Saturated water high-temperature heat storage conversion heat supply equipment

By designing sealing mechanisms and filtering mechanisms in heat storage conversion equipment, the problem of lack of sealing and susceptibility to impurities is solved, and a more efficient water flow sealing and impurity filtration effect is achieved.

CN222926044UActive Publication Date: 2025-05-30FUJIAN QIANNENG IND EQUIP TECH CO LTD
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Patent Information

Application Number
CN202421402183.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-19
Publication Date
2025-05-30
Estimated Expiration
2034-06-19

AI Technical Summary

Technical Problem

The existing heat storage and conversion equipment pumps lack sealing properties and are prone to damage internal parts due to impurities in the water flow, affecting working efficiency.

Method used

A saturated water high-temperature heat storage conversion heating equipment is designed, and a sealing mechanism consisting of a first flange, a slide chute, a limiting groove, a sealing ring, a second flange, a slider and a limiting block are used. Combined with the filtering mechanism of the filter tube and the handle, the sealing property of the water flow and intercepts impurities.

Benefits of technology

Effectively prevent water flow from oozing out, reduce equipment damage caused by impurities, and improve equipment sealing and working efficiency.

✦ Generated by Eureka AI based on patent content.

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    Figure CN222926044U_ABST
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Abstract

The utility model relates to the related technical field of heat storage conversion equipment, in particular to saturated water high-temperature heat storage conversion heat supply equipment which comprises heat storage conversion equipment, a connecting pipe is installed on the surface of one side of the heat storage conversion equipment, and a sealing mechanism is arranged on the surface of one side of the heat storage conversion equipment. And a filtering mechanism is arranged on the inner side surface of the connecting pipe. According to the saturated water high-temperature heat storage conversion heat supply equipment, through the arrangement of a first flange plate, a sliding groove, a limiting groove, a first mounting groove, a sealing ring, a second flange plate, a second mounting groove, a sliding block and a limiting block, during use, when the heat storage conversion equipment starts to operate, water flow enters the heat storage conversion equipment through a connecting pipe; and the first flange plate and the second flange plate can effectively prevent water flow from seeping out, the filter pipe can intercept impurities in water in the filter pipe, and internal damage, caused by the impurities, of the heat storage conversion equipment is reduced.
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Description

Technical Field

[0001] The utility model relates to the technical field of heat storage conversion equipment, in particular to a high-temperature heat storage conversion heating equipment for saturated water. Background Technique

[0002] A regenerative heat exchanger, also known as a recuperative heat exchanger, is a heat exchange device with a relatively long application history. It is a form of heat exchanger classified by large categories and has the advantage of being able to operate under high-temperature conditions. At temperatures above 1300 °C, a regenerative heat exchanger is often the heat exchanger type that can be selected. Its advantage also lies in the ability to use various shapes and types of materials. In order to better use the heat storage conversion equipment, therefore, there is a particular need for a high-temperature heat storage conversion heating equipment for saturated water.

[0003] However, for most existing heat storage conversion equipment pumps, most heat storage conversion equipment does not have good sealing performance. Moreover, when the heat storage conversion equipment is working, it is very easy for some parts inside it to be damaged due to impurities contained in the water flow, affecting its working efficiency. Content of the Utility Model

[0004] The purpose of the utility model is to provide a high-temperature heat storage conversion heating equipment for saturated water to solve the problems in the above-mentioned background technique, that is, for most existing heat storage conversion equipment pumps, most heat storage conversion equipment does not have good sealing performance, and when the heat storage conversion equipment is working, it is very easy for some parts inside it to be damaged due to impurities contained in the water flow, affecting its working efficiency.

[0005] To achieve the above purpose, the utility model provides the following technical solution: A high-temperature heat storage conversion heating equipment for saturated water, including a heat storage conversion equipment, a connecting pipe is installed on one side surface of the heat storage conversion equipment, a sealing mechanism is arranged on one side surface of the heat storage conversion equipment, and a filtering mechanism is arranged on the inner surface of the connecting pipe;

[0006] The sealing mechanism includes a first flange, a sliding groove, a limiting groove, a first installation groove, a sealing ring, a second flange, a second installation groove, a sliding block and a limiting block. A first flange is installed on one side surface of the heat storage conversion equipment. A sliding groove is opened on one side surface of the first flange. A limiting groove is opened on one side surface of the sliding groove. A first installation groove is opened on one side surface of the first flange. A sealing ring is fixedly connected to the inner surface of the first installation groove. A second flange is welded to one side surface of the connecting pipe. A second installation groove is opened on one side surface of the second flange. A sliding block is fixedly connected to one side surface of the second flange. A limiting block is welded to one side surface of the sliding block.

[0007] Preferably, the sliding groove and the first installation groove are both formed on one side surface of the first flange, and the outer wall size of the sealing ring matches the inner wall size of the first installation groove.

[0008] Preferably, the second installation groove and the slider are both on one side surface of the second flange, and the outer wall size of the sealing ring matches the inner wall size of the limiting groove.

[0009] Preferably, the outer wall size of the slider matches the inner wall size of the sliding groove, and the sliding groove is symmetrically formed with respect to the central axis of the first installation groove.

[0010] Preferably, the filtering mechanism includes a fixing groove, a gasket, a filtering pipe, a limiting ring, a mounting hole and a handle. A fixing groove is formed on one side surface of the heat storage conversion device. The inner surface of the fixing groove is fixedly connected with a gasket. The inner surface of the gasket is fixedly connected with a filtering pipe. A limiting ring is welded on one side surface of the filtering pipe. A mounting hole is formed in the inner surface of the filtering pipe, and a handle is fixedly connected to the inner surface of the mounting hole.

[0011] Preferably, the outer wall size of the gasket matches the inner wall size of the fixing groove, and the mounting holes are symmetrically formed with respect to the central axis of the filtering pipe.

[0012] Preferably, the outer wall size of the filtering pipe matches the inner wall size of the gasket, and the outer wall size of the limiting ring matches the inner wall size of the fixing groove.

[0013] Compared with the prior art, the beneficial effects of the present utility model are as follows: for this saturated water high-temperature heat storage conversion heating device, through the settings of the first flange, sliding groove, limiting groove, first installation groove, sealing ring, second flange, second installation groove, slider and limiting block, during use, when the heat storage conversion device starts to operate, water flow will enter the heat storage conversion device through the connecting pipe. The first flange and the second flange can effectively prevent water leakage, and the sealing ring further prevents water from leaking out through the gap between the first flange and the second flange. The filtering pipe can intercept impurities in the water in the filtering pipe, reducing the internal damage of the heat storage conversion device caused by impurities. When it is necessary to replace or clean the filtering pipe, it can be taken out through the handle to complete the replacement or cleaning. This solves the problems of existing heat storage conversion devices that most of them do not have good sealing performance, and during the operation of the heat storage conversion device, it is easy for internal parts to be damaged due to some impurities contained in the water flow, affecting its working efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] Figure 1 is a schematic cross-sectional structure view of the whole part of the present utility model;

[0015] Figure 2 is a schematic external structure view of the whole of the present utility model;

[0016] Figure 3 This is a schematic structural diagram of the filtering mechanism of the present utility model;

[0017] Figure 4 For the present utility model Figure 2 The enlarged structural diagram at position A in it;

[0018] Figure 5 For the present utility model Figure 2 The enlarged structural diagram at position B in it.

[0019] In the figure: 1. Heat storage conversion device; 2. Connecting pipe; 3. Sealing mechanism; 301. First flange; 302. Chute; 303. Limiting groove; 304. First installation groove; 305. Sealing ring; 306. Second flange; 307. Second installation groove; 308. Slide block; 309. Limiting block; 4. Filtering mechanism; 401. Fixed groove; 402. Gasket; 403. Filter pipe; 404. Limiting ring; 405. Installation hole; 406. Handle. Specific embodiments

[0020] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with 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 the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.

[0021] Please refer to Figures 1-5 , the present utility model provides a technical solution: a saturated water high-temperature heat storage conversion heating device, including a heat storage conversion device 1, a connecting pipe 2 is installed on one side surface of the heat storage conversion device 1, a sealing mechanism 3 is arranged on one side surface of the heat storage conversion device 1, and a filtering mechanism 4 is arranged on the inner surface of the connecting pipe 2;

[0022] The sealing mechanism 3 includes a first flange 301, a chute 302, a limiting groove 303, a first mounting groove 304, a sealing ring 305, a second flange 306, a second mounting groove 307, a slider 308 and a limiting block 309. A first flange 301 is mounted on one side surface of the heat storage conversion device 1. A chute 302 is formed on one side surface of the first flange 301. A limiting groove 303 is formed on one side surface of the chute 302. A first mounting groove 304 is formed on one side surface of the first flange 301. A sealing ring 305 is fixedly connected to the inner surface of the first mounting groove 304. A second flange 306 is welded to one side surface of the connecting pipe 2. A second mounting groove 307 is formed on one side surface of the second flange 306. A slider 308 is fixedly connected to one side surface of the second flange 306. A limiting block 309 is welded to one side surface of the slider 308. Through the settings of the first flange 301, the chute 302, the limiting groove 303, the first mounting groove 304, the sealing ring 305, the second flange 306, the second mounting groove 307, the slider 308 and the limiting block 309, when in use, when it is necessary to connect the heat storage conversion device 1 with the water tank through the connecting pipe 2, the sealing ring 305 is placed into the first mounting groove 304, and then the second flange 306 is connected to the first flange 301. At this time, the slider 308 will slide into the chute 302, and a part of the sealing ring 305 will be in the second mounting groove 307. Rotate the second flange 306 to make the limiting block 309 turn into the limiting groove 303. When the heat storage conversion device 1 starts to operate, water flow will enter the heat storage conversion device 1 through the connecting pipe 2, and the first flange 301 and the second flange 306 can effectively prevent water from seeping out, and the sealing ring 305 further prevents water from seeping out from the gap between the first flange 301 and the second flange 306.

[0023] Further, both the chute 302 and the first mounting groove 304 are formed on one side surface of the first flange 301. The outer wall dimension of the sealing ring 305 matches the inner wall dimension of the first mounting groove 304. Through the setting of the chute 302, when in use, the chute 302 provides space for the rotation of the second flange 306.

[0024] Further, both the second mounting groove 307 and the slider 308 are on one side surface of the second flange 306. The outer wall dimension of the sealing ring 305 matches the inner wall dimension of the limiting groove 303. Through the setting of the sealing ring 305, when in use, the sealing ring 305 can prevent water from seeping out from the gap between the first flange 301 and the second flange 306, and further complete the sealing.

[0025] Further, the outer wall dimensions of the slider 308 match the inner wall dimensions of the chute 302. The chute 302 is symmetrically arranged with respect to the central axis of the first mounting groove 304. By providing the slider 308, during use, the fixation between the first flange 301 and the second flange 306 can be simplified, facilitating installation.

[0026] Further, the filtering mechanism 4 includes a fixing groove 401, a gasket 402, a filter tube 403, a limiting ring 404, a mounting hole 405, and a handle 406. A fixing groove 401 is formed on one side surface of the heat storage conversion device 1. The inner surface of the fixing groove 401 is fixedly connected with a gasket 402. The inner surface of the gasket 402 is fixedly connected with a filter tube 403. A limiting ring 404 is welded on one side surface of the filter tube 403. Mounting holes 405 are formed on the inner surface of the filter tube 403. The inner surface of the mounting hole 405 is fixedly connected with a handle 406. By providing the fixing groove 401, the gasket 402, the filter tube 403, the limiting ring 404, the mounting hole 405, and the handle 406, during use, the gasket 402 is placed into the fixing groove 401, and then the filter tube 403 is placed in. At this time, the limiting ring 404 will be located on the gasket 402 to prevent the filter tube 403 from sliding into the interior of the heat storage conversion device 1. When the heat storage conversion device 1 is operating, the filter tube 403 can intercept impurities in the water in the filter tube 403, reducing the internal damage of the heat storage conversion device 1 caused by impurities. When it is necessary to replace or clean the filter tube 403, it can be taken out through the handle 406 to complete the replacement or cleaning.

[0027] Further, the outer wall dimensions of the gasket 402 match the inner wall dimensions of the fixing groove 401. The mounting holes 405 are symmetrically arranged with respect to the central axis of the filter tube 403. By providing the gasket 402, during use, the gasket 402 can reduce the friction between the limiting ring 404 and the inner wall of the fixing groove 401, reducing the possibility of damage to the filter tube 403.

[0028] Further, the outer wall dimensions of the filter tube 403 match the inner wall dimensions of the gasket 402. The outer wall dimensions of the limiting ring 404 match the inner wall dimensions of the fixing groove 401. By providing the limiting ring 404, during use, the limiting ring 404 can prevent the filter tube 403 from being flushed into the interior of the heat storage conversion device 1 due to excessive water flow, providing safety.

[0029] Working principle: When in use, when it is necessary to connect the heat storage conversion device 1 to the water tank through the connecting pipe 2, the sealing ring 305 is placed in the first installation groove 304, and then the second flange 306 is connected to the first flange 301. At this time, the slider 308 will slide into the chute 302, and part of the sealing ring 305 will be in the second installation groove 307. Rotate the second flange 306 so that the limiting block 309 rotates into the limiting groove 303. When the heat storage conversion device 1 starts to operate, water flow will enter the heat storage conversion device 1 through the connecting pipe 2. The first flange 301 and the second flange 306 can effectively prevent water from leaking out, and the sealing ring 305 further prevents water from leaking out through the gap between the first flange 301 and the second flange 306. Place the gasket 402 in the fixing groove 401, and then place the filter pipe 403. At this time, the limiting ring 404 will be on the gasket 402 to prevent the filter pipe 403 from sliding into the interior of the heat storage conversion device 1. When the heat storage conversion device 1 is operating, the filter pipe 403 can intercept impurities in the water in the filter pipe 403, reducing internal damage of the heat storage conversion device 1 caused by impurities. When it is necessary to replace or clean the filter pipe 403, it can be taken out through the handle 406 to complete the replacement or cleaning.

[0030] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A saturated water high temperature heat storage conversion heating device, comprising a heat storage conversion device (1), characterized in that: A connecting pipe (2) is installed on one side surface of the heat storage conversion device (1), a sealing mechanism (3) is provided on one side surface of the heat storage conversion device (1), and a filtering mechanism (4) is provided on the inner side surface of the connecting pipe (2); The sealing mechanism (3) comprises a first flange (301), a slide groove (302), a limiting groove (303), a first mounting groove (304), a sealing ring (305), a second flange (306), a second mounting groove (307), a sliding block (308) and a limiting block (309); the first flange (301) is installed on one side surface of the heat storage conversion device (1); the slide groove (302) is provided on one side surface of the first flange (301); the limiting groove (303) is provided on one side surface of the slide groove (302); 3), a first mounting groove (304) is provided on one side surface of the first flange (301), a sealing ring (305) is fixedly connected to the inner side surface of the first mounting groove (304), a second flange (306) is welded to one side surface of the connecting pipe (2), a second mounting groove (307) is provided on one side surface of the second flange (306), a slider (308) is fixedly connected to one side surface of the second flange (306), and a limiting block (309) is welded to one side surface of the slider (308).

2. A saturated water high temperature heat storage conversion heating equipment according to claim 1, characterized in that: The sliding groove (302) and the first installation groove (304) are both opened on one side surface of the first flange (301), and the outer wall size of the sealing ring (305) matches the inner wall size of the first installation groove (304).

3. A saturated water high temperature heat storage conversion heating equipment according to claim 1, characterized in that: The second installation groove (307) and the sliding block (308) are both located on one side surface of the second flange (306), and the outer wall size of the sealing ring (305) matches the inner wall size of the limiting groove (303).

4. A saturated water high temperature heat storage conversion heating equipment according to claim 1, characterized in that: The outer wall size of the sliding block (308) matches the inner wall size of the sliding groove (302), and the sliding groove (302) is symmetrically opened with respect to the central axis of the first installation groove (304).

5. The saturated water high temperature heat storage conversion heating equipment according to claim 1, characterized in that: The filtering mechanism (4) comprises a fixing groove (401), a gasket (402), a filtering tube (403), a limiting ring (404), a mounting hole (405) and a handle (406); a fixing groove (401) is provided on one side surface of the heat storage conversion device (1); a gasket (402) is fixedly connected to the inner side surface of the fixing groove (401); a filtering tube (403) is fixedly connected to the inner side surface of the gasket (402); a limiting ring (404) is welded to one side surface of the filtering tube (403); a mounting hole (405) is provided on the inner side surface of the filtering tube (403); and a handle (406) is fixedly connected to the inner side surface of the mounting hole (405).

6. A saturated water high temperature heat storage conversion heating equipment according to claim 5, characterized in that: The outer wall size of the gasket (402) matches the inner wall size of the fixing groove (401), and the mounting hole (405) is symmetrically opened with respect to the central axis of the filter tube (403).

7. The saturated water high temperature heat storage conversion heating equipment according to claim 5, characterized in that: The outer wall size of the filter tube (403) matches the inner wall size of the gasket (402), and the outer wall size of the limiting ring (404) matches the inner wall size of the fixing groove (401).