Energy-saving and water-saving glass steel spray type cooling tower

By combining water storage plates, ventilation devices, water distribution devices, and filter screens, the problem of excessive coolant consumption and pollution from impurities in cooling towers is solved, achieving efficient cooling and environmentally friendly energy-saving and water-saving effects.

CN116929098BActive Publication Date: 2026-03-31YIXING TIANXIN ENVIRONMENTAL PROTECTION EQUIP CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-04-06
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

Existing energy-saving and water-saving fiberglass spray cooling towers consume a large amount of coolant during use, and impurities pollute the environment and affect cooling efficiency.

Method used

It adopts a combination design of water storage plate, ventilation device, water distribution device, atomizing device, filter screen, reaction structure and controller. The ventilation device exhausts gas, the water distribution device disperses liquid, the filter screen filters impurities, and the controller precisely controls the liquid usage, reducing coolant consumption and impurity discharge.

Benefits of technology

It improves the cooling efficiency and environmental friendliness of cooling towers, reduces coolant consumption, prevents contamination by impurities, and achieves energy and water conservation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to the technical field of cooling towers, and discloses an energy-saving and water-saving glass-steel spray type cooling tower, which comprises a water storage plate, the top center of the water storage plate is fixedly connected with a cooling tower, the top of the cooling tower is fixedly installed with a ventilation device, the right side of the cooling tower is fixedly connected with a water distribution device, the top and bottom of the center of the inner cavity of the cooling tower are fixedly connected with filter screens, and the center of the inner cavity of the cooling tower is fixedly connected with an atomizing device. The use of the second motor, the driving rod and the first water distribution plate can disperse the falling liquid, so that the liquid can better contact with the filler, thereby improving the cooling efficiency of the equipment. The cooperation of the driving gear and the passive gear can rotate the two passive rods and the second water distribution plate under the condition of reducing the motor, thereby improving the liquid dispersion efficiency and reducing the energy consumption, so that the energy-saving property of the equipment is improved.
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Description

Technical Field

[0001] This invention relates to the field of cooling tower technology, specifically to an energy-saving and water-saving fiberglass spray cooling tower. Background Technology

[0002] A cooling tower is a device that dissipates waste heat generated during industrial production or refrigeration processes into the atmosphere. It allows the medium carrying residual heat to exchange heat with the air inside the tower, transferring the heat from the medium to the air and dissipating it into the atmosphere, thereby cooling the medium. Cooling towers are widely used in industries such as air conditioning, refrigeration, and plastics and chemicals.

[0003] Currently, most energy-saving and water-saving FRP spray cooling towers on the market rely on water pumps to transfer coolant to the atomizing device, which then atomizes the coolant into cold air. This cold air is then sprayed out, allowing the cold air to contact the liquid and cool it. The cooled liquid then falls into a storage tank for storage. However, this method consumes a large amount of coolant, increasing production costs. Furthermore, the external liquid often carries impurities during transport. Some of these impurities are discharged with the gas, polluting the environment, while others enter the storage tank, contaminating the water and affecting the equipment's functionality. Additionally, the liquid tends to accumulate inside the equipment, preventing complete contact between the cold air and the liquid, thus impacting cooling efficiency. Summary of the Invention

[0004] To address the shortcomings of existing technologies, this invention provides an energy-saving and water-saving fiberglass spray cooling tower, which has the advantages of water conservation, environmental protection and quality improvement, and high-efficiency cooling, thus solving the problems described above.

[0005] This invention provides the following technical solution: an energy-saving and water-saving fiberglass spray cooling tower, comprising a water storage plate, a cooling tower fixedly connected to the center of the top of the water storage plate, a ventilation device fixedly installed on the top of the cooling tower, a water distribution device fixedly connected to the right side of the cooling tower, filter screens fixedly connected to the top and bottom of the center of the cooling tower cavity, an atomizing device fixedly connected to the center of the cooling tower cavity, a reaction structure fixedly connected to the bottom of the cooling tower cavity, a liquid transfer device fixedly connected to the left side of the top of the water storage plate, and a controller fixedly installed at the center of the left side of the water storage plate.

[0006] Preferably, the ventilation device includes a first motor, an air outlet pipe, and a support plate. The air outlet pipe and support plate support the first and second ring frames. Because the first and second ring frames support and limit the operation of the rotating rod, the air outlet pipe and support plate can prevent the rotating rod from shifting by supporting the first and second ring frames. The first motor allows the rotating rod to drive the fan blades to rotate, thereby causing the fan blades to discharge the gas from the water storage plate and the inside of the cooling tower. The bottom of the first motor is connected to the right side of the center of the top of the cooling tower. A worm gear is fixedly connected to the output end of the first motor. The left side of the worm gear extends through the air outlet pipe into its interior. A worm wheel is meshed with the outer surface of the worm gear. A rotating rod is fixedly connected to the inner surface of the worm wheel. Fan blades are fixedly connected to the outer surfaces of the top and bottom of the rotating rod. The bottom of the air outlet pipe is connected to the center of the top of the cooling tower. The first ring frame is fixedly connected to the inner surface of the air outlet pipe. The top of the support plate is connected to the top of the inner cavity of the cooling tower. The bottom of the support plate is fixedly connected to the second ring frame.

[0007] Preferably, the outer surface of the top of the rotating rod is adapted to the inner surface of the bottom of the first ring frame. The rotating rod adapted to the inner surface of the bottom of the first ring frame allows the first ring frame to support the rotating rod without affecting its rotation. The outer surface of the bottom of the rotating rod is adapted to the inner surface of the top of the second ring frame. The rotating rod adapted to the inner surface of the top of the second ring frame allows the second ring frame to support the rotating rod without affecting its rotation.

[0008] Preferably, the water distribution device includes a second motor. The use of the second motor enables the drive rod to drive the first water distribution plate and the drive gear to rotate, thereby causing the drive gear to disperse the liquid, allowing the liquid to better contact the cooling air. The output end of the second motor is fixedly connected to the drive rod. The first water distribution plate is fixedly connected to the outer surface of the left side of the drive rod, and the drive gear is fixedly connected to the outer surface of the right side of the drive rod. The cooperation of the drive gear and the driven gear allows the second water distribution plate to disperse the liquid with reduced equipment, thereby improving dispersion efficiency and reducing energy consumption. The outer surface of the drive gear is meshed with the driven gear. There are two driven gears, and the inner surfaces of the two driven gears are fixedly connected to the driven rod. The two sides of the driven rod are connected to the two sides of the inner cavity of the cooling tower. The outer surface of the left side of the driven rod is fixedly connected to the second water distribution plate.

[0009] Preferably, the liquid transfer device includes a water pump. The water pump can transfer liquid through a pumping pipe and a drain pipe. Because the bottom of the pumping pipe extends through the water storage plate and into its interior, the pumping pipe can extract liquid from inside the water storage plate. Since most of the liquid inside the water storage plate is the liquid cooled by the cooling tower equipment, liquid consumption is reduced. The rear end of the water pump is fixedly connected to a pumping pipe, the bottom of which extends through the water storage plate and into its interior. The top of the water pump is fixedly connected to a drain pipe, the right side of which extends through the cooling tower and into its interior.

[0010] Preferably, the atomizing device includes a horizontal tube, the horizontal height of which is equal to the horizontal height of the top of the drain pipe, and the inner surface of the horizontal tube is adapted to the outer surface of the drain pipe. An atomizer is fixedly connected to the bottom of the horizontal tube. The horizontal tube is located between two filter screens. Because the inner surface of the horizontal tube is adapted to the outer surface of the drain pipe, the horizontal tube can be connected to the drain pipe to receive the liquid transmitted from the drain pipe. The atomizer can then atomize the liquid, thereby providing the device with cold air, which can then be used to cool the liquid.

[0011] Preferably, a water inlet pipe is fixedly connected to the front end of the top left side of the water storage plate, allowing the user to pour coolant into the interior of the water storage plate. A drain pipe is fixedly connected to the center of the right side of the water storage plate, which can be connected to external equipment to transfer the liquid inside the water storage plate. A water inlet pipe is fixedly connected to the rear end of the top right side of the cooling tower, which can be connected to external equipment to transfer heated liquid into the interior of the cooling tower. The horizontal height of the water inlet pipe is equal to the horizontal height of the horizontal pipe. An observation slot is provided at the center of the front end of the cooling tower, and an observation window is fixedly connected inside the observation slot. The observation window allows the user to conveniently observe the operation of the equipment and also allows the user to replace the packing material.

[0012] Preferably, the reaction structure includes a partition, and a water channel is provided at the bottom of the partition. The water channel allows the liquid cooled by the packing material to enter the interior of the water storage plate. The packing material is installed at the top of the partition. The packing material can react with the liquid and then cool the liquid. The horizontal height of the top of the packing material is equal to the horizontal height of the bottom of the observation window.

[0013] Preferably, the controller includes a display panel that can display the data detected by the water temperature detection rod and the water level detection rod. Since the output ends of the water temperature detection rod and the water level detection rod are both located inside the water storage plate, the water temperature detection rod and the water level detection rod can detect the water level and water temperature of the liquid inside the water storage plate. The water temperature detection rod is fixedly connected to the rear end of the right side of the display panel, and the output end of the water temperature detection rod extends through the water storage plate into its interior. The water level detection rod is fixedly connected to the front end of the right side of the display panel, and the output end of the water level detection rod extends through the water storage plate into its interior.

[0014] Compared with the prior art, the present invention has the following beneficial effects:

[0015] 1. This energy-saving and water-saving fiberglass spray cooling tower, through the use of a ventilation device, can expel the gas inside the cooling tower, thereby preventing hot air from accumulating inside the cooling tower and reducing the equipment's cooling efficiency. The coordinated use of the first motor, worm gear, and worm wheel can control the rotation of the rotating rod, and thus regulate the discharge according to the equipment's gas production. When the exhaust volume increases, the gas inside the equipment decreases, resulting in a negative pressure state, which improves the water inlet efficiency and thus enhances the equipment's working efficiency. The use of two filters: the bottom filter filters the downward-moving liquid, thereby improving the purity of the cooled liquid, while the top filter filters the upward-moving gas-liquid mixture, preventing the equipment from discharging gas containing impurities to the outside, thereby improving the equipment's environmental friendliness.

[0016] 2. This energy-saving and water-saving fiberglass spray cooling tower, through the coordinated use of a second motor, drive rod, and first water distribution plate, can disperse falling liquid, thereby allowing the liquid to better contact the packing material and improving the cooling efficiency of the equipment. The coordinated use of drive gear and driven gear allows the two driven rods and the second water distribution plate to rotate with the reduction of the motor, thus improving the liquid dispersion efficiency while reducing energy consumption and improving the energy efficiency of the equipment.

[0017] 3. This energy-saving and water-saving fiberglass spray cooling tower, through the use of a liquid transfer device, can extract the liquid inside the water storage plate and then discharge it into the horizontal pipe. The liquid is then sprayed onto the cooling system via an atomizer. Because the external liquid cools inside the cooling tower and falls back into the water storage plate, users only need to add a small amount of liquid to cool all the external liquid, thus reducing liquid consumption and improving the equipment's energy efficiency. Furthermore, the controller allows for monitoring of the water level and temperature inside the water storage plate via a display panel and a water temperature sensor, enabling users to add liquid more precisely, further enhancing the equipment's energy-saving capabilities. Attached Figure Description

[0018] Figure 1 This is a structural diagram of the present invention;

[0019] Figure 2 This is a front sectional view of the structure of the present invention;

[0020] Figure 3 This is a right-side sectional view of the structure of the present invention;

[0021] Figure 4 This is a cross-sectional view of the right side of the water storage plate of the present invention.

[0022] Figure 5 This is a cross-sectional view of the top of the cooling tower structure of the present invention;

[0023] Figure 6 This is a top cross-sectional view of the water storage plate of the present invention.

[0024] In the diagram: 1. Water storage plate; 2. Cooling tower; 3. Ventilation device; 31. First motor; 32. Air outlet pipe; 33. Support plate; 34. Worm gear; 35. Worm wheel; 36. Rotating rod; 37. Fan blade; 38. First ring frame; 39. Second ring frame; 4. Water distribution device; 41. Second motor; 42. Drive rod; 43. First water distribution plate; 44. Drive gear; 45. Driven gear; 46. Driven rod; 47. Second water distribution plate; 5. Filter screen; 6. Atomizing device; 61. Horizontal pipe; 62. Atomizer; 7. Reaction structure; 71. Baffle plate; 72. Packing material; 8. Liquid transfer device; 81. Water pump; 82. Water pumping pipe; 83. Drain pipe; 9. Controller; 91. Display panel; 92. Water temperature detection rod; 93. Water level detection rod. Detailed Implementation

[0025] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0026] Please see Figure 1 , Figure 2 and Figure 3 An energy-saving and water-saving fiberglass spray cooling tower includes a water storage plate 1. A water inlet pipe is fixedly connected to the front end of the top left side of the water storage plate 1. The use of the water inlet pipe, drain pipe, and inlet pipe allows for liquid transfer. A drain pipe is fixedly connected to the center of the right side of the water storage plate 1. An inlet pipe is fixedly connected to the rear end of the top right side of the cooling tower 2. The horizontal height of the inlet pipe is equal to the horizontal height of the horizontal pipe 61. The inlet pipe, being at the same horizontal height as the horizontal pipe 61, ensures that the liquid entering the cooling tower 2 is located between two filter screens 5. An observation slot is opened at the center of the front end of the cooling tower 2. An observation window is fixedly connected inside the observation slot. The observation window allows for observation of the internal condition of the equipment and replacement of the packing 72. The cooling tower 2 is fixedly connected to the center of the top of the water storage plate 1.

[0027] A ventilation device 3 is fixedly installed on the top of the cooling tower 2. The ventilation device 3 includes a first motor 31, an air outlet pipe 32, and a support plate 33. Operating the first motor 31 causes the worm gear 34 to rotate. The bottom of the first motor 31 is connected to the right side of the center of the top of the cooling tower 2. The output end of the first motor 31 is fixedly connected to the worm gear 34. The rotation of the worm gear 34 causes the worm wheel 35 to rotate. The left side of the worm gear 34 extends through the air outlet pipe 32 and into it. The outer surface of the worm gear 34 is meshed with the worm wheel 35. The rotation of the worm wheel 35 causes the rotating rod 36 to rotate. The inner surface of the worm wheel 35 is fixedly connected to the rotating rod 36. The rotation of the rotating rod 36 allows the gas inside the cooling tower 2 to be discharged upwards. The outer surface of the top of the rotating rod 36 is connected to... The inner surface of the bottom of the first ring frame 38 is adapted to the rotating rod 36, which is also adapted to the inner surface of the bottom of the first ring frame 38, so that the first ring frame 38 can provide limiting support for the top of the rotating rod 36. The outer surface of the bottom of the rotating rod 36 is adapted to the inner surface of the top of the second ring frame 39, which is also adapted to the inner surface of the top of the second ring frame 39, so that the second ring frame 39 can provide limiting support for the bottom of the rotating rod 36. Fan blades 37 are fixedly connected to the outer surfaces of the top and bottom of the rotating rod 36. The bottom of the air outlet pipe 32 is connected to the center of the top of the cooling tower 2. The inner surface of the air outlet pipe 32 is fixedly connected to the first ring frame 38. The top of the support plate 33 is connected to the top of the inner cavity of the cooling tower 2. The bottom of the support plate 33 is fixedly connected to the second ring frame 39.

[0028] A water distribution device 4 is fixedly connected to the right side of the cooling tower 2. Filter screens 5 are fixedly connected to the top and bottom of the center of the inner cavity of the cooling tower 2. An atomizing device 6 is fixedly connected to the center of the inner cavity of the cooling tower 2. The atomizing device 6 includes a horizontal pipe 61, which can receive the liquid discharged from the drain pipe 83. The horizontal height of the horizontal pipe 61 is equal to the horizontal height of the top of the drain pipe 83, and the inner surface of the horizontal pipe 61 is adapted to the outer surface of the drain pipe 83. The horizontal pipe 61, which is equal to the horizontal height of the drain pipe 83 and adapted to the outer surface, can be connected to the drain pipe 83. An atomizer 62 is fixedly connected to the bottom of the horizontal pipe 61. The atomizer 62 can atomize the liquid and then discharge the atomized cold air downwards. The horizontal pipe 61 is located between the two filter screens 5.

[0029] The bottom of the inner cavity of the cooling tower 2 is fixedly connected to a reaction structure 7, which includes a baffle 71. The baffle 71 can support the packing 72. A water channel is opened at the bottom of the baffle 71, which allows the cooled liquid at the top of the packing 72 to enter the interior of the water storage plate 1. The packing 72 is installed on the top of the baffle 71. The packing 72 can react with the liquid, thereby accelerating the cooling speed of the liquid. The horizontal height of the top of the packing 72 is equal to the horizontal height of the bottom of the observation window. A liquid transfer device 8 is fixedly connected to the left side of the top of the water storage plate 1, and a controller 9 is fixedly installed at the center of the left side of the water storage plate 1.

[0030] Please see Figure 4 , Figure 5 and Figure 6 The water distribution device 4 includes a second motor 41. Operating the second motor 41 causes the drive rod 42 to rotate. The output end of the second motor 41 is fixedly connected to the drive rod 42. The rotation of the drive rod 42 causes the first water distribution plate 43 and the drive gear 44 to rotate. The first water distribution plate 43 is fixedly connected to the outer surface of the left side of the drive rod 42. The rotation of the first water distribution plate 43 disperses the liquid, allowing it to better contact the cold air. The drive gear 44 is fixedly connected to the outer surface of the right side of the drive rod 42. The rotation of the drive gear 44 causes the driven gear 45 to engage... The drive gear 44 rotates, and the outer surface of the drive gear 44 is meshed with the driven gear 45. The rotation of the driven gear 45 will drive the driven rod 46 to rotate. There are two driven gears 45, and the inner surfaces of the two driven gears 45 are fixedly connected to the driven rod 46. The rotation of the driven rod 46 will cause the second water distribution plate 47 to rotate. The two sides of the driven rod 46 are connected to the two sides of the inner cavity of the cooling tower 2. The outer surface of the left side of the driven rod 46 is fixedly connected to the second water distribution plate 47. The rotation of the second water distribution plate 47 can disperse the liquid, so that the liquid can better contact the cold air.

[0031] The liquid transfer device 8 includes a water pump 81. Running the water pump 81 causes the water pump pipe 82 to generate a suction force and the drain pipe 83 to generate a discharge force. The rear end of the water pump 81 is fixedly connected to the water pump pipe 82. The water pump pipe 82, which generates the suction force, can extract liquid from inside the water storage plate 1. The bottom of the water pump pipe 82 extends through the water storage plate 1 into its interior. The top of the water pump 81 is fixedly connected to the drain pipe 83. The drain pipe 83, which generates the discharge force, can discharge the liquid extracted by the water pump pipe 82. The right side of the drain pipe 83 extends through the cooling tower 2 into its interior.

[0032] The controller 9 includes a display panel 91, which displays data sensed by the water temperature detection rod 92 and the water level detection rod 93. The water temperature detection rod 92 is fixedly connected to the rear end of the right side of the display panel 91. The water temperature detection rod 92 is used to detect the temperature of the liquid inside the water storage plate 1. The output end of the water temperature detection rod 92 extends through the water storage plate 1 and into its interior. The water level detection rod 93 is fixedly connected to the front end of the right side of the display panel 91. The water level detection rod 93 is used to detect the water level height of the liquid inside the water storage plate 1. The output end of the water level detection rod 93 extends through the water storage plate 1 and into its interior.

[0033] The working principle is as follows: the ventilation device 3 can discharge the gas inside the cooling tower 2, thereby preventing hot air from accumulating inside the cooling tower 2 and causing a decrease in equipment cooling efficiency. The cooperation of the first motor 31, worm gear 34 and worm wheel 35 can control the rotation of the rotating rod 36, and thus adjust the discharge according to the gas production of the equipment. When the exhaust volume increases, the gas inside the equipment decreases, resulting in a negative pressure state in the equipment, which can improve the water inlet efficiency of the water inlet pipe and thus improve the working efficiency of the equipment. The use of two filter screens 5: the bottom filter screen 5 can filter the downward moving liquid, thereby improving the purity of the cooled liquid, while the top filter screen 5 can filter the upward moving gas-liquid mixture, thereby preventing the equipment from discharging gas mixed with impurities to the outside, thus improving the environmental friendliness of the equipment. The combined use of the second motor 41, drive rod 42, and first water distribution plate 43 can disperse the falling liquid, allowing it to better contact the packing 72 and thus improving the cooling efficiency of the equipment. The combined use of drive gear 44 and driven gear 45 can rotate the two driven rods 46 and the second water distribution plate 47 with fewer motors, thereby improving the efficiency of liquid dispersion while reducing energy consumption and improving the energy efficiency of the equipment. By using the liquid transfer device 8, the liquid inside the water storage plate 1 can be extracted and discharged into the horizontal pipe 61. The liquid is then sprayed onto the liquid that needs to be cooled by the atomizer 62. Since the external liquid falls into the water storage plate 1 after being cooled inside the cooling tower 2, the user does not need to add too much liquid to cool all the external liquid, thereby reducing liquid consumption and improving the energy efficiency of the equipment. The controller 9 can detect the water level and temperature of the liquid inside the water storage plate 1 through the display panel 91 and the water temperature detection rod 92, allowing the user to add liquid more accurately and further improving the energy efficiency of the equipment.

[0034] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0035] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. An energy-saving and water-saving glass steel spray type cooling tower comprising a water storage plate (1), characterized in that: The top of the water storage plate (1) is fixedly connected with a cooling tower (2), the top of the cooling tower (2) is fixedly installed with a ventilation device (3), the right side of the cooling tower (2) is fixedly connected with a water distribution device (4), the top and bottom of the inner cavity of the cooling tower (2) are fixedly connected with filter screens (5), the inner cavity of the cooling tower (2) is fixedly connected with an atomizing device (6), the bottom of the inner cavity of the cooling tower (2) is fixedly connected with a reaction structure (7), the top of the left side of the water storage plate (1) is fixedly connected with a liquid transmission device (8), and the center of the left side of the water storage plate (1) is fixedly installed with a controller (9). The ventilation device (3) comprises a first motor (31), an air outlet pipe (32) and a supporting plate (33), the bottom of the first motor (31) is connected with the right side of the top center of the cooling tower (2), the output end of the first motor (31) is fixedly connected with a worm (34), the left side of the worm (34) extends to the inside of the air outlet pipe (32), the outer surface of the worm (34) is meshed with a worm wheel (35), the inner surface of the worm wheel (35) is fixedly connected with a rotating rod (36), the outer surfaces of the top and bottom of the rotating rod (36) are fixedly connected with fan blades (37), the bottom of the air outlet pipe (32) is connected with the center of the top of the cooling tower (2), the inner surface of the air outlet pipe (32) is fixedly connected with a first ring frame (38), the top of the supporting plate (33) is connected with the top of the inner cavity of the cooling tower (2), and the bottom of the supporting plate (33) is fixedly connected with a second ring frame (39). The water distribution device (4) comprises a second motor (41), the output end of the second motor (41) is fixedly connected with a driving rod (42), the outer surface of the left side of the driving rod (42) is fixedly connected with a first water distribution plate (43), the outer surface of the right side of the driving rod (42) is fixedly connected with a driving gear (44), the outer surface of the driving gear (44) is meshed with a driven gear (45), the number of the driven gears (45) is two, the inner surfaces of the two driven gears (45) are fixedly connected with driven rods (46), and the two sides of the driven rods (46) are connected with the two sides of the inner cavity of the cooling tower (2).

2. The energy-saving and water-saving glass steel spray type cooling tower according to claim 1, characterized in that: The outer surface of the top of the rotating rod (36) is matched with the inner surface of the bottom of the first ring frame (38), and the outer surface of the bottom of the rotating rod (36) is matched with the inner surface of the top of the second ring frame (39).

3. The energy-saving and water-saving glass steel spray type cooling tower according to claim 1, characterized in that: The liquid transmission device (8) comprises a water pump (81), the rear end of the water pump (81) is fixedly connected with a water suction pipe (82), the bottom of the water suction pipe (82) extends to the inside of the water storage plate (1), the top of the water pump (81) is fixedly connected with a drain pipe (83), and the right side of the drain pipe (83) extends to the inside of the cooling tower (2).

4. The energy-saving and water-saving glass-steel spray type cooling tower according to claim 3, characterized in that: The atomization device (6) comprises a cross pipe (61), the horizontal height of the cross pipe (61) is equal to the horizontal height of the top of the drain pipe (83), and the inner surface of the cross pipe (61) is matched with the outer surface of the drain pipe (83), the bottom of the cross pipe (61) is fixedly connected with an atomizer (62), and the cross pipe (61) is located between the two filter screens (5).

5. The energy-saving and water-conserving glass-steel spray type cooling tower according to claim 4, characterized in that: The front end of the left side of the top of the water storage plate (1) is fixedly connected with a water inlet pipe, the center of the right side of the water storage plate (1) is fixedly connected with a drain pipe, the rear end of the top of the right side of the cooling tower (2) is fixedly connected with a water inlet pipe, the horizontal height of the water inlet pipe is equal to the horizontal height of the cross pipe (61), the center of the front end of the cooling tower (2) is provided with an observation slot, and the inside of the observation slot is fixedly connected with an observation window.

6. The energy-saving and water-conserving glass-steel spray type cooling tower according to claim 5, characterized in that: The reaction structure (7) comprises a partition plate (71), the bottom of the partition plate (71) is provided with a water passing groove, and the top of the partition plate (71) is provided with a filler (72), and the horizontal height of the top of the filler (72) is equal to the horizontal height of the bottom of the observation window.

7. The energy-saving and water-conserving glass-steel spray type cooling tower according to claim 1, characterized in that: The controller (9) comprises a display panel (91), the rear end of the right side of the display panel (91) is fixedly connected with a water temperature detection rod (92), the output end of the water temperature detection rod (92) extends to the inside of the water storage plate (1) through the water storage plate (1), the front end of the right side of the display panel (91) is fixedly connected with a water level detection rod (93), and the output end of the water level detection rod (93) extends to the inside of the water storage plate (1) through the water storage plate (1).

Citation Information

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