Fog dissipation and water saving cooling tower convenient to clean
By introducing exchange cleaning and power reciprocating mechanisms into the mist-elimination and water-saving cooling tower, the problem of difficulty in cleaning the air mixer is solved, preventing mold growth and reducing fin blockage are achieved, and the heat exchange efficiency and reliability of the cooling tower are improved.
Patent Information
- Application Number
- CN202510538680.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-27
- Publication Date
- 2025-07-04
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing mist-elimination and water-saving cooling towers are difficult to clean the air mixer, causing mold to grow and may clog the fins, affecting the heat exchange efficiency.
A mist-saving water-saving cooling tower including an exchange cleaning mechanism, a closed anti-return mechanism and a power reciprocating mechanism is designed. The air mixer is regularly cleaned through a high-pressure nozzle and a power device to prevent mold from growing and blocking.
The regular cleaning of the air mixer is realized, which reduces the growth of mold, reduces the impact on heat exchange efficiency, reduces the chance of fins blockage, and improves the reliability of the cooling tower.
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Figure CN120252382A_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the technical field of defogging and water-saving cooling towers, and in particular relates to a defogging and water-saving cooling tower which is easy to clean. Background Art
[0002] Currently, 80% of industrial water is cooling water, which dissipates heat through evaporation to cool products, materials or equipment. In the process of recycling, in addition to a small amount of sewage and leakage, 90% of cooling water is lost, which is the evaporation loss in the wet cooling link of the cooling tower. In order to maintain normal process production, a large amount of fresh water needs to be added. Therefore, reducing the evaporation loss in the cooling tower is the current direction of industrial water circulation and water conservation.
[0003] In the process of cold air cooling circulating water in the mechanical ventilation cooling tower, the cold air becomes saturated hot and humid air after heat exchange with water inside the cooling tower. Due to the current improvement of environmental protection requirements, the relevant requirements for cooling towers are also correspondingly improved. In addition, due to the low height of the mechanical ventilation cooling tower, the drifting of fog affects the visibility of surrounding residential areas and traffic roads, destroys the urban environment, causes the humidity in the downwind area to rise, and the plume falls on the ground, causing the road around the cooling tower to be slippery or icy, affecting the safe production of the factory and bringing great safety hazards to the surrounding traffic. With people's increasing attention to environmental protection, it is becoming more and more important for cooling towers to eliminate plume.
[0004] At present, the defogging and water-saving cooling tower introduces cold air, which is mixed with the hot water inside and cooled to become secondary hot water. The warm air continues to rise, contacts the air mixer, and is cooled again to form unsaturated air out of the tower. In this process, the air mixer may contact humid air at any time. However, it is difficult to clean the air mixer inside the defogging and water-saving cooling tower at this stage. If it is not cleaned, it is easy to breed mold, which affects the heat exchange efficiency. If the mold is not cleaned for a long time, it may even block the gap between the fins and affect the subsequent use.
[0005] The information disclosed in this background technology section is only intended to enhance the understanding of the overall background of the invention and should not be regarded as an acknowledgment or any form of suggestion that the information constitutes the prior art already known to a person skilled in the art. Summary of the invention
[0006] The purpose of the present invention is to provide a defogging and water-saving cooling tower which is easy to clean, which can solve the problem that the air mixer in the existing defogging and water-saving cooling tower is difficult to clean, mold is easily grown on the air mixer, and even the fins of the air mixer are blocked.
[0007] In order to achieve the above object, a technical solution provided by a specific embodiment of the present invention is as follows:
[0008] An anti-fog water-saving cooling tower that is convenient for cleaning, comprising: a cooling tower body, an exchange and cleaning mechanism, a pair of closed anti-backflow mechanisms, and a pair of power reciprocating mechanisms;
[0009] An air mixer is installed inside the cooling tower body;
[0010] An exchange and cleaning mechanism is fixedly installed inside the cooling tower body. The exchange and cleaning mechanism includes an exchange temporary storage bin. On both sides of the exchange temporary storage bin, there are exchange spraying bins. On one side of the exchange spraying bin close to the air mixer, a number of uniformly distributed high-pressure nozzles are fixedly installed. On one side of the cooling tower body, an exchange water pump is fixedly installed. On the side of the cooling tower body far from the exchange water pump, an exchange air flow bin is fixedly installed. There are a pair of exchange communication pipes on the cooling tower body;
[0011] A pair of closed anti-backflow mechanisms are installed between the exchange communication pipe and the exchange temporary storage bin;
[0012] A pair of power reciprocating mechanisms are installed inside the cooling tower body.
[0013] In one or more embodiments of the present invention, an exchange compression hose is installed between the exchange temporary storage bin and the exchange spraying bin, connecting the exchange temporary storage bin and the exchange spraying bin, so that the air or moisture in the exchange temporary storage bin can enter the exchange spraying bin, enabling the high-pressure nozzles to be replenished with air or moisture at any time;
[0014] The exchange compression hose penetrates through the exchange temporary storage bin and the exchange spraying bin, facilitating the connection between the exchange temporary storage bin and the exchange spraying bin and the flow of air or moisture;
[0015] An exchange injection pipe is installed between the exchange water pump and the exchange communication pipe, connecting the exchange water pump and the exchange communication pipe, so that the water extracted by the exchange water pump can be injected into the exchange communication pipe, replenishing the water in the exchange communication pipe, and further replenishing the water in the exchange temporary storage bin. The exchange injection pipe penetrates through the exchange communication pipe.
[0016] In one or more embodiments of the present invention, an exchange motor is fixedly installed on one side of the exchange air flow bin, which can drive the rotation of the exchange fan, providing corresponding power for the rotation of the exchange fan and corresponding support for the installation of the exchange fan. The exchange motor penetrates through the exchange air flow bin;
[0017] An exchange fan is fixedly installed on the exchange motor, which can drive the flow of air, providing corresponding power for the flow of air and continuously injecting air into the exchange air flow bin. The exchange communication pipe penetrates through the exchange air flow bin.
[0018] In one or more embodiments of the present invention, the closed anti-backflow mechanism includes a closed anti-backflow pipeline, which connects the exchange connection pipeline and the exchange temporary storage bin, enabling the air and moisture in the exchange connection pipeline to be injected into the exchange temporary storage bin. The closed anti-backflow pipeline penetrates through the exchange connection pipeline and the exchange temporary storage bin;
[0019] A closed anti-backflow bracket is fixedly installed in the closed anti-backflow pipeline, facilitating the sliding of the closed anti-backflow sliding rod, providing corresponding support for the sliding of the closed anti-backflow sliding rod, reducing the probability of the closed anti-backflow sliding rod tilting, and enhancing the stability of the closed anti-backflow sliding rod;
[0020] A closed anti-backflow sliding rod is slidably installed in the closed anti-backflow bracket, capable of supporting the closed anti-backflow sealing plate. When the pressure in the closed anti-backflow pipeline is too high, the closed anti-backflow sealing plate is pushed open, causing the closed anti-backflow sliding rod to slide.
[0021] In one or more embodiments of the present invention, the closed anti-backflow sliding rod penetrates through the closed anti-backflow bracket, and a closed anti-backflow spring is sleeved outside the closed anti-backflow sliding rod, capable of supporting the closed anti-backflow sliding rod, enabling the closed anti-backflow sliding rod to return to the initial position after sliding;
[0022] A closed anti-backflow sealing plate is fixedly installed on the lower side of the closed anti-backflow sliding rod, capable of closing the closed anti-backflow pipeline, reducing the possibility of air or moisture leakage in the closed anti-backflow pipeline, and controlling the contents in the exchange temporary storage bin. The closed anti-backflow sealing plate matches the closed anti-backflow pipeline.
[0023] In one or more embodiments of the present invention, the power reciprocating mechanism includes a power reciprocating bracket, which can fix the installation of the power reciprocating motor, reducing the probability of the power reciprocating motor detaching;
[0024] A power reciprocating motor is fixedly installed on the power reciprocating bracket, capable of driving the rotation of the power reciprocating driving gear, providing corresponding power for the rotation of the power reciprocating driving gear. The power reciprocating motor penetrates through the power reciprocating bracket;
[0025] A power reciprocating driving gear is fixedly installed on the power reciprocating motor, capable of driving the rotation of the power synchronous toothed belt, and enabling the power reciprocating driven gear to rotate synchronously through the transmission of the power synchronous toothed belt.
[0026] In one or more embodiments of the present invention, power reciprocating driven gears are provided on both sides of the power reciprocating driving gear, capable of driving the rotation of the power threaded rod, providing corresponding power for the rotation of the power threaded rod;
[0027] A pair of power reciprocating driven gear sleeves are provided with a power synchronous toothed belt, which plays a role in transmission, enabling the power reciprocating driving gear to drive the rotation of the power reciprocating driven gear. The power synchronous toothed belt is matched with both the power reciprocating driven gear and the power reciprocating driving gear.
[0028] In one or more embodiments of the present invention, a power sealing chamber is provided outside the power synchronous toothed belt, which can protect each structure inside the power sealing chamber and reduce the influence of water vapor inside the cooling tower body on the structures inside the power sealing chamber.
[0029] The power sealing chamber is fixedly installed with the power reciprocating bracket. A pair of power threaded rods are rotatably installed on both sides of the exchange and temporary storage chamber, which can drive the displacement of the power positioning block through rotation, enabling the power positioning block to drive the displacement of the exchange spraying chamber and ensuring the balance of the exchange spraying chamber.
[0030] In one or more embodiments of the present invention, the power threaded rod is fixedly installed with the power reciprocating driven gear. The power threaded rod penetrates through the power sealing chamber, and a power seal is installed between the power threaded rod and the power sealing chamber, improving the sealing performance between the power threaded rod and the power sealing chamber and reducing the probability of water vapor entering from the power threaded rod.
[0031] In one or more embodiments of the present invention, a power positioning block is installed on the power threaded rod, which can support the exchange spraying chamber, reducing the probability of the exchange spraying chamber tilting, enabling the exchange spraying chamber to better drive the high-pressure nozzle to clean the air mixer. The power positioning block is matched with the power threaded rod and is fixedly installed with the exchange spraying chamber.
[0032] Compared with the prior art, through the setting of corresponding mechanisms, the air mixer inside the fog-eliminating and water-saving cooling tower of the present invention can be cleaned regularly, reducing the growth of mold, reducing the influence on the heat exchange efficiency of the fog-eliminating and water-saving cooling tower, and at the same time, reducing the probability of mold clogging the fins of the air mixer and minimizing the impact on subsequent use. BRIEF DESCRIPTION OF THE DRAWINGS
[0033] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for the description of the embodiments or the prior art. Obviously, the drawings in the following description are only some embodiments recorded in the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.
[0034] Figure 1 It is a first three-dimensional sectional view of a fog-eliminating and water-saving cooling tower that is easy to clean in an embodiment of the present invention.
[0035] Figure 2 is Figure 1 the structural schematic diagram of part A in
[0036] Figure 3 is Figure 1 the structural schematic diagram of part B in
[0037] Figure 4 the second three-dimensional sectional view of a fog-eliminating and water-saving cooling tower convenient for cleaning in an embodiment of the present invention;
[0038] Figure 5 is Figure 4 the structural schematic diagram of part C in
[0039] Figure 6 the third three-dimensional sectional view of a fog-eliminating and water-saving cooling tower convenient for cleaning in an embodiment of the present invention;
[0040] Figure 7 is Figure 6 the structural schematic diagram of part D in
[0041] Figure 8 is Figure 6 the structural schematic diagram of part E in
[0042] Figure 9 the rear view of a fog-eliminating and water-saving cooling tower convenient for cleaning in an embodiment of the present invention;
[0043] Figure 10 the three-dimensional view of a fog-eliminating and water-saving cooling tower convenient for cleaning in an embodiment of the present invention.
[0044] Main reference numeral description:
[0045] 1 - Cooling tower body, 101 - Air mixer, 2 - Exchange and cleaning mechanism, 201 - Exchange temporary storage bin, 202 - Exchange spraying bin, 203 - Exchange water pump, 204 - Exchange air flow bin, 205 - Exchange communication pipeline, 206 - Exchange compression hose, 207 - Exchange injection pipeline, 208 - Exchange motor, 209 - Exchange fan, 3 - Closed anti-backflow mechanism, 301 - Closed anti-backflow pipeline, 302 - Closed anti-backflow bracket, 303 - Closed anti-backflow slide bar, 304 - Closed anti-backflow spring, 305 - Closed anti-backflow sealing plate, 4 - Power reciprocating mechanism, 401 - Power reciprocating bracket, 402 - Power reciprocating motor, 403 - Power reciprocating driving gear, 404 - Power reciprocating driven gear, 405 - Power synchronous toothed belt, 406 - Power seal chamber, 407 - Power threaded rod, 408 - Power seal, 409 - Power positioning block. Detailed implementation manners
[0046] To enable those skilled in the art to better understand the technical solutions in the present invention, the following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all of the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the scope of protection of the present invention.
[0047] As Figures 1 to 10 shown, a fog-eliminating and water-saving cooling tower that is easy to clean in an embodiment of the present invention includes: a cooling tower body 1, an exchange and cleaning mechanism 2, a pair of closed anti-backflow mechanisms 3, and a pair of power reciprocating mechanisms 4.
[0048] As Figures 1 to 10 shown, an air mixer 101 is installed in the cooling tower body 1, and an exchange and cleaning mechanism 2 is fixedly installed in the cooling tower body 1. The exchange and cleaning mechanism 2 includes an exchange temporary storage bin 201, which can temporarily store air and moisture, and can introduce water and air into the exchange temporary storage bin 201.
[0049] Among them, exchange spraying bins 202 are provided on both sides of the exchange temporary storage bin 201, which can be driven to displace and reciprocally clean the air mixer 101. A number of evenly distributed high-pressure nozzles are fixedly installed on the side of the exchange spraying bin 202 close to the air mixer 101.
[0050] In addition, an exchange water pump 203 is fixedly installed on one side of the cooling tower body 1, which can extract the moisture in the cooling tower body 1 and inject the moisture into the exchange connection pipeline 205 to facilitate the cleaning of the air mixer 101.
[0051] In addition, an exchange air flow bin 204 is fixedly installed on the side of the cooling tower body 1 away from the exchange water pump 203, which provides space for the installation of the exchange fan 209. A pair of exchange connection pipelines 205 are provided on the cooling tower body 1 to facilitate the circulation of air and moisture.
[0052] As Figures 1 to 8 shown, an exchange compression hose 206 is installed between the exchange temporary storage bin 201 and the exchange spraying bin 202, which connects the exchange temporary storage bin 201 and the exchange spraying bin 202, so that the air or moisture in the exchange temporary storage bin 201 can enter the exchange spraying bin 202, enabling the high-pressure nozzles to be replenished with air or moisture at any time.
[0053] Among them, the exchange compression hose 206 penetrates through the exchange temporary storage bin 201 and the exchange spraying bin 202, facilitating the connection between the exchange temporary storage bin 201 and the exchange spraying bin 202 and the circulation of air or moisture.
[0054] In addition, an exchange injection pipe 207 is installed between the exchange water pump 203 and the exchange connection pipe 205, which connects the exchange water pump 203 and the exchange connection pipe 205, enabling the water pumped by the exchange water pump 203 to be injected into the exchange connection pipe 205, replenishing the water in the exchange connection pipe 205, and further replenishing the water in the exchange temporary storage bin 201. The exchange injection pipe 207 is arranged through the exchange connection pipe 205.
[0055] As Figures 1 to 7 shown, an exchange motor 208 is fixedly installed on one side of the exchange air flow bin 204, which can drive the rotation of the exchange fan 209, providing corresponding power for the rotation of the exchange fan 209 and corresponding support for the installation of the exchange fan 209. The exchange motor 208 is arranged through the exchange air flow bin 204.
[0056] In addition, an exchange fan 209 is fixedly installed on the exchange motor 208, which can drive the flow of air, providing corresponding power for the flow of air, enabling air to be continuously injected into the exchange air flow bin 204. The exchange connection pipe 205 is arranged through the exchange air flow bin 204.
[0057] As Figures 1 to 7 shown, a pair of closed anti - backflow mechanisms 3 are installed between the exchange connection pipe 205 and the exchange temporary storage bin 201. The closed anti - backflow mechanism 3 includes a closed anti - backflow pipe 301, which connects the exchange connection pipe 205 and the exchange temporary storage bin 201, enabling the air and water in the exchange connection pipe 205 to be injected into the exchange temporary storage bin 201. The closed anti - backflow pipe 301 is arranged through the exchange connection pipe 205 and the exchange temporary storage bin 201.
[0058] Among them, a closed anti - backflow bracket 302 is fixedly installed in the closed anti - backflow pipe 301, facilitating the sliding of the closed anti - backflow slide bar 303, providing corresponding support for the sliding of the closed anti - backflow slide bar 303, reducing the probability of the closed anti - backflow slide bar 303 tilting, and improving the stability of the closed anti - backflow slide bar 303.
[0059] In addition, a closed anti - backflow slide bar 303 is slidably installed in the closed anti - backflow bracket 302, which can support the closed anti - backflow sealing plate 305. When the pressure in the closed anti - backflow pipe 301 is too high, the closed anti - backflow sealing plate 305 is pushed open, causing the closed anti - backflow slide bar 303 to slide.
[0060] As Figures 1 to 9 shown, the closed anti - backflow slide bar 303 is arranged through the closed anti - backflow bracket 302, and a closed anti - backflow spring 304 is sleeved outside the closed anti - backflow slide bar 303, which can support the closed anti - backflow slide bar 303, enabling the closed anti - backflow slide bar 303 to return to the initial position after sliding.
[0061] In addition, a sealing anti-backslide plate 305 is fixedly installed on the lower side of the sealing anti-backslide rod 303, which can seal the sealing anti-back pipe 301, reducing the possibility of air or moisture leakage in the sealing anti-back pipe 301, controlling the contents in the exchange and temporary storage bin 201, and the sealing anti-backslide plate 305 matches the sealing anti-back pipe 301.
[0062] As Figures 1 to 8 shown, a pair of power reciprocating mechanisms 4 are installed in the cooling tower body 1. The power reciprocating mechanism 4 includes a power reciprocating bracket 401, which can fix the installation of the power reciprocating motor 402, reducing the probability of the power reciprocating motor 402 disengaging.
[0063] Among them, a power reciprocating motor 402 is fixedly installed on the power reciprocating bracket 401, which can drive the rotation of the power reciprocating driving gear 403, providing corresponding power for the rotation of the power reciprocating driving gear 403. The power reciprocating motor 402 is arranged through the power reciprocating bracket 401.
[0064] In addition, a power reciprocating driving gear 403 is fixedly installed on the power reciprocating motor 402, which can drive the rotation of the power synchronous toothed belt 405, and through the transmission of the power synchronous toothed belt 405, the power reciprocating driven gear 404 rotates synchronously.
[0065] As Figures 1 to 8 shown, power reciprocating driven gears 404 are arranged on both sides of the power reciprocating driving gear 403, which can drive the rotation of the power threaded rod 407, providing corresponding power for the rotation of the power threaded rod 407.
[0066] In addition, a pair of power reciprocating driven gears 404 are sleeved with a power synchronous toothed belt 405, which plays a role in transmission, enabling the power reciprocating driving gear 403 to drive the rotation of the power reciprocating driven gear 404. The power synchronous toothed belt 405 matches both the power reciprocating driven gear 404 and the power reciprocating driving gear 403.
[0067] As Figures 1 to 4 shown, a power sealing chamber 406 is arranged outside the power synchronous toothed belt 405, which can protect each structure in the power sealing chamber 406, reducing the influence of water vapor in the cooling tower body 1 on the structures in the power sealing chamber 406.
[0068] Among them, the power sealing chamber 406 is fixedly installed with the power reciprocating bracket 401. A pair of power threaded rods 407 are rotatably installed on both sides of the exchange and temporary storage bin 201, which can drive the displacement of the power positioning block 409 through rotation, enabling the power positioning block 409 to drive the displacement of the exchange spraying chamber 202 and ensuring the balance of the exchange spraying chamber 202.
[0069] As Figures 1 to 6As shown, the power screw rod 407 is fixedly installed with the power reciprocating driven gear 404. The power screw rod 407 penetrates through the power seal chamber 406. A power seal 408 is installed between the power screw rod 407 and the power seal chamber 406, which improves the sealing performance between the power screw rod 407 and the power seal chamber 406 and reduces the probability of water vapor entering from the power screw rod 407.
[0070] As Figures 1 to 8 As shown, a power positioning block 409 is installed on the power screw rod 407, which can support the exchange spraying chamber 202, reduce the probability of the exchange spraying chamber 202 tilting, and enable the exchange spraying chamber 202 to better drive the high-pressure nozzle to clean the air mixer 101. The power positioning block 409 matches the power screw rod 407, and the power positioning block 409 is fixedly installed with the exchange spraying chamber 202.
[0071] For those skilled in the art, it is obvious that the present invention is not limited to the details of the above exemplary embodiments, and can be implemented in other specific forms without departing from the spirit or basic characteristics of the present invention. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-restrictive. The scope of the present invention is defined by the appended claims rather than the above description. Therefore, all changes falling within the meaning and scope of the equivalent elements of the claims are intended to be included in the present invention. Any reference signs in the claims should not be regarded as limiting the claimed rights.
[0072] In addition, it should be understood that although this specification is described according to embodiments, not every embodiment only contains an independent technical solution. This narrative way of the specification is only for clarity. Those skilled in the art should regard the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.
Claims
1. A fog-eliminating and water-saving cooling tower that is convenient for cleaning, characterized in that, Including: A cooling tower body, in which an air mixer is installed; An exchange and cleaning mechanism, fixedly installed in the cooling tower body. The exchange and cleaning mechanism includes an exchange temporary storage bin, and exchange spraying bins are arranged on both sides of the exchange temporary storage bin. A number of evenly distributed high-pressure nozzles are fixedly installed on one side of the exchange spraying bin close to the air mixer. An exchange water pump is fixedly installed on one side of the cooling tower body, and an exchange air flow bin is fixedly installed on the side of the cooling tower body far from the exchange water pump. A pair of exchange communication pipes are arranged on the cooling tower body; A pair of closed anti-backflow mechanisms, installed between the exchange communication pipe and the exchange temporary storage bin; A pair of power reciprocating mechanisms, fixedly installed in the cooling tower body.
2. The fog-eliminating and water-saving cooling tower convenient for cleaning according to claim 1, wherein, An exchange compression hose is installed between the exchange temporary storage bin and the exchange spraying bin, and the exchange compression hose penetrates through the exchange temporary storage bin and the exchange spraying bin. An exchange injection pipe is installed between the exchange water pump and the exchange communication pipe, and the exchange injection pipe penetrates through the exchange communication pipe.
3. The fog-eliminating and water-saving cooling tower convenient for cleaning according to claim 2, characterized in that An exchange motor is fixedly installed on one side of the exchange air flow bin, the exchange motor penetrates through the exchange air flow bin, and an exchange fan is fixedly installed on the exchange motor. The exchange communication pipe penetrates through the exchange air flow bin.
4. A fog-eliminating and water-saving cooling tower that is easy to clean according to claim 1, characterized in that, The closed anti-backflow mechanism includes a closed anti-backflow pipe, the closed anti-backflow pipe penetrates through the exchange communication pipe and the exchange temporary storage bin, a closed anti-backflow support is fixedly installed in the closed anti-backflow pipe, and a closed anti-backflow sliding rod is slidably installed in the closed anti-backflow support.
5. A fog-eliminating and water-saving cooling tower that is convenient for cleaning according to claim 4, wherein, The closed anti-backflow sliding rod penetrates through the closed anti-backflow support, a closed anti-backflow spring is sleeved outside the closed anti-backflow sliding rod, a closed anti-backflow sealing plate is fixedly installed on the lower side of the closed anti-backflow sliding rod, and the closed anti-backflow sealing plate matches the closed anti-backflow pipe.
6. The fog-eliminating and water-saving cooling tower convenient for cleaning according to claim 1, wherein The power reciprocating mechanism includes a power reciprocating support, a power reciprocating motor is fixedly installed on the power reciprocating support, the power reciprocating motor penetrates through the power reciprocating support, and a power reciprocating driving gear is fixedly installed on the power reciprocating motor.
7. The fog-eliminating and water-saving cooling tower convenient for cleaning according to claim 6, wherein, Power reciprocating driven gears are arranged on both sides of the power reciprocating driving gear, and a power synchronous toothed belt is sleeved outside a pair of power reciprocating driven gears. The power synchronous toothed belt matches both the power reciprocating driven gear and the power reciprocating driving gear.
8. A fog-eliminating and water-saving cooling tower that is convenient for cleaning according to claim 7, characterized in that, A power sealing bin is arranged outside the power synchronous toothed belt, the power sealing bin is fixedly installed with the power reciprocating support, and a pair of power threaded rods are rotatably installed on both sides of the exchange temporary storage bin.
9. The fog-eliminating and water-saving cooling tower convenient for cleaning according to claim 8, characterized in that, The power threaded rod is fixedly installed with the power reciprocating driven gear, the power threaded rod penetrates through the power sealing bin, and a power seal is installed between the power threaded rod and the power sealing bin.
10. A fog-eliminating and water-saving cooling tower that is convenient for cleaning according to claim 9, wherein, A power positioning block is installed on the power threaded rod, the power positioning block matches the power threaded rod, and the power positioning block is fixedly installed with the exchange spraying bin.