A new cooling tower mist elimination assembly
By introducing components such as a U-shaped base plate, a U-shaped shell, and a DC motor into the cooling tower, combined with heat exchange and dust removal cooling mechanisms, the problem of fog condensation caused by untreated hot and humid air is solved, achieving efficient air handling and fog removal effects.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHANGYU JINTAI COOLING TOWER CO LTD
- Filing Date
- 2025-08-29
- Publication Date
- 2026-07-31
AI Technical Summary
During operation, the existing cooling tower defogging components still cause untreated hot and humid air to condense into fog, resulting in poor defogging effect and failing to meet the needs of high-requirement scenarios.
It adopts components such as a U-shaped base plate, U-shaped shell, DC motor, fan blades, heat conduction column, heat dissipation plate and heat dissipation scale sleeve. Through heat exchange and air treatment, it promotes the condensation of water vapor in hot and humid air into water droplets. It also uses a dust removal and cooling mechanism for preliminary filtration and cooling to ensure that the air is discharged with less fog.
It effectively reduces the mist emitted from the cooling tower, improves the operating efficiency and environmental protection of the cooling tower, and ensures efficient and clean air treatment.
Smart Images

Figure CN224580765U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of cooling tower technology, and in particular to a novel cooling tower defogging component. Background Technology
[0002] Cooling towers, as heat dissipation devices used in industrial and civil fields, easily generate a large amount of water mist when hot and humid air is discharged and then cooled. This not only wastes water resources but also causes problems such as slippery conditions and icing in the surrounding environment, and can even affect the normal operation of the equipment. New cooling tower defogging components, as a key device for reducing or eliminating water mist in cooling towers, can effectively reduce water mist emissions by optimizing heat exchange, condensation recovery, or air treatment technologies. They play an important role in improving the operating efficiency of cooling towers and reducing environmental pollution.
[0003] Early cooling tower defogging devices mainly consisted of water collectors and ventilation systems. Water collectors were often flat plate or simple baffle structures, capable of intercepting only larger water droplets, lacking effective handling of fine water mist, resulting in poor defogging performance. Ventilation systems, due to their rudimentary design, struggled to precisely control airflow and failed to fully promote water mist evaporation and dissipation. With technological advancements, current defogging components employ high-efficiency water collectors, heating devices, or condensation systems. These systems improve interception efficiency by increasing the number of baffles in the water collector, using hydrophilic materials, or utilizing electric heating and hot air circulation to enhance the exhaust air. While heating is used to prevent water vapor condensation, existing defogging components still suffer from poor defogging performance. During operation, the heating device in existing components can raise the air temperature to prevent condensation, but it only heats a localized area at the air outlet, making it difficult to ensure temperature uniformity across the entire airflow cross-section. The condensation system, due to its limited condensation area and cooling efficiency, cannot quickly and completely condense the water vapor in large amounts of hot and humid air. These operational characteristics of existing components mean that some untreated hot and humid air will still condense into fog upon cooling after being discharged, making the overall defogging effect insufficient for demanding applications. Utility Model Content
[0004] To overcome the above shortcomings, this utility model provides a novel cooling tower defogging component, which aims to improve the problem in the prior art that untreated hot and humid air will still condense into fog after being discharged, making the overall defogging effect unsatisfactory.
[0005] To achieve the above objectives, this utility model adopts the following technical solution: a novel cooling tower defogging component, comprising a U-shaped base plate, a U-shaped shell fixedly connected to the top of the U-shaped base plate, a collection block fixedly connected to the middle of the top of the U-shaped base plate, multiple louvers fixedly connected to the front and rear sides of the inner wall of the U-shaped shell, an exhaust pipe connected to the top of the U-shaped shell, a DC motor fixedly connected to the top of the exhaust pipe, the output end of the DC motor passing through the exhaust pipe and fixedly connected to a fan blade, heat-conducting columns fixedly connected to the four corners of the bottom of the inner wall of the U-shaped shell, and two heat-conducting columns on the left and right sides. Inclined heat-absorbing plates are fixedly connected to the outer walls of the heat-conducting columns. A heat dissipation plate is fixedly connected to the top of each of the heat-conducting columns. A plurality of heat dissipation scale sleeves are fixedly connected to the top of the heat dissipation plate. An L-shaped water inlet pipe is provided at the middle of the bottom of the inner wall of the collection block. The front side of the outer wall of the L-shaped water inlet pipe penetrates the front side of the collection block. A plurality of diversion pipes are connected to the top of the outer wall of the L-shaped water inlet pipe. A plurality of rotating spray nozzles are rotatably connected to the bottom of the outer wall of the diversion pipe. A dust removal and cooling mechanism is provided on the right side of the inner wall of the collection block. The dust removal and cooling mechanism is used to cool and filter the intake air.
[0006] As a further description of the above technical solution: The dust removal and cooling mechanism includes a water pump. The bottom of the water pump is fixedly connected to the right side of the inner wall of the collection block. The top of the water pump is connected to a flexible hose, and the top of the flexible hose is connected to a water distribution pipe. Hollow frames are connected to the front and rear sides of the water distribution pipe. Filter cloth is fixedly connected to the inner wall of the hollow frames. The bottoms of the two hollow frames are respectively fixedly connected to the front and rear sides of the top of the collection block. Inclined filter plates are fixedly connected to the front and rear sides of the inner wall of the collection block. Sewage outlets are opened on the front and rear sides of the right side of the collection block. The left side of each sewage outlet is connected to the right side of the corresponding inclined filter plate. A plug is provided on the inner wall of the sewage outlet, and the outer wall of the plug engages with the inner wall of the sewage outlet.
[0007] As a further description of the above technical solution: The front side of the L-shaped water inlet pipe is connected to a water valve, and a handle ring is rotatably connected to the top of the water valve.
[0008] As a further description of the above technical solution: Multiple heat dissipation fins are fixedly connected to the top of the inner wall of the U-shaped base plate, and the outer wall size of the collection block is the same as the inner wall size of the U-shaped shell.
[0009] As a further description of the above technical solution: A control box is fixedly connected to the right side of the U-shaped shell, and a water baffle is fixedly connected to the top of the control box.
[0010] As a further description of the above technical solution: An observation window is provided on the top right side of the control box, and a sealing sleeve is fixedly connected to the outer wall of the observation window.
[0011] As a further description of the above technical solution: A concealed handle is fixedly connected to the bottom right side of the control box, and a lock hole is provided at the bottom right side of the concealed handle.
[0012] As a further description of the above technical solution: The bottom of the inclined heat absorber plate is fixedly connected to multiple partitions, and the bottom of the inclined heat absorber plate is rounded.
[0013] This utility model has the following beneficial effects: 1. In this utility model, by starting a DC motor, the fan blades are driven to rotate at high speed to generate suction, which draws in outside air and guides it through the louvers. The hot water is evenly distributed inside the U-shaped shell and sprayed through pipes to exchange heat with the air. After cooling, some water droplets fall into the collection block, and some form humid hot air. The humid hot air rises and comes into contact with the heat absorption plate and heat conduction column. The heat is conducted to the heat dissipation plate and heat dissipation scale sleeve, causing water vapor to condense into water droplets and flow into the collection block. The remaining humid hot air rises rapidly under the action of high temperature. The treated air is finally discharged from the cooling tower, reducing the generation of mist.
[0014] 2. In this utility model, by starting the water pump, water is pumped from the collection block to the water distribution pipe through the hose, and then flows to the hollow frame. The filter cloth inside the frame performs preliminary air filtration, intercepting dust and impurities. The water flows inside the frame, and the air temperature is reduced through heat exchange. The intercepted dust and impurities slide down to the drain port under the action of gravity. When cleaning, the plug is opened and the dust and impurities are discharged, thereby achieving the effect of dust removal and cooling. Attached Figure Description
[0015] Figure 1 This is a perspective view of a novel cooling tower defogging component proposed in this utility model; Figure 2 This is a front view of a novel cooling tower defogging component proposed in this utility model; Figure 3 This is a top view of a novel cooling tower defogging component proposed in this utility model; Figure 4 This is a schematic diagram of the structure of the collection block of a novel cooling tower demisting component proposed in this utility model; Figure 5 This is a schematic diagram of the inclined heat absorption plate of a novel cooling tower defogging component proposed in this utility model.
[0016] Legend: 1. U-shaped base plate; 2. Dust removal and cooling mechanism; 201. Water pump; 202. Hose; 203. Water distribution pipe; 204. Hollow frame; 205. Filter cloth; 206. Inclined filter plate; 207. Drain outlet; 208. Plug; 3. Collection block; 4. U-shaped shell; 5. Louvered plate; 6. Exhaust pipe; 7. DC motor; 8. Fan blade; 9. Heat conduction column; 10. Inclined heat absorption plate; 11. Heat dissipation plate; 12. Heat dissipation scale sleeve; 13. L-shaped water inlet pipe; 14. Diverter pipe; 15. Rotary spray nozzle; 16. Partition plate; 17. Water valve; 18. Hand ring; 19. Heat dissipation scale; 20. Control box; 21. Water baffle; 22. Observation window; 23. Sealing sleeve; 24. Concealed handle; 25. Keyhole. Detailed Implementation
[0017] 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.
[0018] Reference Figure 1 , Figure 4 and Figure 5This utility model provides an embodiment of a novel cooling tower defogging component, comprising a U-shaped base plate 1, a U-shaped shell 4 fixedly connected to the top of the U-shaped base plate 1, a collection block 3 fixedly connected to the middle of the top of the U-shaped base plate 1, and multiple louvers 5 fixedly connected to the front and rear sides of the inner wall of the U-shaped shell 4. A DC motor 7 is started first, and its output end drives the fan blades 8 to rotate at high speed inside the exhaust pipe 6, generating a strong suction force. The top of the U-shaped shell 4 is connected to the exhaust pipe 6, and the top of the exhaust pipe 6 is fixedly connected to the DC motor 7. The output end of the DC motor 7 passes through the exhaust pipe 6 and is fixedly connected to the fan blades 8. The system starts first, and its output end drives the fan blades 8 to rotate at high speed inside the exhaust pipe 6, generating a strong suction force. Heat-conducting columns 9 are fixedly connected to the four corners of the bottom of the inner wall of the U-shaped shell 4. Inclined heat-absorbing plates 10 are fixedly connected to the outer walls of the two heat-conducting columns 9 on the left and right sides, respectively. Heat dissipation plates 11 are fixedly connected to the tops of the multiple heat-conducting columns 9, and multiple heat dissipation scales 12 are fixedly connected to the tops of the heat dissipation plates 11. The heat in the water is absorbed by the air, causing the hot water to cool. Part of the sprayed water falls directly into the collection block 3, while some comes into contact with the inclined heat-absorbing plates 10 and the heat-conducting columns 9. The inclined heat-absorbing plates 10, relying on... The large surface area absorbs heat from the humid air. This heat is conducted through the heat-conducting column 9 to the top heat dissipation plate 11 and heat dissipation sleeve 12. Under the action of the heat dissipation plate 11 and heat dissipation sleeve 12, the heat is dissipated into the surrounding environment, causing water vapor in the humid air to condense rapidly into water droplets in the central area. These water droplets flow into the collection block 3 along the inner wall of the inclined heat-absorbing plate 10 and the U-shaped shell 4. Some of the humid air reaches the area around the heat dissipation plate 11 and heat dissipation sleeve 12, where its high temperature accelerates its rapid ascent. An L-shaped water inlet pipe 13 is installed at the bottom center of the inner wall of the collection block 3. The front side of the outer wall of the water pipe 13 penetrates the front side of the collection block 3. The top of the outer wall of the L-shaped water inlet pipe 13 is connected to multiple branch pipes 14. The bottom of the outer wall of the branch pipe 14 is rotatably connected to multiple rotating spray nozzles 15. The hot water will be sprayed out through the L-shaped water inlet pipe 13, branch pipes 14 and rotating spray nozzles 15, and fully contact the air to exchange heat. The heat in the water will be absorbed by the air, so that the hot water is cooled. Part of the sprayed water falls directly into the collection block 3. A dust removal and cooling mechanism 2 is provided on the right side of the inner wall of the collection block 3. The dust removal and cooling mechanism 2 is used to cool and filter the intake air. Specifically, the DC motor 7 starts first, and its output drives the fan blades 8 to rotate at high speed inside the exhaust pipe 6, generating a strong suction force that draws in outside air from both sides of the U-shaped shell 4. The airflow is then guided by the louvers 5, ensuring a more even distribution within the U-shaped shell 4. Simultaneously, it intercepts larger water droplets remaining in the air, further purifying it. Hot water from the air conditioner is sprayed through the L-shaped inlet pipe 13, the diverter pipe 14, and the rotating spray nozzle 15, fully contacting the air for heat exchange. The heat in the water is absorbed by the air, cooling the hot water. Part of the sprayed water falls directly into the collection block 3, while the other part, after heat exchange with the air, forms humid air. As the humid air rises, it comes into contact with the tilted hot water sprayed through the L-shaped inlet pipe 13, the diverter pipe 14, and the rotating spray nozzle 15, fully contacting the air for further heat exchange. In the heat exchange process, the heat in the water is absorbed by the air, cooling the hot water. Some of the sprayed water falls directly into the collection block 3, while some comes into contact with the inclined heat absorber plate 10 and the heat conduction column 9. The inclined heat absorber plate 10 absorbs heat from the humid air due to its large surface area. The heat is conducted through the heat conduction column 9 to the top heat dissipation plate 11 and heat dissipation scale sleeve 12. Under the action of the heat dissipation plate 11 and heat dissipation scale sleeve 12, the heat is dissipated into the surrounding environment, causing the water vapor in the humid air to condense into water droplets in the middle area. The water droplets flow into the collection block 3 along the inner wall of the inclined heat absorber plate 10 and the U-shaped shell 4. Meanwhile, some of the humid air comes to the vicinity of the heat dissipation plate 11 and heat dissipation scale sleeve 12. Under the action of their high temperature, the humid air rises rapidly. Finally, the treated air is discharged from the cooling tower through the exhaust pipe 6 and the fan blades 8, effectively reducing the generation of mist.
[0019] Reference Figure 2 , Figure 3 and Figure 4The dust removal and cooling mechanism 2 includes a water pump 201. The bottom of the water pump 201 is fixedly connected to the right side of the inner wall of the collection block 3. The top of the water pump 201 is connected to a flexible hose 202, and the top of the flexible hose 202 is connected to a water distribution pipe 203. Hollow frames 204 are connected to both the front and rear sides of the water distribution pipe 203. Filter cloth 205 is fixedly connected to the inner wall of the hollow frame 204. When the water pump 201 is started, the water in the collection block 3 is pumped through the flexible hose 202 to the water distribution pipe 203, and then distributed to the hollow frames 204 on both the front and rear sides. The filter cloth 205 inside the hollow frame 204 performs preliminary filtration of the air, intercepting dust and impurities. The bottom of the frame 204 is fixedly connected to the front and rear sides of the top of the collection block 3. Inclined filter plates 206 are fixedly connected to the front and rear sides of the inner wall of the collection block 3. Drainage ports 207 are opened on the front and rear sides of the right side of the collection block 3. The left side of the drainage port 207 is connected to the right side of the corresponding inclined filter plate 206. A plug 208 is provided on the inner wall of the drainage port 207. The outer wall of the plug 208 is engaged with the inner wall of the drainage port 207. Dust and impurities intercepted by the filter cloth 205 slide down the inclined filter plate 206 to the drainage port 207 under the action of gravity. When cleaning is required, simply open the plug 208 to discharge the dust and impurities. Specifically, by starting the water pump 201, the water in the collection block 3 can be pumped to the water distribution pipe 203 through the hose 202, and then distributed to the hollow frames 204 on the front and rear sides. The filter cloth 205 inside the hollow frame 204 performs preliminary filtration of the air, intercepting dust and impurities. At the same time, the water flows inside the hollow frame 204, and the air temperature is reduced through heat exchange, achieving the effect of dust removal and cooling. The dust and impurities intercepted by the filter cloth 205 slide down the inclined filter plate 206 to the drain port 207 under the action of gravity. When cleaning is required, simply open the plug 208 to discharge the dust and impurities, ensuring the continuous and efficient operation of the dust removal and cooling mechanism 2.
[0020] Reference Figure 1 , Figure 2 and Figure 4 The front of the L-shaped water inlet pipe 13 is connected to a water valve 17. The water valve 17 allows operators to easily adjust the cooling tower according to its actual operating needs. A handle ring 18 is rotatably connected to the top of the water valve 17, which improves the convenience and comfort of operating the water valve 17. Multiple heat dissipation fins 19 are fixedly connected to the top of the inner wall of the U-shaped base plate 1. The heat dissipation fins 19 can significantly increase the heat dissipation area of the top of the inner wall of the U-shaped base plate 1. The outer wall size of the collection block 3 is the same as the inner wall size of the U-shaped shell 4, so that the collection block 3 can be tightly embedded in the U-shaped shell 4 to form a relatively closed space. A control box 20 is fixedly connected to the right side of the U-shaped shell 4. The control box 20 can monitor and control the operating parameters of the cooling tower in real time. A baffle plate 21 is fixedly connected to the top of the control box 20, which can effectively block water droplets. Specifically, the water valve 17 allows operators to flexibly adjust the water inflow according to the actual operating needs of the cooling tower. The handle ring 18 improves the convenience and comfort of operating the water valve 17. The heat dissipation scales 19 significantly increase the heat dissipation area of the top of the inner wall of the U-shaped base plate 1. The outer wall size of the collection block 3 is the same as the inner wall size of the U-shaped shell 4, allowing the collection block 3 to be tightly embedded in the U-shaped shell 4, forming a relatively closed space. The control box 20 allows for real-time monitoring and control of the cooling tower's operating parameters. The baffle plate 21 effectively blocks water droplets, providing a protective barrier for the control box 20, ensuring the dryness and safety of the electrical components inside the control box 20, extending their service life, and ensuring the stable operation of the defogging component control system.
[0021] Reference Figure 2 , Figure 4 and Figure 5 An observation window 22 is provided on the top right side of the control box 20, providing operators with a direct way to observe the interior of the control box 20. A sealing sleeve 23 is fixedly connected to the outer wall of the observation window 22, which prevents external moisture, dust and impurities from entering the control box 20 through the gaps in the observation window 22. A concealed handle 24 is fixedly connected to the bottom right side of the control box 20, which can be integrated with the surface of the control box 20 when not in use. A lock hole 25 is provided at the bottom right side of the concealed handle 24, which enhances the security of the control box 20 and prevents unauthorized personnel from opening the control box 20 at will. Multiple partitions 16 are fixedly connected to the bottom of the inclined heat absorber plate 10, which can strengthen the structure and guide the air and water flow. The bottom of the inclined heat absorber plate 10 is rounded to reduce the resistance of water flow at the bottom of the inclined heat absorber plate 10. Specifically, the observation window 22 provides operators with a direct way to observe the internal conditions of the control box 20. The sealing sleeve 23 prevents external moisture, dust, and impurities from entering the control box 20 through the gaps in the observation window 22, avoiding damage to the internal electrical components and ensuring the stability and cleanliness of the internal environment of the control box 20, thereby further improving the reliability and service life of the control box 20. The concealed handle 24 can be integrated with the surface of the control box 20 when not in use, without occupying extra space, making the appearance of the control box 20 more concise. The lock hole 25 enhances the security of the control box 20, preventing unauthorized personnel from opening the control box 20 at will, avoiding misoperation or malicious damage, and protecting the normal operation of the electrical components and control system inside the control box 20. The partition 16 strengthens the structure and guides airflow and water flow. The rounded bottom of the inclined heat absorption plate 10 reduces the resistance of water flow at the bottom of the inclined heat absorption plate 10, allowing the water to flow more smoothly.
[0022] Working principle: The DC motor 7 starts first, and its output drives the fan blades 8 to rotate at high speed inside the exhaust pipe 6, generating a strong suction force that draws in outside air from both sides of the U-shaped shell 4. The airflow is then guided by the louvers 5, making the air more evenly distributed within the U-shaped shell 4. Simultaneously, it intercepts larger water droplets remaining in the air, further purifying it. Hot water from the air conditioner is sprayed through the L-shaped inlet pipe 13, the diverter pipe 14, and the rotating spray nozzle 15, fully contacting the air and exchanging heat. The heat in the water is absorbed by the air, cooling the hot water. Part of the sprayed water falls directly into the collection block 3, while the other part, after heat exchange with the air, forms humid air. During the rising process of the humid air... Upon contact with the inclined heat absorber plate 10 and the heat conduction column 9, the inclined heat absorber plate 10 absorbs heat from the humid air due to its large surface area. The heat is conducted through the heat conduction column 9 to the top heat dissipation plate 11 and heat dissipation scale sleeve 12. Under the action of the heat dissipation plate 11 and heat dissipation scale sleeve 12, the heat is dissipated into the surrounding environment, causing the water vapor in the humid air to condense into water droplets in the middle area. The water droplets flow into the collection block 3 along the inner wall of the inclined heat absorber plate 10 and the U-shaped shell 4. Meanwhile, some of the humid air will come to the area around the heat dissipation plate 11 and heat dissipation scale sleeve 12. Under the action of its high temperature, the humid air rises rapidly. Finally, the treated air is discharged from the cooling tower through the exhaust pipe 6 and the fan blades 8, effectively reducing the generation of mist. Furthermore, through the dust removal and cooling mechanism 2, after the water pump 201 is started, the water in the collection block 3 can be pumped to the water distribution pipe 203 through the hose 202. The water is then distributed to the hollow frame 204 on the front and rear sides. Inside the hollow frame 204, the filter cloth 205 performs preliminary filtration of the air, effectively intercepting dust and impurities. At the same time, the water flows inside the hollow frame 204, reducing the air temperature through the heat exchange process, thereby achieving the effects of dust removal and cooling. The dust and impurities intercepted by the filter cloth 205 slide down the inclined filter plate 206 to the drain port 207 under the action of gravity. When cleaning is required, simply open the plug 208 to discharge the dust and impurities, ensuring the continuous and efficient operation of the dust removal and cooling mechanism 2.
[0023] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. 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 new type of cooling tower mist eliminator assembly comprising a U-shaped bottom plate (1), characterized in that: A U-shaped shell (4) is fixedly connected to the top of the U-shaped base plate (1). A collection block (3) is fixedly connected to the middle of the top of the U-shaped base plate (1). Multiple louvers (5) are fixedly connected to the front and rear sides of the inner wall of the U-shaped shell (4). An exhaust pipe (6) is connected to the top of the U-shaped shell (4). A DC motor (7) is fixedly connected to the top of the exhaust pipe (6). The output end of the DC motor (7) passes through the exhaust pipe (6) and is fixedly connected to a fan blade (8). Heat-conducting columns (9) are fixedly connected to the four corners of the bottom of the inner wall of the U-shaped shell (4). Inclined heat-absorbing plates (10) are fixedly connected to the outer walls of the two heat-conducting columns (9) on the left and right sides, respectively. The top of each heat-conducting column (9) is fixedly connected to a heat sink (11), and the top of the heat sink (11) is fixedly connected to multiple heat sink sleeves (12). An L-shaped water inlet pipe (13) is provided at the middle of the bottom of the inner wall of the collection block (3). The front side of the outer wall of the L-shaped water inlet pipe (13) penetrates the front side of the collection block (3). The top of the outer wall of the L-shaped water inlet pipe (13) is connected to multiple diversion pipes (14). The bottom of the outer wall of the diversion pipe (14) is rotatably connected to multiple rotating spray nozzles (15). A dust removal and cooling mechanism (2) is provided on the right side of the inner wall of the collection block (3). The dust removal and cooling mechanism (2) is used to cool and filter the intake air.
2. A novel mist eliminator assembly for cooling towers as claimed in claim 1, wherein: The dust removal and cooling mechanism (2) includes a water pump (201). The bottom of the water pump (201) is fixedly connected to the right side of the inner wall of the collection block (3). The top of the water pump (201) is connected to a flexible hose (202). The top of the flexible hose (202) is connected to a water distribution pipe (203). Hollow frames (204) are connected to both the front and rear sides of the water distribution pipe (203). Filter cloth (205) is fixedly connected to the inner wall of the hollow frame (204). The bottoms of the two hollow frames (204) are... The front and rear sides of the top of the collection block (3) are fixedly connected respectively. Inclined filter plates (206) are fixedly connected to the front and rear sides of the inner wall of the collection block (3). The front and rear sides of the right side of the collection block (3) are provided with sewage outlets (207). The left side of the sewage outlet (207) is connected to the right side of the corresponding inclined filter plate (206). The inner wall of the sewage outlet (207) is provided with a plug (208). The outer wall of the plug (208) is engaged with the inner wall of the sewage outlet (207).
3. A novel mist eliminator assembly for cooling towers as claimed in claim 1, wherein: The front side of the L-shaped water inlet pipe (13) is connected to a water valve (17), and the top of the water valve (17) is rotatably connected to a handle ring (18).
4. A novel mist eliminator assembly for cooling towers as claimed in claim 1, wherein: The top of the inner wall of the U-shaped base plate (1) is fixedly connected with multiple heat dissipation scales (19), and the outer wall size of the collection block (3) is the same as the inner wall size of the U-shaped shell (4).
5. A novel mist eliminator assembly for cooling towers as claimed in claim 1, wherein: A control box (20) is fixedly connected to the right side of the U-shaped shell (4), and a baffle plate (21) is fixedly connected to the top of the control box (20).
6. A novel mist eliminator assembly for cooling towers as claimed in claim 5 wherein: An observation window (22) is provided on the top right side of the control box (20), and a sealing sleeve (23) is fixedly connected to the outer wall of the observation window (22).
7. A novel mist eliminator assembly for cooling towers as claimed in claim 5 wherein: A concealed handle (24) is fixedly connected to the bottom right side of the control box (20), and a lock hole (25) is provided at the bottom right side of the concealed handle (24).
8. A novel mist eliminator assembly for cooling towers as claimed in claim 1, wherein: The bottom of the inclined heat absorber plate (10) is fixedly connected with multiple partitions (16), and the bottom of the inclined heat absorber plate (10) is rounded.