 is fixedly installed on the rotating shaft 120, the drive motor 160 is fixedly installed on the cooling box 100, and the second gear 150 is fixedly installed on the output shaft of the drive motor 160. The first gear 140 and the second gear 150 mesh. The drive motor 160 drives the rotating shaft 120 to rotate through the meshing of the first gear 140 and the second gear 150. The rotating shaft 120 drives the conveyor belt 130 to rotate, conveying the heated tempered glass into the cooling box 100.
[0018] The cooling mechanism includes a bellows 310, nozzles 320, and a fan 330. A connecting hole 300 is provided on the cooling box 100. The fan 330 is fixedly installed in the connecting hole 300. The bellows 310 is fixedly installed in the cooling box 100. Multiple nozzles 320 are provided and are evenly distributed at one end of the bellows 310. The nozzles 320 and the bellows 310 are slidably connected. The end of the bellows 310 away from the nozzles 320 is connected to the fan 330. The fan 330 delivers cold air to the bellows 310 and then blows it out through the nozzles 320 to cool the heated tempered glass. The multiple nozzles 320 are slidably connected to the bellows 310. The vertical position of the nozzles 320 can be adjusted according to the shape of the tempered glass to fit a curved surface that matches the shape of the tempered glass surface, so that all parts of the tempered glass can be cooled simultaneously and evenly.
[0019] Based on the above embodiments, the working principle and process of this utility model are as follows: The drive motor 160 drives the rotating shaft 120 to rotate through the meshing of the first gear 140 and the second gear 150. The rotating shaft 120 drives the conveyor belt 130 to rotate, conveying the heated tempered glass to the cooling box 100. The fan 330 delivers cold air to the air box 310, and then blows it out through the nozzles 320 to cool the heated tempered glass. Multiple nozzles 320 are slidably connected to the air box 310. The up and down positions of the nozzles 320 can be adjusted according to the shape of the tempered glass, thereby fitting a curved surface that matches the shape of the tempered glass surface, so that all parts of the tempered glass can be cooled simultaneously and evenly. The hot air with heat after cooling is retained in the cooling box 100. The exhaust fan 210 is started to draw the hot air in the cooling box 100 to the exhaust pipe 220. The hot air is transferred to the heating device through the exhaust pipe 220 for reuse, realizing the reuse of heat and improving energy utilization.
[0020] The above description is only a preferred embodiment of the present utility model and is 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 should be included within the protection scope of the present utility model.
Claims
1. A multi-faceted glass strengthening cooling apparatus, characterized by: The cooling box (100), the recycling mechanism, the conveying mechanism and the cooling mechanism are included. The recycling mechanism includes an exhaust fan (210) and an exhaust pipe (220), an exhaust port (200) is formed in the side wall of the cooling box (100), the exhaust fan (210) is rotatably installed in the exhaust port (200), the exhaust pipe (220) is fixedly installed on the side wall of the cooling box (100), one end of the exhaust pipe (220) is fixedly connected with the exhaust port (200), and the other end is communicated to the heating device of the tempered glass. The conveying mechanism is arranged in the cooling box (100) and is used for conveying the tempered glass. The cooling mechanism is arranged in the cooling box (100) and is used for cooling the tempered glass.
2. A multi-faceted glass strengthening cooling apparatus as defined in claim 1, wherein: The conveying mechanism includes a guide rail (110), a rotating shaft (120) and a conveying belt (130), the guide rail (110) is fixedly installed on the inner wall of the cooling box (100), the rotating shaft (120) is rotatably installed in the guide rail (110), and the conveying belt (130) is sleeved on the rotating shaft (120).
3. A multi-faceted glass strengthening cooling apparatus as defined in claim 2, wherein: The cooling mechanism includes a wind box (310), a wind nozzle (320) and a fan (330), the cooling box (100) is provided with a communication hole (300), the fan (330) is fixedly installed in the communication hole (300), the wind box (310) is fixedly installed in the cooling box (100), a plurality of wind nozzles (320) are arranged on one end of the wind box (310), the wind nozzles (320) and the wind box (310) are slidably connected, and the end, away from the wind nozzles (320), of the wind box (310) is communicated with the fan (330).
4. A multi-faceted glass strengthening cooling apparatus as defined in claim 3, wherein: The cooling box (100) is provided with a driving assembly, and the driving assembly is used for driving the conveying mechanism.
5. A multi-faceted glass strengthening cooling apparatus as defined in claim 4, wherein: The driving assembly includes a first gear (140), a second gear (150) and a driving motor (160), the first gear (140) is fixedly installed on the rotating shaft (120), the driving motor (160) is fixedly installed on the cooling box (100), the second gear (150) is fixedly installed on the output shaft of the driving motor (160), and the first gear (140) is engaged with the second gear (150).
6. A multi-faceted glass strengthening cooling apparatus as defined in claim 5, wherein: The lower end of the cooling box (100) is fixedly installed with a support (170).
Citation Information
Patent Citations
Cooling air grid of hyperbolic toughening furnace
CN215667710U