Plate type fog dispersal module frame mounting structure
By improving the combined structure of the anti-fog module and frame, and utilizing the design of the frame, angle steel, and limiting ring, the instability problem of the anti-fog module during installation was solved, achieving stable connection and improved structural strength, thus extending its service life.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- JIANGSU SEAGULL COOLING TOWER CO LTD
- Filing Date
- 2025-05-09
- Publication Date
- 2026-05-01
AI Technical Summary
During installation, the anti-fog module is prone to shifting relative to the frame, leading to unstable connections. Furthermore, fixing it with bolts or screws can easily damage the module structure, affecting its reliability and lifespan.
The system adopts a combination structure of frame and defogging module. The frame includes a side frame and angle steel. The two sides of the defogging module are fitted with the horizontal edge of the side frame, and the side of the angle steel is fitted with the boss and overlap of the defogging module. The modules are fixedly connected by limiting rings and rivets to ensure the stability of the defogging module in the length, width and height directions.
The connection stability between the defogging module and the frame has been improved, avoiding the reduction in structural strength caused by openings, extending the service life, and ensuring airflow isolation and heat exchange effects.
Smart Images

Figure CN224189031U_ABST
Abstract
Description
A plate-type defogging module frame installation structure Technical Field
[0001] This utility model relates to the field of defogging module installation technology, and in particular, to a plate-type defogging module frame installation structure. Background Technology
[0002] The defogging module is an important component of the cooling tower. It is equipped with hot air channels running through the top and bottom and cold air channels running through the left and right. The hot air channels and cold air channels are independent of each other. During operation, the dry and cold air from outside the tower that passes horizontally through the cold air channel and the humid and hot air that passes vertically through the hot air channel exchange heat with each other. This causes the humid and hot air to condense into water after cooling, thus achieving water interception and water saving. At the same time, the air leaving the tower becomes unsaturated humid and hot air, which also prevents the formation of mist and achieves the defogging function.
[0003] When installing anti-fogging modules inside cooling towers, a frame is typically required. The installation process involves first placing the anti-fogging module within the frame, and then securing the frame to the cooling tower body. Due to the irregular outer surface contours of the anti-fogging module, it is prone to shifting relative to the frame when encased, affecting the stability of the connection between the module and the frame. However, fixing the module to the frame with bolts or screws can damage the module due to the openings, leading to a decrease in the module's structural strength and reliability, which is detrimental to long-term stable use.
[0004] Therefore, the applicant needs to improve the connection structure between the defogging module and the frame to overcome the above problems. Summary of the Invention
[0005] The technical problem to be solved by this utility model is: in order to overcome the above-mentioned defects in the prior art, a plate-type defogging module frame installation structure with stable connection and long service life is provided.
[0006] The technical solution adopted by this utility model to solve its technical problem is: a plate-type defogging module frame installation structure, including a frame and a defogging module disposed in the frame. The frame includes upper and lower frame sides and four angle steels vertically connected in the two frame sides. The upper and lower sides of the defogging module are attached to the horizontal edges of the frame sides. The defogging module includes a plurality of filler plates stacked sequentially in the horizontal direction. A vertical overlap is formed at the edge of each two adjacent filler plates. A boss is provided on the surface of the filler plate. The angle steel includes a first side and a second side that are perpendicular to each other. The surface of the outermost overlap is attached to the first side, and the surface of the end of the overlap is attached to the longitudinal edge of the frame side. Some of the bosses on the outermost filler plate are attached to the second side.
[0007] Furthermore, the two adjacent packing sheets are rotated 90° apart, and the edge of the packing plate is inclined with a connecting part. The connecting part extends horizontally to form an extension part, and the two extension parts on the two adjacent packing plates fit together to form an overlap.
[0008] Furthermore, the frame includes mutually perpendicular lateral limiting rings and longitudinal limiting rings, and the space enclosed by the lateral limiting rings and the longitudinal limiting rings forms a corner, with the ends of the four angle steels respectively located at the four corners of the corner.
[0009] Furthermore, the top of the defogging module is fitted with the lateral limiting ring of the upper frame, the bottom of the defogging module is fitted with the lateral limiting ring of the lower frame, and the surface of the overlapping edge is fitted with the longitudinal limiting ring of the frame.
[0010] Furthermore, the upper and lower ends of the angle steel abut against two transverse limiting rings respectively, and the first side and the second side are both in contact with the inner ring wall of the longitudinal limiting ring.
[0011] Furthermore, a first connecting hole is provided at both ends of the first side along the longitudinal direction, and a second connecting hole is provided on the longitudinal limiting ring corresponding to the first connecting hole. The first connecting hole and the second connecting hole are fixedly connected by rivets.
[0012] Furthermore, both the frame and the angle steel are integrally formed structures.
[0013] Furthermore, both the frame and the angle steel are made of 316L stainless steel.
[0014] The beneficial effects of this utility model are as follows: The plate-type anti-fog module frame installation structure of this utility model restricts the upper and lower sides of the anti-fog module to the horizontal edges of the upper and lower frame, restricts the two sides along the length of the anti-fog module to the second side of the angle steel, and restricts the two sides along the width of the anti-fog module to the vertical edges of the frame. This ensures the connection stability between the anti-fog module and the frame, prevents the anti-fog module from shifting relative to the frame, and avoids the structural strength reduction caused by openings in the anti-fog module compared to the traditional method of installing the anti-fog module on the frame with fasteners such as bolts and screws. This ensures the reliability of the connection between the two and extends the service life. Attached Figure Description
[0015] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0016] Figure 1 is a perspective view of the frame installation structure of the plate-type defogging module of this utility model;
[0017] Figure 2 is a partial exploded view of the frame installation structure of the plate-type defogging module shown in Figure 1 (some filler plates are omitted for clarity).
[0018] Figure 3 is a partial enlarged view of point A in the frame installation structure of the plate-type defogging module shown in Figure 2.
[0019] In the diagram: 10, frame; 11, side frame; 110, corner protector; 111, transverse limiting ring; 112, longitudinal fiber ring; 1121, second connecting hole; 12, angle steel; 121, first side; 1211, first connecting hole; 122, second side; 20, defogging module; 21, filler plate; 210, overlap; 211, boss; 212, connecting part; 213, extension part. Detailed Implementation
[0020] The present invention will now be described in detail with reference to the accompanying drawings. These drawings are simplified schematic diagrams, illustrating only the basic structure of the present invention, and therefore only show the components relevant to the present invention.
[0021] Please refer to Figures 1-3. This utility model provides a plate-type defogging module frame installation structure, including a frame 10 and a defogging module 20 disposed within the frame 10. The frame 10 includes two quadrilateral frame edges 11 disposed vertically and four angle steels 12 vertically connected within the two frame edges 11. The upper and lower sides of the defogging module 20 are fitted with the horizontal edges of the frame edges 11. The defogging module 20 includes a plurality of filler plates 21 stacked sequentially along the horizontal direction. The filler plates 21 are vertically disposed, and a vertical overlap edge 210 is formed at the edges of each two adjacent filler plates 21. A boss 211 is provided on the surface of the filler plate 21. The angle steels 12 include a first side edge 121 and a second side edge 122 that are perpendicular to each other. The surface of the outermost overlap edge 210 is fitted with the first side edge 121, and the surface of the end of the overlap edge 210 is fitted with the longitudinal edge of the frame edge 11. Part of the boss 211 on the outermost filler plate 21 is fitted with the second side edge 122.
[0022] To facilitate the explanation of the positional relationship between the components, the direction of the installation structure of this utility model is defined here. For details, please refer to Figure 1. The length direction is the direction in which the longer side of the frame 11 extends, the width direction is the direction in which the shorter side of the frame 11 extends, and the height direction is the direction in which the angle steel 12 extends.
[0023] The mounting structure of this utility model's plate-type defogging module frame has the following features: the upper and lower sides of the defogging module 20 are fitted against the horizontal edges of the frame 11, preventing the defogging module 20 from moving relative to the frame 10 in the height direction; some of the protrusions 211 on the filler plate 21 are fitted against the second side 122 of the angle steel 12, preventing the defogging module 20 from moving relative to the frame 10 in the length direction; and the surface of the end of the overlapping edge 210 is fitted against the longitudinal edge of the frame 11, restricting the movement of the defogging module 20 in the width direction. Thus, by limiting the length, width, and height of the defogging module 20, the connection stability between the defogging module 20 and the frame 10 is ensured, preventing the defogging module 20 from shifting relative to the frame 10. Furthermore, the surface of the outermost overlapping edge 210 fits against the first side edge 121, further limiting the position of the defogging module 20. Simultaneously, the first side edge 121 effectively seals both sides of the defogging module 20 along its length, preventing air leakage. Moreover, compared to the traditional method of mounting the defogging module 20 to the frame 10 using bolts, screws, or other fasteners, this avoids the structural strength reduction caused by openings in the defogging module 20, ensuring reliable connection and extending service life.
[0024] The plate-type defogging module frame installation structure of this utility model, when installed in the cooling tower body, allows saturated hot and humid air flowing from bottom to top in the tower to pass through the defogging module 20 along the height direction, while dry and cold air in the tower passes through the defogging module 20 along the width direction. The two airflows are isolated from each other and heat exchange occurs in the defogging module 20, thereby causing water vapor in the saturated hot air to condense, saving water and also achieving the defogging effect.
[0025] Multiple packing plates 21 are stacked together, and adjacent packing plates 21 are rotated 90° relative to each other. The edges of the packing plates 21 are inclinedly provided with connecting parts 212, and the connecting parts 212 extend horizontally to form extension parts 213. The two extension parts 213 on two adjacent packing plates 21 fit together to form an overlap 210.
[0026] The packing plate 21 in this utility model can adopt the substrate structure in the Chinese patent document with authorization announcement number CN217737947U (patent name: a heat exchange condensation module, heat exchanger and defogging water-saving natural ventilation cooling tower). In this embodiment, the extension 213 is equivalent to the extension in the above-mentioned patent document, and the boss 211 is equivalent to the boss in the above-mentioned patent document. In addition, in this embodiment, the defogging module 20 also adopts the same dry cold channel (for the outside air to flow through the defogging module in the width direction) and humid heat channel (for the saturated humid heat air inside the tower to flow through the defogging module in the height direction) structure as in the above-mentioned patent document, which will not be described in detail here.
[0027] The frame 11 includes a horizontal limiting ring 111 and a vertical limiting ring 112. The horizontal limiting ring 111 has a horizontal rectangular ring structure, and the vertical limiting ring 112 has a ring structure that extends through both ends. The vertical limiting ring 112 is vertically arranged, and the horizontal limiting ring 111 and the vertical limiting ring 112 are perpendicular to each other. The space enclosed by the horizontal limiting ring 111 and the vertical limiting ring 112 forms a corner 110, and the ends of the four angle steels 12 are respectively set at the four corners of the corner 110. The top of the defogging module 20 is attached to the horizontal limiting ring 111 of the upper frame 11, the bottom of the defogging module 20 is attached to the horizontal limiting ring 111 of the lower frame 11, and the surface of the end of the overlapping edge 210 is attached to the vertical limiting ring 112 of the frame 11.
[0028] Furthermore, the upper and lower ends of the angle steel 12 abut against the two transverse limiting rings 111 respectively, and the first side 121 and the second side 122 are both in contact with the inner ring wall of the longitudinal limiting ring 112.
[0029] In this embodiment, the first side 121 has a first connecting hole 1211 at both ends along the longitudinal direction, and the longitudinal limiting ring 112 has a second connecting hole 1121 corresponding to the first connecting hole 1211. The first connecting hole 1211 and the second connecting hole 1121 are fixedly connected by rivets and are not easy to fall off.
[0030] Both the frame 11 and the angle steel 12 are integrally formed structures, which facilitates processing and helps control production costs. In addition, the frame 11 and the angle steel 12 are made of 316L stainless steel to ensure that the frame 10 has good corrosion resistance and excellent high-temperature strength processing performance, which extends the service life and is easy to process.
[0031] Based on the above-described preferred embodiments of this utility model, and through the foregoing description, those skilled in the art can make various changes and modifications without departing from the scope of this utility model. The technical scope of this utility model is not limited to the contents of the specification, but must be determined according to the scope of the claims.
Claims
1. A panel mist eliminator module frame mounting structure comprising a frame and a mist eliminator module disposed within the frame, characterized by: The frame includes upper and lower frame borders and four angle steels vertically connected within the two frame borders. The upper and lower sides of the defogging module are fitted with the horizontal edges of the frame borders. The defogging module includes multiple filler plates stacked sequentially along the horizontal direction. A vertical overlap is formed at the edges of each pair of adjacent filler plates. A boss is provided on the surface of the filler plate. The angle steel includes a first side and a second side that are perpendicular to each other. The surface of the outermost overlap is fitted with the first side, and the surface of the end of the overlap is fitted with the longitudinal edge of the frame border. Some of the bosses on the outermost filler plate are fitted with the second side.
2. The panel mist eliminator module frame mounting structure of claim 1 wherein: The two adjacent packing plates are rotated 90° apart. The edge of the packing plate is inclined and has a connecting part. The connecting part extends horizontally to form an extension part. The two extension parts on the two adjacent packing plates fit together to form an overlap.
3. The plate-type defogging module frame installation structure as described in claim 1, characterized in that: The frame includes mutually perpendicular horizontal limiting rings and vertical limiting rings. The space enclosed by the horizontal limiting rings and the vertical limiting rings forms a corner, and the ends of the four angle steels are respectively set at the four corners of the corner.
4. The panel mist eliminator module frame mounting structure of claim 3 wherein: The top of the defogging module is fitted with the horizontal limiting ring of the upper frame, the bottom of the defogging module is fitted with the horizontal limiting ring of the lower frame, and the surface of the overlapping edge is fitted with the vertical limiting ring of the frame.
5. The panel mist eliminator module frame mounting structure of claim 3 wherein: The upper and lower ends of the angle steel abut against two transverse limiting rings respectively, and the first side and the second side are both in contact with the inner ring wall of the longitudinal limiting ring.
6. The plate-type defogging module frame installation structure as described in claim 3, characterized in that: The first side has a first connecting hole at both ends along the longitudinal direction, and the longitudinal limiting ring has a second connecting hole corresponding to the first connecting hole. The first connecting hole and the second connecting hole are fixedly connected by rivets.
7. The panel mist eliminator module frame mounting structure of claim 1 wherein: Both the frame and the angle steel are integrally formed structures.
8. The panel mist eliminator module frame mounting structure of claim 1 wherein: Both the frame and the angle steel are made of 316L stainless steel.
Citation Information
Patent Citations
Heat exchange condensation module, heat exchanger and fog-dissipation water-saving natural ventilation cooling tower
CN217737947U