Heat-conducting steady-flow anti-abrasion structure

The thermally conductive flow stabilizing and wear-resistant device with a magnet block and support plate structure solves the problems of cumbersome installation and poor applicability of traditional devices, and improves the wear resistance and installation convenience of the water-cooled wall.

CN223976064UActive Publication Date: 2026-03-06SHANGHAI BINGSHENG ELECTROMECHANICAL TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-09
Publication Date
2026-03-06

AI Technical Summary

Technical Problem

Traditional flow guiding and anti-wear devices require welding and are difficult to install, have poor applicability, are unstable in fixation, and are difficult to adapt to different water-cooled wall specifications.

Method used

It adopts a structure of magnetic blocks and support plates, and uses magnetic adsorption and support plates for auxiliary support. Combined with the design of pipe grooves with different inner diameters and spacings, it can adapt to different water-cooled wall pipes, improving installation convenience and stability.

Benefits of technology

It improves the wear resistance of water-cooled walls, expands the scope of application, simplifies the installation process, and improves construction efficiency and stability.

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Abstract

The utility model discloses a heat-conducting steady-flow anti-abrasion structure which comprises a plate body, a first pipe groove and a second pipe groove. The utility model has the beneficial effects that the first magnet blocks and the second magnet blocks are adopted, and the plate bodies are welded on the surface of the water-cooled wall at certain intervals, so that the water-cooled wall is prevented from being impacted and abraded by descending ash particles, the wear resistance of the water-cooled wall is improved, the vibration effect of a water-cooled pipe of the water-cooled wall can be stabilized, the flow velocity of the ash particles adhering to the wall can be stabilized, and the service life is prolonged. The first pipe groove and the second pipe groove which are different in inner diameter and interval are formed in the two ends of the plate body correspondingly and used for being matched with different water cooling wall pipeline outer diameters and intervals, the use range is widened, use convenience is improved, meanwhile, when the plate body is installed, the first magnet block and the second magnet block are magnetically attracted to the surface of a water cooling wall, the temporary fixing effect is achieved, and the service life of the plate body is prolonged. The trouble that a worker holds the plate body with one hand and carries out welding with the other hand is omitted, the trouble of holding with the hand is omitted, construction convenience is improved, and construction efficiency is improved.
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Description

Technical Field

[0001] This utility model relates to the field of boiler water-cooled wall technology, specifically to a thermally conductive, flow-stabilizing, and wear-resistant structure. Background Technology

[0002] The water-cooled walls of boilers are frequently subjected to wear from the impact of descending ash particles during operation. Currently, various flow-guiding and anti-wear devices have emerged, achieving good anti-wear effects. However, traditional flow-guiding and anti-wear devices need to be welded to the surface of the water-cooled wall. Workers need to hold the anti-wear plate with one hand and weld with the other, which is quite troublesome. At the same time, traditional anti-wear plates only have a tube groove on one side, which is only suitable for use with a single specification of water-cooled wall. Adjustment and use are also cumbersome, and the adaptability is poor. Furthermore, relying solely on the welding points for fixation lacks auxiliary support structures and is not stable and reliable enough. Further improvements are still possible.

[0003] No effective solutions have yet been proposed to address the problems in the relevant technologies. Utility Model Content

[0004] (a) Technical problems to be solved

[0005] To address the shortcomings of existing technologies, this utility model provides a thermally conductive, flow-stabilizing, and wear-resistant structure, which has the advantages of improving installation convenience, enhancing the wear resistance of water-cooled walls, expanding the scope of application, and improving stability, thereby solving the problems mentioned in the background technology.

[0006] (II) Technical Solution

[0007] To achieve the aforementioned advantages of improved installation convenience, enhanced wear resistance of water-cooled walls, expanded applicability, and improved stability, the specific technical solution adopted by this utility model is as follows:

[0008] A thermally conductive, flow-stabilizing, and wear-resistant structure includes a plate, a first groove, and a second groove. The first groove is formed on one end surface of the plate, and the second groove is formed on the other side surface of the plate. A first magnet and a second magnet are respectively embedded on both sides of the first groove and the second groove at both ends of the plate. A first support plate and a second support plate are respectively provided on one side of the first magnet and the second magnet on the bottom surface of the plate.

[0009] Furthermore, the first support plate and the second support plate have the same structure, and the first support plate adopts a right-angled triangular structure.

[0010] Furthermore, the first and second support plates are integrally connected to the plate body.

[0011] Furthermore, the first and second magnet blocks have the same structure.

[0012] Furthermore, the first and second magnet blocks have the same thickness as the plate, and one end of the first and second magnet blocks is flush with the edge of the plate.

[0013] Furthermore, the inner diameters and spacing of the first and second tube grooves are different.

[0014] (III) Beneficial Effects

[0015] Compared with the prior art, this utility model provides a thermally conductive, flow-stabilizing, and wear-resistant structure, which has the following beneficial effects:

[0016] (1) This utility model adopts a first magnet block and a second magnet block. The plate is welded to the surface of the water-cooled wall at a certain interval to avoid the water-cooled wall being worn by the impact of the downward ash particles. It plays a role in guiding and preventing wear by "using ash to control ash", which improves the wear resistance of the water-cooled wall. At the same time, it can stabilize the vibration of the water-cooled pipe of the water-cooled wall and stabilize the flow velocity of ash particles adhering to the wall. The two ends of the plate are respectively provided with a first pipe groove and a second pipe groove with different inner diameters and spacings to adapt to different outer diameters and spacings of water-cooled wall pipes, which improves the scope of application and the convenience of use. At the same time, the first magnet block and the second magnet block are magnetically attracted to the surface of the water-cooled wall when the plate is installed, which plays a role in temporary fixation. This saves the workers from the trouble of holding the plate with one hand and welding with the other hand, thus saving the trouble of holding the plate with one hand and improving the convenience and efficiency of construction.

[0017] (2) The present invention adopts a first support plate and a second support plate. When the plate is installed, the first support plate and the second support plate are located below the plate, which play an auxiliary support role of stiffening ribs, improve the installation stability of the plate, and further improve the installation and use efficiency. Attached Figure Description

[0018] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in 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.

[0019] Figure 1 This is a front elevation view of a thermally conductive, flow-stabilizing, and wear-resistant structure proposed in this utility model.

[0020] Figure 2 This is a front view of a thermally conductive, flow-stabilizing, and wear-resistant structure proposed in this utility model;

[0021] Figure 3 This is a rear view of a thermally conductive, flow-stabilizing, and wear-resistant structure proposed in this utility model;

[0022] Figure 4 This is a schematic diagram of the back elevation of a thermally conductive, flow-stabilizing, and wear-resistant structure proposed in this utility model.

[0023] In the picture:

[0024] 1. Plate body; 2. First tube groove; 3. Second tube groove; 4. First magnet block; 5. Second magnet block; 6. First support plate; 7. Second support plate. Detailed Implementation

[0025] To further illustrate the various embodiments, the present invention provides accompanying drawings, which are part of the disclosure of the present invention. These drawings are mainly used to illustrate the embodiments and can be used in conjunction with the relevant descriptions in the specification to explain the operating principles of the embodiments. With reference to these contents, those skilled in the art should be able to understand other possible implementation methods and the advantages of the present invention. The components in the drawings are not drawn to scale, and similar component symbols are usually used to represent similar components.

[0026] According to an embodiment of the present invention, a thermally conductive, flow-stabilizing, and wear-resistant structure is provided.

[0027] The present invention will now be further described in conjunction with the accompanying drawings and specific embodiments, such as... Figure 1-4 As shown, a thermally conductive, flow-stabilizing, and wear-resistant structure according to an embodiment of this utility model includes a plate body 1, a first groove 2, and a second groove 3. The first groove 2 is formed on one end surface of the plate body 1, and the second groove 3 is formed on the other side surface of the plate body 1. Both the first groove 2 and the second groove are arc-shaped grooves. A first magnet 4 and a second magnet 5 are respectively embedded on both sides of the first groove 2 and the second groove 3 at both ends of the plate body 1. A first support plate 6 and a second support plate 7 are respectively provided on one side of the first magnet 4 and the second magnet 5 on the bottom surface of the plate body 1. The plate body 1 is welded to the surface of the water-cooled wall at a certain interval to prevent the water-cooled wall from being worn by the impact of descending dust particles, thus achieving the effect of "…". The "ash-based dust control" method improves the wear resistance of the water-cooled wall by guiding and preventing wear. It also stabilizes the vibration of the water-cooled wall pipes and the flow velocity of ash particles adhering to the wall. The plate 1 has a first groove 2 and a second groove 3 with different inner diameters and spacings at both ends to accommodate different outer diameters and spacings of the water-cooled wall pipes, thus expanding its application range and improving ease of use. Furthermore, the first magnet 4 and the second magnet 5 magnetically adhere to the surface of the water-cooled wall during plate 1 installation, providing temporary fixation. This eliminates the need for workers to hold the plate 1 with one hand while welding with the other, improving construction convenience and efficiency.

[0028] In one embodiment, the first support plate 6 and the second support plate 7 have the same structure, and the first support plate 6 adopts a right-angled triangle structure. When the plate body 1 is installed, the first support plate 6 and the second support plate 7 are located below the plate body 1, which play an auxiliary support role as stiffening ribs, improve the installation stability of the plate body 1, and further improve the installation and use efficiency.

[0029] In one embodiment, the first support plate 6 and the second support plate 7 are integrally connected to the plate body 1, which facilitates integral casting.

[0030] In one embodiment, the first magnet block 4 and the second magnet block 5 have the same structure, wherein the first magnet block 4 and the second magnet block 5 have the same thickness as the plate 1, and one end of the first magnet block 4 and the second magnet block 5 are flush with the edge of the plate 1 to avoid forming misalignment.

[0031] In one embodiment, the inner diameter and spacing of the first tube groove 2 and the second tube groove 3 are different to accommodate different water-cooled wall sizes.

[0032] Working principle:

[0033] Plate 1 is welded to the surface of the water-cooled wall at certain intervals to prevent the water-cooled wall from being worn by the impact of descending ash particles, thus playing a "fighting ash with ash" role in guiding and preventing wear, improving the wear resistance of the water-cooled wall. At the same time, it can stabilize the vibration of the water-cooled wall and water-cooled tubes and stabilize the flow velocity of ash particles adhering to the wall. The two ends of plate 1 are respectively provided with a first tube groove 2 and a second tube groove 3 with different inner diameters and spacings to adapt to different outer diameters and spacings of water-cooled wall pipes, thereby increasing the scope of application and improving the convenience of use. Meanwhile, the first magnet block 4 and the second magnet block 5 magnetically attract the surface of the water-cooled wall during the installation of plate 1, which plays a role in temporary fixation, saving workers the trouble of holding plate 1 with one hand and welding with the other hand, thus improving the convenience and efficiency of construction. At the same time, during the installation of plate 1, the first support plate 6 and the second support plate 7 are located below plate 1, which play a role in auxiliary support as stiffening ribs, improving the installation stability of plate 1, and further improving the installation and use efficiency.

[0034] In this utility model, unless otherwise explicitly specified and limited, the terms "installation", "setting", "connection", "fixing", "screw connection", etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal connection of two components or the interaction between two components. Unless otherwise explicitly limited, those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.

[0035] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A thermally conductive, flow stabilizing, anti-abrasion structure, characterized by, The utility model relates to a plate body (1), first pipe groove (2) and second pipe groove (3), first pipe groove (2) is seted up in the surface of one end of plate body (1), and second pipe groove (3) is seted up in the surface of the other side of plate body (1), and first pipe groove (2) and second pipe groove (3) both sides are embedded with first magnet block (4) and second magnet block (5) in the both ends of plate body (1) respectively, one side of first magnet block (4) and second magnet block (5) is provided with first support plate (6) and second support plate (7) in the bottom surface of plate body (1) respectively.

2. The heat-conducting, flow-stabilizing, anti-abrasion structure according to claim 1, wherein, The first support plate (6) and the second support plate (7) are of the same structure, and the first support plate (6) adopts a right-angled triangle structure.

3. The heat-conducting, flow-stabilizing, anti-abrasion structure of claim 1, wherein, The first support plate (6) and the second support plate (7) are integrally connected with the plate body (1).

4. The heat-conducting, flow-stabilizing, anti-abrasion structure of claim 1, wherein, The first magnet block (4) and the second magnet block (5) are of the same structure.

5. The heat-conducting, flow-stabilizing, anti-abrasion structure of claim 1, wherein, The first magnet block (4) and the second magnet block (5) have the same thickness as the plate body (1), and one end of the first magnet block (4) and the second magnet block (5) is flush with the edge of the plate body (1).

6. The heat-conducting, flow-stabilizing, anti-abrasion structure of claim 1, wherein, The inner diameters and the intervals of the first pipe groove (2) and the second pipe groove (3) are different.