Auxiliary cooling equipment for glass ceramic piece

By designing a microcrystalline glass parts auxiliary cooling equipment including U-shaped seat, heat dissipation fan, water pump and water spray components, the problems of slow cooling and large waste of heat energy in existing equipment are solved, and rapid cooling and efficient production of microcrystalline glass parts are achieved.

CN222978443UActive Publication Date: 2025-06-13JIANGSU HESHAN TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422175773.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-05
Publication Date
2025-06-13
Estimated Expiration
2034-09-05

AI Technical Summary

Technical Problem

The existing microcrystalline glass parts auxiliary cooling equipment is slower when initially cooling, resulting in low production efficiency and a lot of waste of heat energy.

Method used

A microcrystalline glass-piece auxiliary cooling device is designed, adopting a first U-shaped seat, a second water pipe, a heat dissipation fan, a first water pump, a heat exchange assembly and a water spray assembly, and initial cooling is achieved by dispersing the water flow through the roller, and a conveyor belt and a nozzle are used to achieve rapid water spray cooling.

Benefits of technology

It realizes rapid cooling of microcrystalline glass parts, reduces heat energy waste, and improves production efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses auxiliary cooling equipment for a glass-ceramic piece, which relates to the technical field of glass-ceramic piece processing and comprises a first U-shaped seat and a second water delivery pipe, a second U-shaped seat is fixed at the top of the first U-shaped seat, a plurality of cooling fans are fixedly mounted at the top of the second U-shaped seat and are linearly arranged from left to right, and the second water delivery pipe is connected with the second U-shaped seat. A supporting plate is fixed to the front side of the first U-shaped base, a first water pump is arranged at the top of the supporting plate, and a water inlet of the first water pump fixedly communicates with a water diversion pipe. Urban supplied water is fed into the first water conveying pipe through the first water pump, water is dispersed through the multiple rollers, so that when glass ceramic pieces pass through the rollers, preliminary cooling can be conducted through the water flowing in the rollers, the heated water is gathered into the second water conveying pipe to be guided out in a centralized mode, and the water can be supplied to life of workers for use; the heat energy is recycled and reused in the preparation process of the microcrystalline glass piece to a certain extent.
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Description

Technical Field

[0001] The utility model relates to the technical field of machined glass-ceramics, in particular to an auxiliary cooling device for glass-ceramics parts. Background Art

[0002] Glass-ceramics, also known as glass ceramics and microcrystalline ceramics, are a kind of polycrystalline solid-phase material containing glassy body, which are prepared by subjecting a base glass with certain specific compositions to controlled nucleation and crystallization at a certain temperature. The properties of glass-ceramics are mainly determined by the main crystal phase, and the main crystal phase can be achieved by controlling nucleation, crystallization and selecting different parent glass components. Glass-ceramics have the characteristics of both glass and ceramics, and are superior to metals and polymers in terms of thermal, chemical, biological, optical and electrical properties.

[0003] When manufacturing glass-ceramics parts, it is necessary to use a cooling device to help them cool down, so as to improve the production efficiency of glass-ceramics parts. When the common auxiliary cooling device for glass-ceramics parts is in use, a blower is first used to help it cool down initially, and then the way of spraying water is used to help the glass-ceramics parts complete the final cooling. This way will cause a large amount of waste of heat energy, and when the blower cools down the glass-ceramics parts initially, the cooling speed of the glass-ceramics parts is slow and the time used is long, which is not conducive to the rapid processing of glass-ceramics parts. Summary of the Utility Model

[0004] The purpose of this application is to provide an auxiliary cooling device for glass-ceramics parts to solve the problems in the above-mentioned background art that when the existing auxiliary cooling device for glass-ceramics parts is in use, a blower is first used to help it cool down initially, and then the way of spraying water is used to help the glass-ceramics parts complete the final cooling. This way will cause a large amount of waste of heat energy, and when the blower cools down the glass-ceramics parts initially, the cooling speed of the glass-ceramics parts is slow and the time used is long, which is not conducive to the rapid processing of glass-ceramics parts.

[0005] To achieve the above purpose, this application provides the following technical solution: An auxiliary cooling device for glass-ceramics parts, including a first U-shaped seat and a second water pipe. A second U-shaped seat is fixed on the top of the first U-shaped seat. A plurality of heat dissipation fans are fixedly installed on the top of the second U-shaped seat. The plurality of heat dissipation fans are linearly arranged from left to right. A support plate is fixed on the front side of the first U-shaped seat. A first water pump is arranged on the top of the support plate. The water inlet of the first water pump is fixedly communicated with a water inlet pipe. The water outlet of the first water pump is fixedly communicated with a first water pipe. Sealing caps are fixed on the left ends of the first water pipe and the second water pipe. A plurality of heat exchange components are arranged between the first water pipe and the second water pipe. The plurality of heat exchange components are linearly arranged from left to right, and the height of the leftmost heat exchange component is higher than that of the rightmost heat exchange component. A water spraying component is arranged on the right side of the first U-shaped seat, and the water spraying component is used for cooling the glass-ceramics parts.

[0006] Further, the heat exchange component includes a roller, end plates are fixed to both ends of the roller, a first fixed pipe is fixedly penetrated through the middle of the end plate, a rotary joint is arranged at the outer end of the first fixed pipe, a second fixed pipe is arranged at the other end of the rotary joint, the front second fixed pipe is communicated with the first water delivery pipe, and the rear second fixed pipe is communicated with the second water delivery pipe.

[0007] Further, the water spraying component includes a water tank, the water tank is fixedly installed on the right side of the first U-shaped seat, two transmission rollers are rotatably connected between the front and rear inner walls of the water tank through bearings, and a conveyor belt is sleeved outside the two transmission rollers.

[0008] Further, a driving motor is arranged on the back of the water tank, and the left transmission roller is driven by the driving motor.

[0009] Further, a third U-shaped seat is fixed to the top of the water tank, a second water pump is arranged inside the water tank, two fixing blocks are fixed to the top of the third U-shaped seat, and a transfer pipe is fixed between the two fixing blocks.

[0010] Further, a plurality of water delivery pipes are fixedly penetrated through the bottom of the transfer pipe, the plurality of water delivery pipes are linearly arranged from left to right, and the bottom ends of the water delivery pipes pass through the third U-shaped seat and are connected with spray heads.

[0011] Further, the water outlet of the second water pump is fixedly communicated with a third water delivery pipe, and the other end of the third water delivery pipe is communicated with the transfer pipe.

[0012] In summary, the technical effects and advantages of the present utility model are as follows:

[0013] 1. In the present utility model, the urban water supply is sent into the first water delivery pipe by using the first water pump, and the water is dispersed by a plurality of rollers, so that when the microcrystalline glass part passes through the roller, the water flowing inside the roller can be used to perform preliminary cooling on the microcrystalline glass part. The heated water converges into the second water delivery pipe and is centrally exported, which can be supplied for workers' living use, and to a certain extent, the heat energy in the preparation process of the microcrystalline glass part is recovered and reused.

[0014] 2. In the present utility model, the driving motor is used to drive the conveyor belt to drive, and the preliminarily cooled microcrystalline glass part is moved into the third U-shaped seat by means of the conveyor belt. The second water pump is used to pump the water inside the water tank into the transfer pipe, and the water is sprayed out along the spray heads and sprinkled on the microcrystalline glass part to help the microcrystalline glass part cool down. Part of the water vapor gasified after contacting the microcrystalline glass part converges on the top inside the third U-shaped seat, and can be re-liquefied and flow back into the water tank after being cooled, reducing the waste of water when the microcrystalline glass part is cooled. Description of the Drawings

[0015] To more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the drawings required for use in the embodiments or the prior description.

[0016] Figure 1 Schematic perspective view of an auxiliary cooling device for a glass-ceramics part in an embodiment of the present application;

[0017] Figure 2 Position relationship diagram of the first U-shaped seat, the first water pump, the first water delivery pipe, and the second water delivery pipe in an embodiment of the present application;

[0018] Figure 3 Position relationship diagram of the first water delivery pipe, the second water delivery pipe, and the heat exchange component in an embodiment of the present application;

[0019] Figure 4 Schematic perspective view of the water spraying component in an embodiment of the present application;

[0020] Figure 5 Partial structure schematic diagram of the water spraying component in an embodiment of the present application.

[0021] In the figure: 1. First U-shaped seat; 2. Second U-shaped seat; 3. Heat dissipation fan; 4. Support plate; 5. Water guiding pipe; 6. First water pump; 7. First water delivery pipe; 8. Second water delivery pipe; 9. Sealing cover; 10. Roller; 11. End plate; 12. First fixed pipe; 13. Rotary joint; 14. Second fixed pipe; 15. Water tank; 16. Driving roller; 17. Conveyor belt; 18. Driving motor; 19. Third U-shaped seat; 20. Second water pump; 21. Fixed block; 22. Transfer pipe; 23. Water supply pipe; 24. Nozzle; 25. Third water delivery pipe. Detailed implementation manners

[0022] The following will clearly and completely describe the technical solutions in the embodiments of the present utility model with reference to the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all of the embodiments.

[0023] Embodiment: Refer to Figures 1-5An auxiliary cooling device for a glass-ceramics part is shown, which includes a first U-shaped seat 1 and a second water pipe 8. A second U-shaped seat 2 is fixed on the top of the first U-shaped seat 1, and a plurality of heat dissipation fans 3 are fixedly installed on the top of the second U-shaped seat 2. The plurality of heat dissipation fans 3 are linearly arranged from left to right. With the help of the plurality of heat dissipation fans 3, the initial heat dissipation speed of the glass-ceramics part can be accelerated. A support plate 4 is fixed on the front side of the first U-shaped seat 1. A first water pump 6 is arranged on the top of the support plate 4. The water inlet of the first water pump 6 is fixedly communicated with a water inlet pipe 5, and the water outlet of the first water pump 6 is fixedly communicated with a first water pipe 7. Sealing caps 9 are fixed at the left ends of the first water pipe 7 and the second water pipe 8 respectively, and a plurality of heat exchange components are arranged between the first water pipe 7 and the second water pipe 8. The plurality of heat exchange components are linearly arranged from left to right, and the height of the leftmost heat exchange component is higher than that of the rightmost heat exchange component. A water spraying component is arranged on the right side of the first U-shaped seat 1, and the water spraying component is used for cooling the glass-ceramics part;

[0024] The heat exchange component includes a roller 10. End plates 11 are fixed at both ends of the roller 10. A first fixed pipe 12 is fixedly penetrated through the middle of the end plate 11. A rotary joint 13 is arranged at the outer end of the first fixed pipe 12. A second fixed pipe 14 is arranged at the other end of the rotary joint 13. The front second fixed pipe 14 is communicated with the first water pipe 7, and the rear second fixed pipe 14 is communicated with the second water pipe 8.

[0025] The first water pump 6 is used to send urban water supply into the first water pipe 7. The water is dispersed by a plurality of rollers 10, so that when the glass-ceramics part passes through the roller 10, the water flowing inside the roller 10 can be used for preliminary cooling. The heated water converges into the second water pipe 8 and is centrally exported, which can be supplied for workers' daily life. The first fixed pipe 12 and the second fixed pipe 14 are connected by a rotary joint 13, so that the rotation of the roller 10 will not affect the normal heat exchange of water.

[0026] Among them, the water spraying component includes a water tank 15. The water tank 15 is fixedly installed on the right side of the first U-shaped seat 1. Two transmission rollers 16 are rotatably connected between the front and rear inner walls of the water tank 15 through bearings. A conveyor belt 17 is sleeved outside the two transmission rollers 16. A driving motor 18 is arranged on the back of the water tank 15. The left transmission roller 16 is driven by the driving motor 18. A third U-shaped seat 19 is fixed on the top of the water tank 15. A second water pump 20 is arranged inside the water tank 15. Two fixing blocks 21 are fixed on the top of the third U-shaped seat 19. A transfer pipe 22 is fixed between the two fixing blocks 21. A plurality of water supply pipes 23 are fixedly penetrated through the bottom of the transfer pipe 22. The plurality of water supply pipes 23 are linearly arranged from left to right. The bottom end of the water supply pipe 23 passes through the third U-shaped seat 19 and is connected with a spray head 24. The water outlet of the second water pump 20 is fixedly communicated with a third water pipe 25, and the other end of the third water pipe 25 is communicated with the transfer pipe 22.

[0027] The driving motor 18 is used to drive the conveyor belt 17 to move, and the conveyor belt 17 is used to drive the preliminarily cooled glass-ceramics into the interior of the third U-shaped seat 19. The second water pump 20 is used to transport the water in the water tank 15 into the transfer pipe 22, and make it spray out along the nozzle 24, sprinkle on the glass-ceramics to help the glass-ceramics cool down. Part of the water vapor that vaporizes after contacting the glass-ceramics converges at the top inside the third U-shaped seat 19, and can be re-liquefied and flow back into the water tank 15 after cooling down.

[0028] The working principle of this utility model is as follows:

[0029] The prepared glass-ceramics are hoisted to the location where multiple rollers 10 are located. Since the multiple rollers 10 are linearly arranged and the height of the leftmost roller 10 is higher than that of the rightmost roller 10, the glass-ceramics can slowly slide down by relying on their own gravity with the help of the multiple rollers 10. Connect the water inlet pipe 5 to the urban water supply pipe, use the first water pump 6 to send the urban water supply into the first water delivery pipe 7, and disperse the water by means of the multiple rollers 10, so that when the glass-ceramics pass through the rollers 10, they can be preliminarily cooled by the water flowing inside the rollers 10. The heated water converges into the second water delivery pipe 8 and is centrally discharged, stored in the water storage tank for the workers' daily use. During this process, control the operation of multiple cooling fans 3, so that the cooling fans 3 cooperate with the water flowing inside the rollers 10 to help the glass-ceramics complete the preliminary cooling;

[0030] The preliminarily cooled glass-ceramics fall onto the conveyor belt 17. Control the driving motor 18 to drive the conveyor belt 17 to move, and the conveyor belt 17 is used to drive the preliminarily cooled glass-ceramics into the interior of the third U-shaped seat 19. The second water pump 20 is used to transport the water in the water tank 15 into the transfer pipe 22, and make it spray out along the nozzle 24, sprinkle on the glass-ceramics to help the glass-ceramics cool down. Part of the water vapor that vaporizes after contacting the glass-ceramics converges at the top inside the third U-shaped seat 19, and can be re-liquefied and flow back into the water tank 15 after encountering cold air. The glass-ceramics after being cooled by spraying water are quickly cooled and can be centrally stored after being taken off by the workers.

[0031] Finally, it should be noted that the above are only the preferred embodiments of the present utility model and are not used to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present utility model shall be included in the protection scope of the present utility model.

Claims

1. A glass-ceramic auxiliary cooling device, comprising a first U-shaped seat (1) and a second water pipe (8), characterized in that: A second U-shaped seat (2) is fixed on the top of the first U-shaped seat (1), and a plurality of heat dissipation fans (3) are fixedly installed on the top of the second U-shaped seat (2), and the plurality of heat dissipation fans (3) are arranged linearly from left to right. A support plate (4) is fixed on the front side of the first U-shaped seat (1), and a first water pump (6) is arranged on the top of the support plate (4). The water inlet of the first water pump (6) is fixedly connected to a water diversion pipe (5), and the water outlet of the first water pump (6) is fixedly connected to a first water delivery pipe (7). The left end of the first water delivery pipe (7) and the left end of the second water delivery pipe (8) are both fixed with sealing covers (9), and a plurality of heat exchange components are arranged between the first water delivery pipe (7) and the second water delivery pipe (8), and the plurality of heat exchange components are arranged linearly from left to right, and the height of the leftmost heat exchange component is higher than the height of the rightmost heat exchange component. A water spray component is arranged on the right side of the first U-shaped seat (1), and the water spray component is used to cool the microcrystalline glass component.

2. The auxiliary cooling device for glass-ceramic parts according to claim 1, characterized in that: The heat exchange assembly comprises a roller (10), both ends of the roller (10) are fixed with end plates (11), a first fixed pipe (12) is fixed through the middle of the end plate (11), a rotary joint (13) is provided at the outer end of the first fixed pipe (12), a second fixed pipe (14) is provided at the other end of the rotary joint (13), the second fixed pipe (14) at the front side is connected to the first water pipe (7), and the second fixed pipe (14) at the rear side is connected to the second water pipe (8).

3. The auxiliary cooling device for glass-ceramic parts according to claim 1, characterized in that: The water spray assembly comprises a water tank (15), the water tank (15) is fixedly mounted on the right side of the first U-shaped seat (1), two transmission rollers (16) are rotatably connected between the front and rear inner walls of the water tank (15) via bearings, and a conveyor belt (17) is sleeved on the outside of the two transmission rollers (16).

4. The glass-ceramic auxiliary cooling device according to claim 3, characterized in that: A driving motor (18) is arranged at the back of the water tank (15), and the transmission roller (16) on the left side is driven by the driving motor (18).

5. The glass-ceramic auxiliary cooling device according to claim 3, characterized in that: A third U-shaped seat (19) is fixed on the top of the water tank (15), a second water pump (20) is arranged inside the water tank (15), two fixing blocks (21) are fixed on the top of the third U-shaped seat (19), and a transfer pipe (22) is fixed between the two fixing blocks (21).

6. The auxiliary cooling device for glass-ceramic parts according to claim 5, characterized in that: A plurality of water supply pipes (23) are fixedly passed through the bottom of the transfer pipe (22), and the plurality of water supply pipes (23) are linearly arranged from left to right. The bottom end of the water supply pipe (23) passes through the third U-shaped seat (19) and is connected to a spray head (24).

7. The auxiliary cooling device for glass-ceramic parts according to claim 5, characterized in that: The water outlet of the second water pump (20) is fixedly connected to a third water delivery pipe (25), and the other end of the third water delivery pipe (25) is connected to the transfer pipe (22).