Glass tempering furnace cooling device

The glass tempering furnace cooling device with adjustable heat sink spacing solves the problem of insufficient heat dissipation efficiency or resource waste caused by fixed heat sink spacing, realizes dynamic heat dissipation adjustment according to heat changes, and improves the applicability and lifespan of the equipment.

CN224313423UActive Publication Date: 2026-06-02JIAOZUO YUXIN CHAOTOU GLASS TECH CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
JIAOZUO YUXIN CHAOTOU GLASS TECH CO LTD
Filing Date
2025-06-30
Publication Date
2026-06-02

AI Technical Summary

Technical Problem

The spacing between the heat sinks in existing glass tempering furnaces cannot be adjusted, resulting in insufficient heat dissipation efficiency or waste of resources under different heat conditions, which affects the applicability and lifespan of the equipment.

Method used

A cooling device for a glass tempering furnace with adjustable heat sink spacing was designed. The spacing of the heat sink is dynamically adjusted through the linkage mechanism of the movable rod and the movable plate, and efficient heat dissipation is achieved in combination with the cooling fan.

Benefits of technology

The optimized heat dissipation efficiency reduces thermal stress and product quality issues, improving the applicability and durability of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

This utility model discloses a cooling device for a glass tempering furnace, comprising: a glass tempering furnace body and a heat dissipation frame, the heat dissipation frame being fixed to the middle of the upper surface of the glass tempering furnace body; a heat dissipation assembly, the heat dissipation assembly including a heat dissipation groove, a limiting groove, a heat dissipation plate, a first limiting block and a second limiting block, the heat dissipation groove being opened in the middle of the upper surface of the heat dissipation frame, the limiting groove being opened inside the heat dissipation frame and communicating with each other, one side of the limiting groove completely penetrating the heat dissipation frame, twelve heat dissipation plates being placed at equal intervals in the heat dissipation groove, the first limiting block being fixed to one side of the heat dissipation plate, the second limiting block being fixed to the other side of the heat dissipation plate, and the first limiting block and the second limiting block slidingly passing through the limiting groove. This utility model, by adjusting the spacing of the heat dissipation plates, can dynamically adjust the heat dissipation capacity according to the actual heat distribution and cooling rate requirements, optimize heat dissipation efficiency, and reduce thermal stress and product quality problems.
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Description

Technical Field

[0001] This utility model relates to the field of glass tempering furnace cooling technology, specifically a glass tempering furnace cooling device. Background Technology

[0002] A glass tempering furnace is a heating device that can heat and soften ordinary glass. Once the glass is softened, it quickly dissipates heat, thereby generating uniform internal stress in the glass and improving its bending and impact resistance.

[0003] A search revealed Chinese Patent Publication No. CN222024258U, which discloses a cooling device for a glass tempering furnace. The device includes a glass tempering furnace body, a frame, and symmetrically arranged heat pipes on the upper part of the frame. A first heat dissipation plate is arranged on the outer wall of each of the two heat pipes, and a heat-conducting component is arranged on the upper part of the first heat dissipation plate. The first heat dissipation components are symmetrically arranged on the upper part of the frame, and second heat dissipation components are arranged on the vertical surfaces of both sides of the frame. Cooling components are arranged on the lower part of the glass tempering furnace body corresponding to the positions of the two sets of second heat dissipation components. Therefore, this utility model provides a cooling device for a glass tempering furnace, which can dissipate heat from the glass tempering furnace body through the heat pipes, first heat dissipation plates, and heat-conducting components, thereby extending the lifespan of the glass tempering furnace and increasing its durability.

[0004] In the cooling mechanism of the above-mentioned utility model, the spacing of the heat sink cannot be adjusted. If the spacing of the heat sink is fixed, when the heat is large, the airflow may be obstructed due to the small spacing, resulting in insufficient heat dissipation efficiency; when the heat is small, the excessive spacing may lead to excessive heat dissipation capacity and waste of resources. Therefore, it is necessary to provide a method that can adjust the spacing of the heat sink to improve the applicability of heat dissipation. Utility Model Content

[0005] The purpose of this utility model is to provide a cooling device for a glass tempering furnace to solve the problems mentioned in the background art. To solve the above-mentioned technical problems, this utility model is achieved through the following technical solution:

[0006] This utility model relates to a cooling device for a glass tempering furnace, comprising:

[0007] The glass tempering furnace body and the heat dissipation frame are fixed to the middle of the upper surface of the glass tempering furnace body.

[0008] A heat dissipation assembly includes a heat dissipation groove, a limiting groove, a heat dissipation plate, a first limiting block, and a second limiting block. The heat dissipation groove is located in the middle of the upper surface of the heat dissipation frame, and the limiting groove is located inside the heat dissipation frame and is interconnected with the heat dissipation groove. One side of the limiting groove completely penetrates the heat dissipation frame. There are twelve heat dissipation plates, which are placed at equal intervals in the heat dissipation groove. The first limiting block is fixed to one side of the heat dissipation plate, and the second limiting block is fixed to the other side of the heat dissipation plate. The first limiting block and the second limiting block slide through the limiting groove.

[0009] Furthermore, support columns are fixed at the four corners of the lower surface of the glass tempering furnace body, and tempered glass is placed on the upper surface of the glass tempering furnace body.

[0010] Furthermore, a connecting shaft is fixed to the outer side of the second limiting block. There are twelve connecting shafts, which are respectively fixed to the corresponding second limiting blocks. The outer surface of the outermost connecting shaft is penetrated by a first movable plate, and the outer surface of the outermost connecting shaft is penetrated by a second movable plate.

[0011] Furthermore, the end of the first movable plate is rotatably connected to a first movable rod, the end of the second movable plate is rotatably connected to a second movable rod, and the centers of the first movable rod and the second movable rod rotate through the outermost connecting shaft, and a connecting handle is fixed on one side of the outermost connecting shaft.

[0012] Furthermore, the first movable rod and the second movable rod are a group, and a total of ten groups are provided. One end of the first movable rod in the first group is rotatably connected to one end of the second movable rod in the next group, and one end of the second movable rod in the first group is rotatably connected to one end of the first movable rod in the next group.

[0013] Furthermore, it also includes a cooling component, which includes a mounting frame and a mounting plate. The mounting frame is fixed on the upper surface of the heat dissipation frame and is directly opposite to the heat dissipation groove. Three sets of mounting plates are fixed on the upper surface of the mounting plate.

[0014] Furthermore, two cooling fans are installed inside the mounting plate, with the cooling fans facing directly opposite the heat dissipation slots.

[0015] This utility model has the following beneficial effects:

[0016] This utility model relates to a glass tempering furnace body, a heat dissipation frame, a support column, and a heat dissipation assembly. When cooling tempered glass, the connecting handles can be pulled to both sides. These handles cause the first and second movable plates to move outwards, flattening them. Simultaneously, the first and second movable rods also flatten, opening the heat dissipation plates to both sides and increasing the distance between them. Pushing the connecting handles towards the center causes the first and second movable plates to move inwards, widening them and reducing the distance between them. During the cooling process of tempered glass, heat release changes over time. By adjusting the distance between the heat dissipation plates, the heat dissipation capacity can be dynamically adjusted according to the actual heat distribution and cooling rate requirements, optimizing heat dissipation efficiency and reducing thermal stress and product quality issues. Attached Figure Description

[0017] To more clearly illustrate the technical solutions of the embodiments of this utility model, the accompanying drawings used in the description of the embodiments 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.

[0018] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0019] Figure 2 This is an exploded view of the heat dissipation component structure of this utility model;

[0020] Figure 3 This is a schematic diagram of the heat dissipation component of this utility model;

[0021] Figure 4 This is a cross-sectional view of the cooling component structure of this utility model.

[0022] The attached diagram lists the components represented by each number as follows:

[0023] 11. Glass tempering furnace body; 12. Heat dissipation frame; 13. Support column;

[0024] 21. Heat dissipation groove; 22. Limiting groove; 23. Heat dissipation plate; 231. First limiting block; 232. Second limiting block; 233. Connecting shaft; 24. First movable plate; 25. Second movable plate; 26. First movable rod; 27. Second movable rod; 28. Connecting handle;

[0025] 31. Mounting frame; 32. Mounting plate; 33. Cooling fan. Detailed Implementation

[0026] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0027] To make the objectives, technical solutions, and advantages of this utility model clearer, the embodiments of this utility model will be described in further detail below with reference to the accompanying drawings.

[0028] Please see Figure 1-4 As shown, this utility model is a cooling device for a glass tempering furnace, comprising:

[0029] The glass tempering furnace body 11 and the heat dissipation frame 12 are fixed in the middle of the upper surface of the glass tempering furnace body 11. Support columns 13 are fixed at the four corners of the lower surface of the glass tempering furnace body 11, and tempered glass is placed on the upper surface of the glass tempering furnace body 11.

[0030] The glass tempering furnace body 11 is the core processing equipment for tempered glass, used for heating, heat preservation and cooling processes of glass. The heat dissipation frame 12 serves as the installation base for heat dissipation components, and the support column 13 is used to support the entire equipment to ensure its stability.

[0031] The heat dissipation assembly includes a heat dissipation slot 21, a limiting slot 22, a heat dissipation plate 23, a first limiting block 231, and a second limiting block 232. The heat dissipation slot 21 is located in the middle of the upper surface of the heat dissipation frame 12. The limiting slot 22 is located inside the heat dissipation frame 12 and is interconnected with the heat dissipation slot 21. One side of the limiting slot 22 completely penetrates the heat dissipation frame 12. There are twelve heat dissipation plates 23, which are placed at equal intervals in the heat dissipation slot 21. The first limiting block 231 is fixed to one side of the heat dissipation plate 23, and the second limiting block 232 is fixed to the other side of the heat dissipation plate 23. The first limiting block 231 and the second limiting block 232 slide through the limiting slot 22.

[0032] The heat dissipation groove 21 is used to accommodate the heat dissipation plate 23. The limiting groove 22 is connected to the heat dissipation groove 21 to provide guidance for the movement of the heat dissipation plate 23. The heat dissipation plate 23 conducts the heat of the glass tempering furnace body 11 to the external environment through contact with the air to achieve the cooling effect. The first limiting block 231 and the second limiting block 232 are used to slide in the limiting groove 22 to ensure that the heat dissipation plate 23 remains stable during the movement.

[0033] A connecting shaft 233 is fixed to the outer side of the second limiting block 232. There are twelve connecting shafts 233, which are fixed to the corresponding second limiting blocks 232. The outer surface of the outermost connecting shaft 233 is penetrated by a first movable plate 24. The outer surface of the outermost connecting shaft 233 is penetrated by a second movable plate 25. The end of the first movable plate 24 is rotatably connected to a first movable rod 26. The end of the second movable plate 25 is rotatably connected to a second movable rod 27. The center of the first movable rod 26 and the second movable rod 27 rotates through the outermost connecting shaft 233. A connecting handle 28 is fixed to one side of the outermost connecting shaft 233.

[0034] The connecting shaft 233 is used to connect the heat sink 23 with the first movable plate 24 and the second movable plate 25. When the connecting handle 28 is pulled or pushed, the first movable plate 24 and the second movable plate 25 will drive all the heat sinks 23 to move synchronously, thereby adjusting the spacing. The first movable rod 26 and the second movable rod 27 are respectively rotatably connected to the ends of the first movable plate 24 and the second movable plate 25 for transmitting force and motion.

[0035] The first movable rod 26 and the second movable rod 27 are set as a group, and a total of ten groups are provided. One end of the first movable rod 26 in the first group is rotatably connected to one end of the second movable rod 27 in the second group, and one end of the second movable rod 27 in the first group is rotatably connected to one end of the first movable rod 26 in the second group.

[0036] The first movable lever 26 and the second movable lever 27 form a group, and a total of ten groups are set up. The first group and the second group are connected to each other to form a linkage mechanism.

[0037] Working principle:

[0038] When cooling tempered glass, the connecting handle 28 can be pulled to both sides. The connecting handle 28 drives the first movable plate 24 and the second movable plate 25 to move outward, making the first movable plate 24 and the second movable plate 25 flatten. At the same time, the first movable rod 26 and the second movable rod 27 flatten, causing the heat dissipation plate 23 to open to both sides and lengthen the distance between the heat dissipation plates 23. Push the connecting handle 28 towards the middle, driving the first movable plate 24 and the second movable plate 25 to move towards the middle, making the first movable plate 24 and the second movable plate 25 wider. This causes the heat dissipation plate 23 to move towards the middle, reducing the distance between the heat dissipation plates 23.

[0039] In this step, during the cooling process of tempered glass, the heat release changes over time. By adjusting the spacing of the heat sink plates, the heat dissipation capacity can be dynamically adjusted according to the actual heat distribution and cooling rate requirements, thereby optimizing heat dissipation efficiency and reducing thermal stress and product quality issues.

[0040] Please see Figure 1-4 As shown, this embodiment, based on the above embodiment, further includes:

[0041] The cooling component includes a mounting frame 31 and a mounting plate 32. The mounting frame 31 is fixed on the upper surface of the heat dissipation frame 12 and the mounting frame 31 is directly opposite to the heat dissipation slot 21. Three sets of mounting plates 32 are fixed on the upper surface of the mounting plate 32. Two cooling fans 33 are installed inside the mounting plate 32 and the cooling fans 33 are directly opposite to the heat dissipation slot 21.

[0042] The mounting frame 31 serves as the mounting base for the cooling components. The mounting plates 32 are evenly distributed to cover the area of ​​the heat sink 21, providing fixation and protection for the cooling fan 33, while ensuring that the airflow direction is aligned with the heat sink 21.

[0043] Working principle:

[0044] During cooling, the heat is drawn out from the heat sink 23 by turning on the cooling fan 33, and the heat sink 21 draws out the heat inside the heat sink frame 12. The forced airflow of the cooling fan 33 can quickly draw out the heat from the heat sink 23 and the heat sink 21, which significantly improves the heat dissipation efficiency. The design of three sets of mounting plates 32 and six cooling fans 33 can ensure that the heat is evenly discharged from all directions, avoiding local overheating or overcooling.

[0045] In this step, turning on the cooling fan 33 can actively extract heat from the heat sink 23, accelerate the heat transfer to the external environment, and significantly improve heat dissipation efficiency. The heat sink 21 optimizes the heat dissipation path, ensuring that the heat inside the heat sink frame 12 can be quickly extracted.

[0046] The preferred embodiments of this utility model disclosed above are merely illustrative of the present utility model. These preferred embodiments do not exhaustively describe all details, nor do they limit the utility model to the specific implementations described. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of this utility model, thereby enabling those skilled in the art to better understand and utilize it. This utility model is limited only by the claims and their full scope and equivalents.

Claims

1. A cooling device for a glass tempering furnace, characterized in that, include: The glass tempering furnace body (11) and the heat dissipation frame (12) are fixed to the middle of the upper surface of the glass tempering furnace body (11). The heat dissipation assembly includes a heat dissipation groove (21), a limiting groove (22), a heat dissipation plate (23), a first limiting block (231), and a second limiting block (232). The heat dissipation groove (21) is located in the middle of the upper surface of the heat dissipation frame (12), and the limiting groove (22) is located inside the heat dissipation frame (12). The limiting groove (22) and the heat dissipation groove (21) are interconnected. One side of the limiting groove (22) completely penetrates the heat dissipation frame (12). Twelve heat dissipation plates (23) are provided and are placed at equal intervals in the heat dissipation groove (21). The first limiting block (231) is fixed on one side of the heat dissipation plate (23), and the second limiting block (232) is fixed on the other side of the heat dissipation plate (23). The first limiting block (231) and the second limiting block (232) slide through the limiting groove (22).

2. The cooling device for a glass tempering furnace according to claim 1, characterized in that: The lower surface of the glass tempering furnace body (11) is fixed with four support columns (13), and tempered glass is placed on the upper surface of the glass tempering furnace body (11).

3. The cooling device for a glass tempering furnace according to claim 1, characterized in that: A connecting shaft (233) is fixed on the outer side of the second limiting block (232). There are twelve connecting shafts (233), which are fixed on the corresponding second limiting block (232). The outermost connecting shaft (233) has a first movable plate (24) and a second movable plate (25) passing through its outer surface.

4. The cooling device for a glass tempering furnace according to claim 3, characterized in that: The end of the first movable plate (24) is rotatably connected to the first movable rod (26), the end of the second movable plate (25) is rotatably connected to the second movable rod (27), and the center of the first movable rod (26) and the second movable rod (27) rotates through the outermost connecting shaft (233), and a connecting handle (28) is fixed on one side of the outermost connecting shaft (233).

5. The cooling device for a glass tempering furnace according to claim 4, characterized in that: The first movable rod (26) and the second movable rod (27) are a group, and a total of ten groups are provided. One end of the first movable rod (26) of the first group is rotatably connected to one end of the second movable rod (27) of the second group, and one end of the second movable rod (27) of the first group is rotatably connected to one end of the first movable rod (26) of the second group.

6. The cooling device for a glass tempering furnace according to claim 1, characterized in that: It also includes a cooling component, which includes a mounting frame (31) and a mounting plate (32). The mounting frame (31) is fixed on the upper surface of the heat dissipation frame (12), and the mounting frame (31) and the heat dissipation groove (21) are directly opposite each other. Three sets of mounting plates (32) are fixed on the upper surface of the mounting plate (32).

7. The cooling device for a glass tempering furnace according to claim 6, characterized in that: The mounting plate (32) has two cooling fans (33) installed inside, and the cooling fans (33) are directly opposite the heat sink (21).