Furnace body water-cooled jacket output device of high-temperature purification equipment
By introducing water barrier devices and cooling water output components into the water cooling sleeve output device of high-temperature purification equipment, the cooling uneven problem caused by the water cooling sleeve design is solved, and better cooling effect and reduced operating costs are achieved.
Patent Information
- Application Number
- CN202422166778.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-04
- Publication Date
- 2025-07-01
- Estimated Expiration
- 2034-09-04
AI Technical Summary
The cooling effect of high-temperature purification equipment is poor and the cooling operation cost is high. Especially due to the design of the water cooling sleeve, some areas of the furnace body cannot be filled with cooling water, which poses safety risks and increases the cooling water temperature and reduces costs.
A high-temperature purification equipment furnace body water cooling sleeve output device is designed, including a water barrier device and a cooling water output component. The water barrier device is arranged at the output end of the water cooling sleeve. The water barrier device is in communication with the cooling water output component through the water transfer part. The upper end face of the water barrier device is higher than the water outlet of the cooling water output component, forming a hollow structure and expanding the cooling water coverage area.
The cooling effect of high-temperature purification equipment is enhanced, the cooling operation cost is reduced, and the demand for freezing mechanism cooling power is reduced by expanding the cooling water coverage area.
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Figure CN223050448U_ABST
Abstract
Description
Technical Field
[0001] The utility model provides an output device for a water-cooled jacket of a high-temperature purification equipment furnace body, belonging to the technical field of high-temperature purification equipment cooling. Background Art
[0002] When the high-temperature purification equipment is running, the internal temperature reaches 2300°C. Although there is a heat insulation system for heat insulation, the external temperature of the heat insulation system will also reach about 300°C. This 300°C needs to be taken away by the cooling water in the water-cooled jacket of the furnace body. In order to ensure the cooling effect of the water-cooled jacket, the principle of lower inlet and upper outlet is adopted for the inlet and outlet of the water-cooled jacket, so as to ensure that the water-cooled jacket is as full of cooling water as possible. Therefore, when designing the water outlet of the water-cooled jacket, it is as close as possible to the upper part of the furnace body. However, due to some structural problems (such as avoiding flange welds or facilitating installation, etc.), there are still some areas above the furnace body water outlet that cannot be filled with cooling water. As Figure 1 shown, the highest water level of the cooling water in the water-cooled jacket does not exceed the water outlet of the cooling water, which may lead to too high furnace body temperature and potential safety hazards. In order to reduce the furnace body temperature and prevent safety problems, it is necessary to reduce the cooling water inlet temperature in order to take away more temperature of the furnace body. In order to reduce the temperature of the cooling water, it is necessary to increase the refrigeration power of the refrigerator, which will cost more operating costs. Summary of the Utility Model
[0003] In order to solve the technical problems of poor cooling effect and high cooling operation cost of the high-temperature purification equipment, the utility model provides an output device for a water-cooled jacket of a high-temperature purification equipment furnace body, aiming to improve the cooling effect of the high-temperature purification equipment and reduce the cooling operation cost by improving the hardware structure of the cooling device of the high-temperature purification equipment.
[0004] In order to solve the above technical problems, the technical solution adopted by the utility model is: an output device for a water-cooled jacket of a high-temperature purification equipment furnace body, including a water blocking device and a cooling water output component. The water blocking device is arranged at the output end of the water-cooled jacket and is communicated with the water-cooled jacket;
[0005] The water blocking device is communicated with the cooling water output component through a water conveying part. The upper end surface of the water blocking device is higher than the water outlet of the cooling water output component. The cooling water output component is arranged on the furnace body;
[0006] The water blocking device is of a hollow structure.
[0007] Further, the water blocking device includes a first water blocking part, a second water blocking part and a third water blocking part;
[0008] The first water blocking part is communicated with the output end of the water-cooled jacket, the second water blocking part is communicated with the output end of the water-cooled jacket, and the third water blocking part is communicated with the output end of the water-cooled jacket;
[0009] The upper end surface of the first water retaining portion and the upper end surface of the third water retaining portion are connected to the water delivery portion;
[0010] The first water retaining portion, the second water retaining portion and the third water retaining portion are hollow structures.
[0011] Furthermore, the upper end surfaces of the first water retaining portion and the third water retaining portion are higher than the water outlet of the cooling water output component.
[0012] Furthermore, the first water retaining portion, the second water retaining portion, and the third water retaining portion form a "U" shape or a "凵" shape.
[0013] Furthermore, the first water retaining portion, the second water retaining portion and the third water retaining portion are an integrated structure.
[0014] Furthermore, the first water retaining portion, the second water retaining portion, the third water retaining portion and the output ends of the water cooling jacket are interconnected in pairs.
[0015] Furthermore, the minimum side length of the water delivery portion is greater than the water outlet of the cooling water output component.
[0016] Furthermore, the water retaining device is fixedly connected to the furnace wall of the furnace body.
[0017] Furthermore, the water cooling jacket is fixedly connected to the furnace wall of the furnace body.
[0018] Furthermore, the cooling water output component is welded to the outer surface of the furnace body.
[0019] The beneficial effects of the utility model compared with the prior art are as follows: the height of the first water retaining part and the second water retaining part of the water retaining device of the utility model is greater than the height of the water outlet of the cooling water output component, and the interior thereof can be filled with cooling water, thereby further expanding the effective cooling area of the furnace body of the high-temperature purification device, and cooling the furnace body temperature by the water-cooling jacket of the traditional high-temperature purification equipment furnace body, thereby reducing the refrigeration power of the refrigerator and reducing the cooling operation cost; the utility model has a simple structure and is easy to operate. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] The utility model is further described below in conjunction with the accompanying drawings:
[0021] Figure 1 It is a side sectional view of a conventional furnace body and its connection relationship;
[0022] Figure 2 It is a partial cross-sectional view of the utility model;
[0023] Figure 3 It is a side sectional view of the furnace body and its connection relationship of the utility model;
[0024] Figure 4Schematic diagram of the positional relationship between the water retaining device of the present utility model and the cooling water level;
[0025] Figure 5 Comparison diagram of the highest water level of traditional cooling water in the high-temperature purification device and the highest water level of the cooling water of the present utility model;
[0026] In the figure: 1 is a water-cooled jacket, 2 is a cooling water output component, 3 is a water retaining device, 4 is a water outlet, 5 is a furnace body, 6 is a first water retaining part, 7 is a second water retaining part, 8 is a third water retaining part, 9 is a water conveying part, 10 is a flange, and 11 is a cooling water input component. Specific embodiments
[0027] In the present utility model, unless otherwise specified, the orientation terms such as "upper, lower, top, bottom" are usually relative to the direction shown in the drawings, or relative to the vertical, perpendicular or gravitational direction of the component itself; similarly, for the convenience of understanding and description, "inside, outside" refers to the inside and outside relative to the contour of each component itself, but the above orientation terms do not limit the present utility model.
[0028] As Figures 1 to 5 shown, the present utility model provides a water-cooled jacket output device for the furnace body of a high-temperature purification equipment, including a water retaining device 3 and a cooling water output component 2. The water retaining device 3 is arranged at the output end of the water-cooled jacket 1. The water retaining device 3 is communicated with the water-cooled jacket 1. The water retaining device 3 is communicated with the cooling water output component 2 through a water conveying part 9. The upper end surface of the water retaining device 3 is higher than the water outlet 4 of the cooling water output component 2. The cooling water output component 2 is arranged on the furnace body 5. The water retaining device 3 is a hollow structure. Specifically, both the water-cooled jacket 1 and the water retaining device 3 are fixedly connected to the furnace wall of the furnace body 5. In this embodiment, the water-cooled jacket 1 and the water retaining device 3 are arranged between the inner wall and the outer wall of the furnace body 5, and the thickness of the water retaining device 3 is the same as that of the water-cooled jacket 1.
[0029] The cooling water output component 2 is welded on the outer surface of the upper end of the furnace body 5. The water retaining device 3 is located between the output end of the water-cooled jacket 1 and the cooling water output component 2. The cooling water output component 2 and the water retaining device 3 are communicated with each other to discharge the cooling water in the water-cooled jacket 1 and the cooling water in the water retaining device 3.
[0030] The water retaining device 3 comprises a first water retaining portion 6, a second water retaining portion 7 and a third water retaining portion 8, wherein the first water retaining portion 6, the second water retaining portion 7 and the third water retaining portion 8 are hollow structures, the first water retaining portion 6 is interconnected with the output end of the water cooling jacket 1, the second water retaining portion 7 is interconnected with the output end of the water cooling jacket 1, and the third water retaining portion 8 is interconnected with the output end of the water cooling jacket 1. In the present embodiment, the first water retaining portion 6, the second water retaining portion 7 and the third water retaining portion 8 are an integrated structure, and the first water retaining portion 6, the second water retaining portion 7, the third water retaining portion 8 and the output end of the water cooling jacket 1 are interconnected in pairs. Those skilled in the art can also make adaptive adjustments to the connecting portion between the output end of the water cooling jacket 1 and the water retaining device 3, and set it to other connection modes, as long as the cooling water in the cold water jacket can be discharged into the cooling water output component 2 through the water retaining device 3.
[0031] The area tightly surrounded by the first water retaining portion 6, the second water retaining portion 7, and the third water retaining portion 8 is a water delivery portion 9, and the minimum side length of the water delivery portion 9 is greater than the water outlet 4 of the cooling water output component 2. The upper end surface of the first water retaining portion 6 and the upper end surface of the third water retaining portion 8 are interconnected with the water delivery portion 9, and the water delivery portion 9 is in communication with the cooling water output component 2, so that the cooling water in the water cooling jacket 1 can be discharged. In the present embodiment, the upper end surface of the first water retaining portion 6 and the upper end surface of the third water retaining portion 8 are open structures, and a gap is left between the upper end surfaces of the first water retaining portion 6 and the third water retaining portion 8 and the lower end surface of the flange 10 of the furnace body 5, that is, the first water retaining portion 6 and the water supply portion 9 are interconnected, and the third water retaining portion 8 and the water supply portion 9 are interconnected. Those skilled in the art can also make adaptive adjustments to the upper end surface of the first water retaining portion 6, the upper end surface of the second water retaining portion 7 3 and the cooling water output component 2, as long as the water level of the cooling water in the first water retaining portion 6 and the third water retaining portion 8 is higher than the water outlet 4 of the cooling water output component 2, and the cooling water in the first water retaining portion 6 and the third water retaining portion 8 can be discharged through the cooling water output component 2. In this embodiment, the first water retaining portion 6, the second water retaining portion 7, and the third water retaining portion 8 form a "U" shape or a "凵" shape, and the water delivery portion 9 is a groove formed by the first water retaining portion 6, the second water retaining portion 7, and the third water retaining portion 8. When the cross section of the water outlet 4 of the cooling water output component 2 is circular, the diameter of the water outlet 4 of the cooling water output component 2 is smaller than the width of the water delivery portion 9. When the cooling water in the first water retaining portion 6 and the third water retaining portion 8 overflows from the upper end surfaces of the first water retaining portion 6 and the third water retaining portion 8 and flows into the water delivery portion 9, when the water level in the water delivery portion 9 reaches the water outlet 4 of the cooling water output component 2, the cooling water is discharged from the water outlet 4 of the cooling water output component 2.
[0032] The water inlet end of the water cooling jacket 1 is connected to the cooling water input component 11 at the lower end of the furnace body 5 .
[0033] The working principle of this utility model:
[0034] When using the present utility model, cooling water is input into the water-cooling jacket 1 through the cooling water input component 11 at the lower end of the furnace body 5. When the water level in the water-cooling jacket 1 reaches the water retaining device 3, the cooling water enters the first water retaining part 6, the second water retaining part 7, and the third water retaining part 8. When the cooling water in the first water retaining part 6 and the third water retaining part 8 overflows from the upper end surfaces of the first water retaining part 6 and the third water retaining part 8 and flows into the water conveying part 9, since the heights of the first water retaining part 6 and the third water retaining part 8 are higher than the water outlet 4 of the cooling water output component 2, it is ensured that the water-cooling jacket 1 and the water retaining device 3 are filled with cooling water. Compared with the setting of the output part of the water-cooling jacket 1 of the traditional high-temperature purification equipment, the water level of the cooling water in the output device of the water-cooling jacket 1 of the present utility model is higher, the area of the furnace body 5 cooled by the cooling water is larger, and the cooling effect is better. In the case of achieving the same required cooling effect, there is no need to increase the refrigeration power of the refrigerator to reduce the temperature of the cooling water, which can greatly save the operation cost.
[0035] Regarding the specific structure of the present utility model, it should be noted that the connection relationships between the various component modules adopted by the present utility model are determined and realizable. Except for the special descriptions in the embodiments, the specific connection relationships can bring corresponding technical effects and, on the premise of not relying on the execution of corresponding software programs, solve the technical problems proposed by the present utility model. The models of the components, modules, and specific components, the connection methods between them, and the conventional usage methods and predictable technical effects brought by the above technical features, except for the specific descriptions, all belong to the publicly disclosed contents in patents, journal papers, technical manuals, technical dictionaries, and textbooks that those skilled in the art can obtain before the filing date, or belong to the prior art such as the conventional technologies and common general knowledge in the art, which do not need to be elaborated. This enables the technical solution provided in this case to be clear, complete, and realizable, and the corresponding physical products can be reproduced or obtained according to this technical means.
[0036] Finally, it should be noted that: the above embodiments are only used to illustrate the technical solutions of the present utility model, rather than to limit it; although the present utility model has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that: they can still modify the technical solutions described in the foregoing embodiments, or equivalently replace some or all of the technical features; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the scope of the technical solutions of the various embodiments of the present utility model.
Claims
1. A water cooling jacket output device for a furnace of a high-temperature purification equipment, characterized in that: It includes a water retaining device (3) and a cooling water output component (2). The water retaining device (3) is arranged at the output end of the water cooling jacket (1), and the water retaining device (3) is communicated with the water cooling jacket (1). The water retaining device (3) is communicated with the cooling water output component (2) through a water conveying part (9). The upper end surface of the water retaining device (3) is higher than the water outlet (4) of the cooling water output component (2). The cooling water output component (2) is arranged on the furnace body (5). The water retaining device (3) is of a hollow structure.
2. A high-temperature purification equipment furnace water cooling jacket output device according to claim 1, characterized in that: The water retaining device (3) includes a first water retaining part (6), a second water retaining part (7) and a third water retaining part (8). The first water retaining part (6) is communicated with the output end of the water cooling jacket (1), the second water retaining part (7) is communicated with the output end of the water cooling jacket (1), and the third water retaining part (8) is communicated with the output end of the water cooling jacket (1). The upper end surface of the first water retaining part (6) and the upper end surface of the third water retaining part (8) are communicated with the water conveying part (9). The first water retaining part (6), the second water retaining part (7) and the third water retaining part (8) are of a hollow structure.
3. A high-temperature purification equipment furnace water cooling jacket output device according to claim 2, characterized in that: The upper end surfaces of the first water retaining part (6) and the third water retaining part (8) are higher than the water outlet (4) of the cooling water output component (2).
4. A high-temperature purification equipment furnace water cooling jacket output device according to claim 2, characterized in that: The first water retaining part (6), the second water retaining part (7) and the third water retaining part (8) form a "U" shape or a "凵" shape.
5. The high-temperature purification equipment furnace water cooling jacket output device according to claim 2, characterized in that: The first water retaining part (6), the second water retaining part (7) and the third water retaining part (8) are of an integral structure.
6. The high-temperature purification equipment furnace water cooling jacket output device according to claim 2, characterized in that: The first water retaining part (6), the second water retaining part (7), the third water retaining part (8) and the output end of the water cooling jacket (1) are communicated with each other pairwise.
7. The high-temperature purification equipment furnace water cooling jacket output device according to claim 2, characterized in that: The minimum side length of the water conveying part (9) is greater than the water outlet (4) of the cooling water output component (2).
8. The high-temperature purification equipment furnace water cooling jacket output device according to claim 1, characterized in that: The water retaining device (3) is fixedly connected to the furnace wall of the furnace body (5).
9. The high-temperature purification equipment furnace water cooling jacket output device according to claim 1, characterized in that: The water cooling jacket (1) is fixedly connected to the furnace wall of the furnace body (5).
10. The high-temperature purification equipment furnace water cooling jacket output device according to claim 1, characterized in that: The cooling water output component (2) is welded to the outer surface of the furnace body (5).