Fog-dissipation water-saving cooling tower

By introducing cleaning spray, positioning adjustment, and displacement mechanisms into the anti-fogging and water-saving cooling tower, the problem of cleaning the rhomboid heat exchange fins has been solved, improving heat exchange efficiency and water saving rate, and reducing energy consumption.

CN121977367APending Publication Date: 2026-05-05XIAMEN XINGLIN SHUANGQUAN FRP CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
XIAMEN XINGLIN SHUANGQUAN FRP CO LTD
Filing Date
2026-02-06
Publication Date
2026-05-05

AI Technical Summary

Technical Problem

Current anti-fogging and water-saving cooling towers cannot effectively clean the diamond-shaped heat exchange fins, resulting in a decrease in the heat exchange efficiency between humid and hot air and dry and cold air, an increase in the moisture content of the exhaust air, and a significant drop in the water-saving rate.

Method used

A fog-eliminating and water-saving cooling tower was designed, which includes a cleaning spray mechanism, a positioning adjustment mechanism, and a displacement mechanism. These mechanisms regularly clean the rhomboid heat exchange plates, reducing the adhesion of dust, willow catkins, and microorganisms, and preventing the channels from being blocked by a mixture of biological slime and mold mycelium.

Benefits of technology

It improves the heat exchange efficiency between humid and hot air and dry and cold air, reduces airflow resistance, reduces fan energy consumption, and improves condensation efficiency and water saving rate.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN121977367A_ABST
    Figure CN121977367A_ABST
Patent Text Reader

Abstract

The invention discloses a fog-dispersal water-saving cooling tower which comprises a cooling tower body, a cleaning and spraying mechanism, a positioning and adjusting mechanism and a displacement mechanism, and a heat exchange module is arranged in the cooling tower body; the cleaning spraying mechanism comprises a cleaning pressure assembly arranged on the upper side of the heat exchange module and a cleaning containing assembly arranged on the cooling tower body. According to the fog-dispersal water-saving cooling tower disclosed by the invention, through the arrangement of corresponding mechanisms, the rhombic heat exchange sheets in the fog-dispersal water-saving cooling tower can be regularly cleaned, so that dust and catkin in air and microorganisms in circulating water are prevented from adhering to the surfaces of the rhombic heat exchange sheets; the blockage probability of a mixture of biological slime and mould hyphae to the channel is reduced, the heat exchange efficiency of wet and hot air and dry and cold air is stabilized, the resistance to airflow is reduced, the energy consumption of a fan is reduced, the condensation efficiency is further improved, the moisture content of exhausted air is reduced, and the water saving rate is improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This invention belongs to the field of cooling tower technology, and specifically relates to a mist-eliminating and water-saving cooling tower. Background Technology

[0002] Cooling towers are core heat dissipation devices in industrial production and civil buildings. They utilize the direct or indirect contact between water and air to dissipate heat from the circulating water to the atmosphere through evaporation and convection, thereby cooling the circulating water. They are widely used in systems that require circulating cooling.

[0003] Anti-fogging and water-saving cooling towers are energy-saving and consumption-reducing products upgraded from traditional cooling towers. The two are related and different in principle, structure and function. By adding special heat exchange modules and intelligent control components, they can achieve the dual goals of anti-fogging and water saving while retaining the original cooling function. They are the mainstream choice for current industrial water-saving transformation.

[0004] The working process of the defogging and water-saving cooling tower is based on the traditional cooling tower, with the addition of two key steps: condensation recovery and mixing and dilution. The basic heat exchange stage is the same as that of the traditional cooling tower. Then, the hot and humid air rises and passes through a special heat exchange module (such as diamond heat exchange plates and dual-channel heat exchange structure) to indirectly exchange heat with the dry and cold air introduced from the outside. The water vapor in the hot and humid air condenses into liquid water and flows back to the water collection basin to realize water resource recovery. The air with low moisture content after condensation is fully mixed with the hot and dry air that has been heated after heat exchange, further reducing the relative humidity of the air. Finally, no visible white fog will be formed when the air is discharged from the tower.

[0005] Currently, defogging and water-saving cooling towers introduce cold air, which mixes with the hot water inside, cooling down to become secondary hot water. The warm air continues to rise, contacting the diamond-shaped heat exchange fins, cooling down again, and forming unsaturated exhaust air. During this process, the diamond-shaped heat exchange fins are constantly in contact with humid air. However, current defogging and water-saving cooling towers have difficulty cleaning the diamond-shaped heat exchange fins. Dust, willow catkins, and microorganisms in the circulating water easily adhere to the surface of the diamond-shaped heat exchange fins, forming a mixture of biological slime and mold hyphae, which gradually clogs the channels. This not only reduces the heat exchange efficiency between humid and dry air, but also increases airflow resistance and fan energy consumption when the channels are blocked, leading to a decrease in condensation efficiency, an increase in the moisture content of the exhaust air, and a significant drop in water-saving rate.

[0006] Therefore, in order to address the aforementioned technical problems, it is necessary to provide a mist-eliminating and water-saving cooling tower.

[0007] The information disclosed in this background section is intended only to enhance the understanding of the overall background of the invention and should not be construed as an admission or in any way implying that the information constitutes prior art known to those skilled in the art. Summary of the Invention

[0008] The purpose of this invention is to provide a fog-reducing and water-saving cooling tower that can solve the problem that current fog-reducing and water-saving cooling towers are difficult to clean the diamond-shaped heat exchange fins inside, which not only leads to a decrease in the heat exchange efficiency between humid and hot air and dry and cold air, but also increases the moisture content of the exhaust air and significantly reduces the water-saving rate.

[0009] To achieve the above objectives, a specific embodiment of the present invention provides the following technical solution: A water-saving cooling tower with anti-fogging function includes: a cooling tower body, a cleaning spray mechanism, a positioning adjustment mechanism, and a displacement mechanism. The cooling tower body contains a heat exchange module; the cleaning spray mechanism includes a cleaning pressure component disposed on the upper side of the heat exchange module and a cleaning receiving component disposed on the cooling tower body; the positioning adjustment mechanism includes a spray component disposed below the cleaning pressure component, a spray control component disposed below the cleaning pressure component, and a spray power component disposed on one side of the spray component; the displacement mechanism is disposed on one side of the cooling tower body, and the displacement mechanism includes a synchronization component, a support component, and a displacement power component.

[0010] In one or more embodiments of the present invention, the heat exchange module is composed of a plurality of rhomboid heat exchange tubes, which are evenly distributed in the horizontal direction, and a plurality of spray components are provided, which are arranged one-to-one between two adjacent rhomboid heat exchange tubes.

[0011] In one or more embodiments of the present invention, the cleaning pressure assembly includes: a cleaning pressure chamber, a cleaning pressure plate, a pair of cleaning support rods, and a cleaning pressure spring. The cleaning pressure chamber is disposed on the upper side of the heat exchange module; the cleaning pressure plate is slidably disposed within the cleaning pressure chamber; the pair of cleaning support rods are disposed within the cleaning pressure chamber and pass through the cleaning pressure plate; the cleaning pressure spring is sleeved on the cleaning support rods and disposed on the upper side of the cleaning pressure plate.

[0012] In one or more embodiments of the present invention, the cleaning containment assembly includes: a cleaning containment chamber, a cleaning containment support pipe, a cleaning containment hose, and a cleaning containment water pump. The cleaning containment chamber is disposed on the cooling tower body; the cleaning containment support pipe is disposed within the cleaning pressure chamber and passes through the cleaning pressure chamber and the cleaning pressure plate; the cleaning containment hose is disposed between the cleaning containment support pipe and the cleaning containment chamber and passes through the cooling tower body and the cleaning containment chamber; the cleaning containment water pump is disposed within the cleaning containment chamber and is fixedly connected to the cleaning containment hose.

[0013] In one or more embodiments of the present invention, the spray assembly includes: a spray chamber, a pair of spray support nets, a spray support rod, and a pair of spray positioning seats. The spray chamber is disposed below the cleaning pressure chamber; the pair of spray support nets are disposed below the spray chamber; the spray support rod is disposed above the spray chamber; and the pair of spray positioning seats are rotatably disposed on both sides of the spray support rod and fixedly connected to the cleaning pressure chamber.

[0014] In one or more embodiments of the present invention, the spray control assembly includes a spray control valve and a spray control hose. The spray control valve is disposed below the cleaning pressure chamber and passes through the cleaning pressure chamber; the spray control hose is disposed between the spray control valve and the spray chamber and passes through the spray chamber.

[0015] In one or more embodiments of the present invention, the spray power assembly includes: a spray power motor, a pair of spray drive wheels, and a spray drive belt. The spray power motor is disposed on one side of the spray chamber; the pair of spray drive wheels are respectively disposed on one side of the spray control valve and on the spray support rod; the spray drive belt is disposed between the pair of spray drive wheels.

[0016] In one or more embodiments of the present invention, the synchronization component includes: a synchronization positioning chamber, a synchronization mounting rod, and a pair of synchronization bevel gears. The synchronization positioning chamber is disposed on one side of the cooling tower body; the synchronization mounting rod is disposed inside the synchronization positioning chamber; and the pair of synchronization bevel gears are disposed at both ends of the synchronization mounting rod.

[0017] In one or more embodiments of the present invention, the support assembly includes: a pair of support threaded rods, a support threaded block, and a support bevel gear. The pair of support threaded rods are rotatably disposed within the cooling tower body and pass through the cooling tower body and the synchronous positioning chamber; the support threaded block is disposed on the support threaded rods and matches the support threaded rods, and is fixedly connected to the cleaning pressure chamber; the support bevel gear is disposed at one end of the support threaded rods and meshes with the synchronous bevel gear.

[0018] In one or more embodiments of the present invention, the displacement power assembly includes: a displacement power motor, a pair of displacement power synchronous pulleys, and a displacement power synchronous belt. The displacement power motor is disposed on the synchronous positioning chamber; the pair of displacement power synchronous pulleys are respectively disposed on one side of the displacement power motor and on the synchronous mounting rod; the displacement power synchronous belt is disposed between the pair of displacement power synchronous pulleys and passes through the synchronous positioning chamber.

[0019] Compared with existing technologies, the anti-fogging and water-saving cooling tower of the present invention, through the setting of corresponding mechanisms, enables the diamond-shaped heat exchange plates inside the cooling tower to be cleaned regularly. This reduces the adhesion of dust, willow catkins, and microorganisms in the circulating water to the surface of the diamond-shaped heat exchange plates, and reduces the probability of blockage of the channels by the mixture of biological slime and mold mycelium. This not only stabilizes the heat exchange efficiency between humid and hot air and dry and cold air, but also reduces airflow resistance, reduces fan energy consumption, and thus improves condensation efficiency, reduces the moisture content of the exhaust air, and increases water saving rate. Attached Figure Description

[0020] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0021] Figure 1 This is a perspective view of the first part of the structure of the anti-fogging and water-saving cooling tower in one embodiment of the present invention; Figure 2 for Figure 1 A partial structural diagram at point A in the middle; Figure 3 for Figure 1 A partial structural diagram at point B in the middle; Figure 4 This is a perspective view of the second part of the structure of the anti-fogging and water-saving cooling tower in one embodiment of the present invention; Figure 5 This is a partial three-dimensional sectional view of the structure of an anti-fogging and water-saving cooling tower according to an embodiment of the present invention; Figure 6 This is a perspective view of the first part of the positioning adjustment mechanism in one embodiment of the present invention; Figure 7 This is a perspective view of the second part of the positioning adjustment mechanism in one embodiment of the present invention; Figure 8 This is a rear view of an anti-fogging and water-saving cooling tower according to an embodiment of the present invention; Figure 9 This is a perspective view of an anti-fogging and water-saving cooling tower according to an embodiment of the present invention.

[0022] Explanation of key figure labels: 1-Cooling tower body, 11-Heat exchange module, 111-Rhomboid heat exchange tube, 2-Cleaning spray mechanism, 21-Cleaning pressure component, 211-Cleaning pressure chamber, 212-Cleaning pressure plate, 213-Cleaning support rod, 214-Cleaning pressure spring, 22-Cleaning receiving component, 221-Cleaning receiving chamber, 222-Cleaning receiving support pipe, 223-Cleaning receiving hose, 224-Cleaning receiving water pump, 3-Positioning adjustment mechanism, 31-Spray component, 311-Spray chamber, 312-Spray support net, 313-Spray support rod, 314-Spray positioning seat, 32- Sprinkler control assembly, 321-Sprinkler control valve, 322-Sprinkler control hose, 33-Sprinkler power assembly, 331-Sprinkler power motor, 332-Sprinkler drive wheel, 333-Sprinkler drive belt, 4-Displacement mechanism, 41-Synchronization assembly, 411-Synchronization positioning chamber, 412-Synchronization mounting rod, 413-Synchronization bevel gear, 42-Support assembly, 421-Support threaded rod, 422-Support threaded block, 423-Support bevel gear, 43-Displacement power assembly, 431-Displacement power motor, 432-Displacement power synchronous pulley, 433-Displacement power synchronous belt. Detailed Implementation

[0023] To enable those skilled in the art to better understand the technical solutions in this disclosure, the technical solutions in the embodiments of this disclosure will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this disclosure, and not all embodiments. Based on the embodiments in this disclosure, all other embodiments obtained by those skilled in the art without creative effort should fall within the scope of protection of this disclosure.

[0024] like Figures 1 to 9 As shown, an embodiment of the present invention provides a fog-eliminating and water-saving cooling tower, comprising: a cooling tower body 1, a cleaning spray mechanism 2, a positioning adjustment mechanism 3, and a displacement mechanism 4. A heat exchange module 11 is disposed within the cooling tower body 1. The cleaning spray mechanism 2 includes a cleaning pressure component 21 disposed on the upper side of the heat exchange module 11 and a cleaning receiving component 22 disposed on the cooling tower body 1. The positioning adjustment mechanism 3 includes a spray component 31 disposed below the cleaning pressure component 21, a spray control component 32 disposed below the cleaning pressure component 21, and a spray power component 33 disposed on one side of the spray component 31. The displacement mechanism 4 is disposed on one side of the cooling tower body 1 and includes a synchronization component 41, a support component 42, and a displacement power component 43.

[0025] The method of using the anti-fogging and water-saving cooling tower is as follows: When the cooling tower body 1 is running, it will contact the warm air through the heat exchange module 11, cool it down and then discharge it. The displacement mechanism 4 will cause the cleaning pressure component 21 to slide and spray the softened water and neutral detergent mixture in the cleaning container component 22 onto the surface of the heat exchange module 11 to achieve the purpose of cleaning. Since the heat exchange module 11 has poor toughness, the angle of the spray component 31 can be adjusted by controlling the spray power component 33 so that the spray component 31 will not spray directly onto the heat exchange module 11.

[0026] like Figures 1 to 6 As shown, the heat exchange module 11 is composed of multiple rhomboid heat exchange tubes 111, which are evenly distributed in the horizontal direction. The multiple rhomboid heat exchange tubes 111 form the heat exchange module 11, which exchanges heat with the humid and hot air in the cooling tower body 1 through the air inside it, and conducts the heat in the cooling tower body 1 to the external cold air, thereby causing the water vapor in the humid and hot air to condense into liquid water, achieving the purpose of defogging and water saving. Multiple spray components 31 are provided, and multiple spray components 31 are arranged one-to-one between two adjacent rhomboid heat exchange tubes 111. The setting of spray components 31 can clean the heat exchange module 11, which can reduce the probability of biological slime and mold mycelium mixture adhering to the surface of the heat exchange module 11.

[0027] like Figures 1 to 8 As shown, the cleaning pressure assembly 21 includes: a cleaning pressure chamber 211, a cleaning pressure plate 212, a pair of cleaning support rods 213, and a cleaning pressure spring 214. The cleaning pressure chamber 211 is located on the upper side of the heat exchange module 11. Its placement facilitates the installation of the cleaning containment assembly 22 and allows for temporary storage of the softened water and neutral detergent mixture, reducing the likelihood of leakage. The cleaning pressure plate 212 is slidably disposed within the cleaning pressure chamber 211. The cleaning pressure plate 212 pressurizes the softened water and neutral detergent mixture, enabling the mixture to better clean the heat exchange module 11. A pair of cleaning support rods 213 are disposed within the cleaning pressure chamber 211 and extend through the cleaning pressure plate 212. The support rods 213 support the cleaning pressure plate 212, reducing the likelihood of tilting and improving its stability and smoothness during sliding. A cleaning pressure spring 214 is sleeved on the support rods 213 and positioned above the cleaning pressure plate 212. The spring compresses the pressure plate 212, further enhancing its stability and allowing for better pressurization of the mixed solution.

[0028] like Figures 1 to 3As shown, the cleaning containment assembly 22 includes: a cleaning containment chamber 221, a cleaning containment support pipe 222, a cleaning containment hose 223, and a cleaning containment water pump 224. The cleaning containment chamber 221 is installed on the cooling tower body 1. The cleaning containment chamber 221 stores the mixed solution, which can be replenished by the user. The cleaning containment support pipe 222 is installed inside the cleaning pressure chamber 211 and passes through both the cleaning pressure chamber 211 and the cleaning pressure plate 212. The cleaning containment support pipe 222 replenishes the mixed solution in the cleaning pressure chamber 211, allowing the mixed solution in the cleaning containment chamber 221 to flow into the cleaning pressure chamber 211. A cleaning container hose 223 is installed between the cleaning container support pipe 222 and the cleaning container 221, and passes through the cooling tower body 1 and the cleaning container 221. The cleaning container hose 223, due to its own characteristics, can continuously connect the cleaning container 221 and the cleaning container support pipe 222 when the cleaning pressure chamber 211 is displaced, so that the mixed solution in the cleaning container 221 can be replenished. The cleaning container water pump 224 is installed in the cleaning container 221 and is fixedly connected to the cleaning container hose 223. The cleaning container water pump 224 can draw out the mixed solution in the cleaning container 221 to replenish the cleaning container 221.

[0029] like Figures 1 to 5 As shown, the spray assembly 31 includes: a spray chamber 311, a pair of spray support nets 312, a spray support rod 313, and a pair of spray positioning seats 314. The spray chamber 311 is located below the cleaning pressure chamber 211. The spray chamber 311, in conjunction with the spray support nets 312, cleans the rhomboid heat exchange tubes 111, removing the mixture of biological slime and mold mycelium from the surface of the rhomboid heat exchange tubes 111. The pair of spray support nets 312 are located below the spray chamber 311. The spray support nets 312 can filter the mixed solution within the spray chamber 311, filtering out impurities even if the mixed solution contains impurities. A spray support rod 313 is disposed on the upper side of the spray chamber 311. The spray support rod 313 positions the spray chamber 311, improving its stability and allowing it to rotate more easily. A pair of spray positioning seats 314 are rotatably disposed on both sides of the spray support rod 313 and fixedly connected to the cleaning pressure chamber 211. The spray positioning seats 314 support the spray support rod 313, improving its stability and allowing it to rotate.

[0030] like Figures 1 to 7As shown, the spray control assembly 32 includes a spray control valve 321 and a spray control hose 322. The spray control valve 321 is located below the cleaning pressure chamber 211 and extends through it. The spray control valve 321 connects to the cleaning pressure chamber 211 and can be opened and closed by the user. The spray control hose 322 is located between the spray control valve 321 and the spray chamber 311 and extends through it. The spray control hose 322 remains connected to the spray chamber 311 while it rotates, ensuring that the mixed solution within the spray chamber 311 is replenished.

[0031] like Figures 1 to 5 As shown, the spray power assembly 33 includes: a spray power motor 331, a pair of spray drive wheels 332, and a spray drive belt 333. The spray power motor 331 is located on one side of the spray chamber 311. By controlling the spray drive wheels 332, the spray motor 331 drives the rotation of the spray chamber 311, thus controlling the spray angle. The pair of spray drive wheels 332 are respectively located on one side of the spray control valve 321 and on the spray support rod 313. The pair of spray drive wheels 332 rotate synchronously via the spray drive belt 333, allowing the power from the spray power motor 331 to adjust the angle of the spray chamber 311. The spray drive belt 333 is positioned between the pair of spray drive wheels 332, serving a transmission function to ensure the synchronous rotation of the pair of spray drive wheels 332.

[0032] like Figures 1 to 8 As shown, the synchronization component 41 includes: a synchronization positioning chamber 411, a synchronization mounting rod 412, and a pair of synchronization bevel gears 413. The synchronization positioning chamber 411 is located on one side of the cooling tower body 1. The synchronization positioning chamber 411 positions the synchronization mounting rod 412, improving its stability and providing protection. The synchronization mounting rod 412 is located within the synchronization positioning chamber 411 and synchronizes the pair of synchronization bevel gears 413, enabling them to rotate synchronously. The pair of synchronization bevel gears 413 are located at both ends of the synchronization mounting rod 412 and control the rotation of a pair of supporting threaded rods 421, which in turn control the displacement of the cleaning pressure chamber 211.

[0033] like Figures 1 to 7As shown, the support assembly 42 includes: a pair of support threaded rods 421, a support threaded block 422, and a support bevel gear 423. The pair of support threaded rods 421 are rotatably mounted inside the cooling tower body 1 and pass through the cooling tower body 1 and the synchronous positioning chamber 411. The rotation of the support threaded rods 421 can drive the displacement of the cleaning pressure chamber 211, thereby controlling the position of the positioning adjustment mechanism 3. The support threaded block 422 is mounted on the support threaded rods 421 and matches them, and is fixedly connected to the cleaning pressure chamber 211. The rotation of the support threaded rods 421 can move the support threaded block 422, thereby controlling the displacement of the cleaning pressure chamber 211. The support bevel gear 423 is located at one end of the support threaded rod 421 and meshes with the synchronous bevel gear 413. The support bevel gear 423 can cooperate with the synchronous bevel gear 413 to control the rotation of the support threaded rods 421.

[0034] like Figures 1 to 9 As shown, the displacement power assembly 43 includes: a displacement power motor 431, a pair of displacement power synchronous pulleys 432, and a displacement power synchronous belt 433. The displacement power motor 431 is mounted on the synchronous positioning chamber 411. The displacement power motor 431 controls the rotation of the displacement power synchronous pulleys 432, and the rotation of the pair of displacement power synchronous pulleys 432 drives the rotation of the synchronous mounting rod 412. The pair of displacement power synchronous pulleys 432 are respectively mounted on one side of the displacement power motor 431 and on the synchronous mounting rod 412. The displacement power synchronous belt 433 is positioned between the pair of displacement power synchronous pulleys 432 and passes through the synchronous positioning chamber 411. The displacement power synchronous belt 433 synchronizes the rotation of the pair of displacement power synchronous pulleys 432, thus serving a transmission function.

[0035] It will be apparent to those skilled in the art that this disclosure is not limited to the details of the exemplary embodiments described above, and that this disclosure can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of this disclosure is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within this disclosure. No reference numerals in the claims should be construed as limiting the scope of the claims.

[0036] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider 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 mist-eliminating and water-saving cooling tower, characterized in that, include: The cooling tower body contains a heat exchange module. The cleaning spray mechanism includes a cleaning pressure component disposed on the upper side of the heat exchange module and a cleaning receiving component disposed on the cooling tower body; The positioning and adjustment mechanism includes a spray assembly disposed below the cleaning pressure assembly, a spray control assembly disposed below the cleaning pressure assembly, and a spray power assembly disposed on one side of the spray assembly. A displacement mechanism is disposed on one side of the cooling tower body, and the displacement mechanism includes a synchronization component, a support component, and a displacement power component.

2. The anti-fogging and water-saving cooling tower according to claim 1, characterized in that, The heat exchange module is composed of multiple rhomboid heat exchange tubes, which are evenly distributed in the horizontal direction. Multiple spray components are provided, and each spray component is arranged one-to-one between two adjacent rhomboid heat exchange tubes.

3. The anti-fogging and water-saving cooling tower according to claim 1, characterized in that, The cleaning pressure component includes: A cleaning pressure chamber is located on the upper side of the heat exchange module; A cleaning pressure plate is slidably disposed within the cleaning pressure chamber; A pair of cleaning support rods are installed inside the cleaning pressure chamber and pass through the cleaning pressure plate; A cleaning pressure spring is sleeved on the cleaning support rod and positioned on the upper side of the cleaning pressure plate.

4. The anti-fogging and water-saving cooling tower according to claim 3, characterized in that, The cleaning containment assembly includes: A cleaning and receiving chamber is provided on the cooling tower body; A cleaning and receiving support tube is installed inside the cleaning pressure chamber and extends through the cleaning pressure chamber and the cleaning pressure plate. A cleaning and receiving hose is installed between the cleaning and receiving support pipe and the cleaning and receiving chamber, and passes through the cooling tower body and the cleaning and receiving chamber. A cleaning container water pump is installed inside the cleaning container chamber and is fixedly connected to the cleaning container hose.

5. The anti-fogging and water-saving cooling tower according to claim 3, characterized in that, The spray assembly includes: A spray chamber is located below the cleaning pressure chamber; A pair of spray support nets are disposed on the lower side of the spray chamber; A spray support rod is installed on the upper side of the spray chamber; A pair of spray positioning seats are rotatably mounted on both sides of the spray support rod and are fixedly connected to the cleaning pressure chamber.

6. The anti-fogging and water-saving cooling tower according to claim 5, characterized in that, The spray control component includes: A spray control valve is located on the lower side of the cleaning pressure chamber and extends through the cleaning pressure chamber. A spray control hose is installed between the spray control valve and the spray chamber, and extends through the spray chamber.

7. The anti-fogging and water-saving cooling tower according to claim 6, characterized in that, The spray power assembly includes: A spray power motor is located on one side of the spray chamber; A pair of spray drive wheels are respectively mounted on one side of the spray control valve and on the spray support rod; A spray drive belt is disposed between a pair of spray drive wheels.

8. The anti-fogging and water-saving cooling tower according to claim 1, characterized in that, The synchronization component includes: A synchronous positioning chamber is located on one side of the cooling tower body; A synchronous installation rod is installed inside the synchronous positioning chamber; A pair of synchronous bevel gears are disposed at both ends of the synchronous mounting rod.

9. The anti-fogging and water-saving cooling tower according to claim 8, characterized in that, The support components include: A pair of supporting threaded rods are rotatably mounted inside the cooling tower body and pass through the cooling tower body and the synchronous positioning chamber; A support threaded block is disposed on the support threaded rod and matches the support threaded rod, and is fixedly connected to the cleaning pressure chamber; A support bevel gear is disposed at one end of the support threaded rod and meshes with a synchronous bevel gear.

10. The anti-fogging and water-saving cooling tower according to claim 9, characterized in that, The displacement power component includes: A displacement motor is installed on the synchronous positioning chamber; A pair of displacement power synchronous pulleys are respectively mounted on one side of the displacement power motor and on the synchronous mounting rod; A displacement power synchronous belt is disposed between a pair of displacement power synchronous pulleys and passes through the synchronous positioning chamber.