Energy-saving cooling tower

By introducing a spray pump and spiral cooling pipe design into the cooling tower, combined with a condensation recovery mechanism, the problems of water vapor waste and low heat exchange efficiency are solved, achieving high efficiency, energy saving, and resource recovery in the cooling tower.

CN224051099UActive Publication Date: 2026-03-27XIANGNENG HUALEI OPTOELECTRONICS
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-24
Publication Date
2026-03-27

AI Technical Summary

Technical Problem

Existing cooling towers do not readily recycle water vapor during cooling, leading to resource waste. At the same time, the heat exchange radiator's performance is not fully improved, affecting heat dissipation.

Method used

An energy-saving cooling tower was designed, comprising a cooling mechanism and a condensation recovery mechanism. It utilizes a spray pump and spray nozzles for rapid cooling, and drives the distributor to rotate through spiral cooling pipes and heat dissipation spiral blades. Combined with a condensation box and condensation pan, it recovers water vapor, and utilizes a rotating worm gear and worm wheel to improve the condensation effect.

Benefits of technology

This improved cooling efficiency and effectively recovered and utilized water vapor, thereby enhancing the overall energy-saving effect and heat dissipation performance of the cooling tower.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an energy-saving cooling tower which comprises a cooling mechanism and a spraying pump installed on the inner side of the top of the cooling mechanism, a condensation recovery mechanism is arranged on the top of the cooling mechanism, a supporting column is fixedly installed in the center of the interior of the condensation recovery mechanism, and the cooling mechanism comprises a cooling tower body. A feeding pipe is fixedly installed on one side of the top of the cooling tower body, a connecting bent pipe is fixedly installed at the end of the feeding pipe, a flow divider is fixedly installed at the bottom of the connecting bent pipe, a plurality of flow dividing pipes are fixedly installed on the outer side of the flow divider, and spiral cooling pipes are fixedly installed at the ends of the flow dividing pipes. A collecting pipe is fixedly installed at the bottom of the spiral cooling pipe, cooling water is used for rapidly cooling the spiral cooling pipe, meanwhile, the cooling water impacts a first heat dissipation spiral blade and a second heat dissipation spiral blade to generate certain spiral force, and uniform and rapid cooling of the spiral cooling pipe can be achieved in a rotating mode.
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Description

TECHNICAL FIELD

[0001] The utility model relates to cooling tower technical field, concretely is a kind of energy-saving cooling tower. BACKGROUND

[0002] Cooling tower is water as circulating coolant, from a system to absorb heat discharge to atmosphere, to reduce water temperature device, cooling tower is to use water and air flow contact to carry out cold and hot exchange vapor, vapor volatilization takes away heat to reach evaporation heat dissipation, convection heat transfer and radiation heat transfer etc.

[0003] The utility model discloses a high -efficient cooling tower, the input end of water distributor is connected to the outside waste heat water, the heat of waste heat water is transferred to water distributor in the flow process of water distributor, and then is transferred to heat exchange radiator by water distributor, and heat is dissipated by the heat exchange radiator, and then waste heat water is uniformly sprayed on the filler by water distributor to form water film, and then the contact area of waste heat water is expanded, at this time, wind flow is generated fan works and the air outside tower body is sucked and exchanges heat with waste heat water on the filler, and finally forms steam and takes away heat, by additionally providing heat exchange radiator, waste heat water cooling can be accelerated, waste heat water cooling time is shortened, and the overall cooling effect is good, but the patent still has the following problems in actual use process:

[0004] Although the high -efficient cooling tower can accelerate waste heat water cooling, shorten waste heat water cooling time and have good overall cooling effect by additionally providing heat exchange radiator, but it is inconvenient to recycle water vapor generated during cooling, so that water vapor is directly discharged into atmosphere, thereby causing resource waste phenomenon, and increasing heat exchange radiator during cooling cannot fully improve the effect of heat exchange radiator, affecting heat dissipation effect.

[0005] Therefore, an energy-saving cooling tower is proposed to solve the problems mentioned above. UTILITY MODEL CONTENTS

[0006] The utility model aims at providing an energy-saving cooling tower to solve the problems mentioned in the background that it is inconvenient to recycle water vapor generated during cooling, so that water vapor is directly discharged into atmosphere, thereby causing resource waste phenomenon, and increasing heat exchange radiator during cooling cannot fully improve the effect of heat exchange radiator, affecting heat dissipation effect.

[0007] In order to achieve the above object, the utility model provides the following technical scheme: an energy -saving cooling tower, including cooling mechanism, and the spray pump of installing in the inside of cooling mechanism top,

[0008] The top of the cooling mechanism is provided with a condensation recovery mechanism, and a support column is fixedly installed at the inner center position of the condensation recovery mechanism.

[0009] Further comprising:

[0010] The cooling mechanism comprises a cooling tower body, a feed pipe is fixedly installed at one side of the top of the cooling tower body, and a connecting elbow is fixedly installed at the end of the feed pipe.

[0011] The bottom of the connecting elbow is fixedly installed with a flow divider, and a plurality of shunt pipes are fixedly installed on the outer side of the flow divider.

[0012] The end of the shunt pipe is fixedly installed with a spiral cooling pipe, and the bottom of the spiral cooling pipe is fixedly installed with a flow collector.

[0013] Preferably, the end of the flow collector is fixedly installed with a flow collector, the bottom of the flow collector is fixedly installed with a discharge pipe, the end of the discharge pipe is provided with a first valve, a plurality of first heat dissipation spiral leaves are fixedly installed on the side of the flow divider close to the shunt pipe, and the connecting elbow is fixedly installed at the top center position of the cooling tower body.

[0014] Preferably, a rotating connecting column is fixedly connected between the flow divider and the flow collector, a plurality of second heat dissipation spiral leaves are fixedly installed on the outer side of the rotating connecting column, a second valve is fixedly installed on one side of the bottom of the cooling tower body, and the spray pump is fixedly installed at the top inner side of the cooling tower body.

[0015] Preferably, a water injection pipe is fixedly installed on one side of the top of the spray pump, a sprayer is fixedly installed at the bottom of the spray pump, and a plurality of spray nozzles are fixedly installed at the bottom of the sprayer.

[0016] Preferably, the condensation recovery mechanism comprises a condensation tank, air inlet pipes are fixedly installed around the inner bottom of the condensation tank, the air inlet pipes are fixedly installed around the top of the cooling tower body, a third valve is fixedly installed on one side of the bottom of the condensation tank, and an exhaust pipe is fixedly installed at the top center position of the condensation tank.

[0017] Preferably, the support column is fixedly installed at the inner center position of the condensation tank, a support disc is fixedly installed at the top of the support column, rotating supports are symmetrically installed on one side of the top of the support disc, a rotating motor is fixedly installed on the outer side of one of the rotating supports, and a rotating worm is fixedly connected to the output end of the rotating motor.

[0018] Preferably, one side of the rotating worm is connected with a rotating worm wheel in engagement, the rotating worm wheel is rotationally connected with the support disc, a top of the rotating worm wheel is fixedly installed with a rotating connecting disc, a top of the rotating connecting disc is fixedly installed with a flow guide plate, and a top of the flow guide plate is fixedly installed with a condensing disc.

[0019] Compared with the prior art, the energy-saving cooling tower has the advantages that: the cooling water is sprayed out through the spray head, the spiral cooling pipe can be rapidly cooled by the cooling water, the first and second heat dissipation spiral leaves can generate spiral force by the impact of the cooling water, the first and second heat dissipation spiral leaves drive the flow divider, the rotating connecting column and the current collector to rotate respectively, the spiral cooling pipe can be uniformly and rapidly cooled by rotation, the cooling efficiency of the cooling tower is improved, the gas is discharged through the exhaust pipe, the stability of the internal air pressure of the condensing box is ensured, the rotating motor is started to drive the rotating worm to rotate, the rotating connecting disc drives the flow guide plate and the condensing disc to rotate by the engagement between the rotating worm and the rotating worm wheel, and the condensing effect of the condensing disc is improved by rotation.

[0020] 1. The cooling mechanism can convey the liquid to be cooled into the interior of the cooling tower body through the feed pipe and the connecting elbow pipe, the liquid flows into the spiral cooling pipe through the flow divider and the flow divider pipe, the spray pump is started to pump the cooling water into the sprayer, the cooling water is sprayed out through the spray head, the spiral cooling pipe can be rapidly cooled by the cooling water, the first and second heat dissipation spiral leaves can generate spiral force by the impact of the cooling water, the first and second heat dissipation spiral leaves drive the flow divider, the rotating connecting column and the current collector to rotate respectively, the spiral cooling pipe can be uniformly and rapidly cooled by rotation, the cooling efficiency of the cooling tower is improved, and the energy-saving effect is achieved.

[0021] 2. The condensing and recycling mechanism can collect the water vapor generated by the cooling tower through the air inlet pipe at the bottom of the condensing box, the water vapor is condensed when meeting the condensing disc at the top of the condensing box, and falls into the bottom of the condensing box under the action of the flow guide plate, the gas is discharged through the exhaust pipe, the stability of the internal air pressure of the condensing box is ensured, the rotating motor is started to drive the rotating worm to rotate, the rotating connecting disc drives the flow guide plate and the condensing disc to rotate by the engagement between the rotating worm and the rotating worm wheel, and the condensing effect of the condensing disc is improved by rotation. BRIEF DESCRIPTION OF DRAWINGS

[0022] Figure 1 It is a whole three-dimensional structure schematic view of the utility model;

[0023] Figure 2 It is a three-dimensional structure schematic view of the cooling mechanism in the utility model.

[0024] Figure 3 It is three-dimensional structure schematic view of spiral cooling pipe in the utility model;

[0025] Figure 4 It is three-dimensional structure schematic view of sprayer and spraying nozzle in the utility model;

[0026] Figure 5 It is three-dimensional structure schematic view of condensing recovery mechanism section in the utility model;

[0027] Figure 6 It is three-dimensional structure schematic view of rotating worm wheel and rotating connecting disc in the utility model.

[0028] In the drawing: 1, cooling mechanism;101, cooling tower body;102, feed pipe;103, connecting elbow;104, flow divider;105, shunt pipe;106, spiral cooling pipe;107, manifold pipe;108, flow collector;109, discharge pipe;110, first valve;111, first radiating spiral blade;112, rotating connecting column;113, second radiating spiral blade;114, second valve;115, spraying pump;116, water injection pipe;117, sprayer;118, spraying nozzle;2, condensing recovery mechanism;201, condensing box;202, air inlet pipe;203, third valve;204, exhaust pipe;205, support column;206, support disc;207, rotating support;208, rotating motor;209, rotating worm;210, rotating worm wheel;211, rotating connecting disc;212, flow guide plate;213, condensing disc. DETAILED DESCRIPTION

[0029] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments of the utility model, all the other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the utility model.

[0030] Please refer to Figures 1-6The utility model provides technical scheme: an energy -saving cooling tower, including cooling mechanism 1 and install in the inside spray pump 115 of cooling mechanism 1 top, the top of cooling mechanism 1 is provided with condensing recovery mechanism 2, and the inside center position of condensing recovery mechanism 2 is fixedly installed with support column 205, cooling mechanism 1 includes cooling tower body 101, and the top one side of cooling tower body 101 is fixedly installed with feed pipe 102, and the end of feed pipe 102 is fixedly installed with the connecting elbow pipe 103, wherein, the bottom of connecting elbow pipe 103 is fixedly installed with the flow divider 104, and the outside of flow divider 104 is fixedly installed with a plurality of shunt pipes 105, wherein, the end of shunt pipe 105 is fixedly installed with spiral cooling pipe 106, and the bottom of spiral cooling pipe 106 is fixedly installed with the flow pipe 107, and the end of flow pipe 107 is fixedly installed with the flow collector 108, and the bottom of flow collector 108 is fixedly installed with the discharge pipe 109, and the end of discharge pipe 109 is provided with first valve 110, and the side of flow divider 104 close to shunt pipe 105 is fixedly installed with a plurality of first radiating helical leaves 111, and connecting elbow pipe 103 is fixedly installed in the top center position of cooling tower body 101, and the rotatable connecting column 112 is fixedly connected between flow divider 104 and flow collector 108, and the outside of rotatable connecting column 112 is fixedly installed with a plurality of second radiating helical leaves 113, and the bottom one side of cooling tower body 101 is fixedly installed with second valve 114, and the inside spray pump 115 is fixedly installed in the top of cooling tower body 101, and the top one side of spray pump 115 is fixedly installed with water injection pipe 116, and the bottom of spray pump 115 is fixedly installed with sprayer 117, and the bottom of sprayer 117 is fixedly installed with a plurality of spray nozzles 118, utilize feed pipe 102 and connecting elbow pipe 103 and need the liquid of cooling to be transported to the inside of cooling tower body 101, flow into spiral cooling pipe 106 through flow divider 104 and shunt pipe 105, and start spray pump 115 and pump into sprayer 117 with cooling water, spray out through spray nozzle 118, not only can utilize cooling water to carry out the rapid cooling of spiral cooling pipe 106, and the impact of cooling water first radiating helical leaves 111 and second radiating helical leaves 113 can produce certain helical force, make first radiating helical leaves 111 and second radiating helical leaves 113 drive flow divider 104, rotatable connecting column 112 and flow collector 108 respectively rotate, through the mode of rotation can realize the uniform rapid cooling of spiral cooling pipe 106, thereby improve the cooling efficiency of cooling tower.

[0031] The condensing recovery mechanism 2 comprises a condensing box 201, the bottom inner side of the condensing box 201 is fixedly provided with an air inlet pipe 202, the air inlet pipe 202 is fixedly provided at the top of the cooling tower body 101, one side of the bottom of the condensing box 201 is fixedly provided with a third valve 203, the top center of the condensing box 201 is fixedly provided with an air outlet pipe 204, a supporting column 205 is fixedly provided at the inner center of the condensing box 201, the top of the supporting column 205 is fixedly provided with a supporting disc 206, the top of the supporting disc 206 is symmetrically provided with a rotating support 207, the outer side of one side rotating support 207 is fixedly provided with a rotating motor 208, the output end of the rotating motor 208 is fixedly connected with a rotating worm 209, one side of the rotating worm 209 is meshingly connected with a rotating worm wheel 210, the rotating worm wheel 210 is rotatably connected with the supporting disc 206, the top of the rotating worm wheel 210 is fixedly provided with a rotating connecting disc 211, the top of the rotating connecting disc 211 is fixedly provided with a flow guide plate 212, the top of the flow guide plate 212 is fixedly provided with a condensing disc 213, the water vapor generated by the cooling tower is collected by the air inlet pipe 202 at the bottom inner side of the condensing box 201, the water vapor is condensed when meeting the condensing disc 213 at the top of the condensing box 201, and falls into the bottom of the condensing box 201 under the action of the flow guide plate 212 and is collected, the gas is discharged through the air outlet pipe 204, so that the stability of the internal air pressure of the condensing box 201 is ensured, at the same time, the rotating motor 208 is started to drive the rotating worm 209 to rotate, the rotating connecting disc 211 drives the flow guide plate 212 and the condensing disc 213 to rotate by the meshing connection between the rotating worm 209 and the rotating worm wheel 210, and the condensing effect of the condensing disc 213 is improved by the rotating mode.

[0032] Working principle: before using the energy-saving cooling tower, the overall situation of the device needs to be checked to determine whether it can work normally, according to Figure 1 - Figure 6As shown, first, the liquid to be cooled is delivered to the inside of the cooling tower body 101 by the feed pipe 102 and the connecting elbow 103, flows into the spiral cooling pipe 106 through the flow divider 104 and the flow divider pipe 105, and the spray pump 115 is started to pump cooling water into the sprayer 117, which is sprayed through the spray nozzle 118. Not only can the spiral cooling pipe 106 be quickly cooled by the cooling water, but the impact of the cooling water on the first and second heat dissipation spiral leaves 111 and 113 can also generate a certain spiral force, which can drive the flow divider 104, the rotating connecting column 112 and the flow collector 108 to rotate, respectively. The spiral cooling pipe 106 can be uniformly and quickly cooled by rotating, thereby improving the cooling efficiency of the cooling tower. Secondly, the water vapor generated by the cooling tower is collected by the inlet pipe 202 at the bottom of the condensing box 201. When the water vapor encounters the condensing disc 213 at the top of the condensing box 201, it is condensed and falls into the bottom of the condensing box 201 under the action of the guide plate 212. The gas is discharged through the exhaust pipe 204, thereby ensuring the stability of the internal gas pressure of the condensing box 201. At the same time, the rotating motor 208 is started to drive the rotating worm 209 to rotate, and the rotating worm 209 and the rotating worm wheel 210 are connected by meshing, so that the rotating connecting disc 211 drives the guide plate 212 and the condensing disc 213 to rotate. The condensing effect of the condensing disc 213 can be improved by rotating.

[0033] Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions recorded in the foregoing embodiments or make equivalent replacement to part of the technical features, and any modification, equivalent replacement, improvement, etc. within the spirit and principles of the utility model should be included in the protection scope of the utility model.

Claims

1. An energy-saving cooling tower, comprising a cooling mechanism (1) and a spray pump (115) installed on the inner side of the top of the cooling mechanism (1). The top of the cooling mechanism (1) is provided with a condensate recovery mechanism (2), and a support column (205) is fixedly installed at the inner central position of the condensate recovery mechanism (2). characterized in that Further comprising: The cooling mechanism (1) comprises a cooling tower body (101), and the top side of the cooling tower body (101) is fixedly installed with a feed pipe (102), and the end of the feed pipe (102) is fixedly installed with a connecting elbow (103). Wherein, the bottom of the connecting elbow (103) is fixedly installed with a flow divider (104), and the outer side of the flow divider (104) is fixedly installed with a plurality of shunt pipes (105). Wherein, the end of the shunt pipe (105) is fixedly installed with a spiral cooling pipe (106), and the bottom of the spiral cooling pipe (106) is fixedly installed with a flow collector (107).

2. The energy efficient cooling tower as claimed in claim 1, wherein: The end of the flow collector (107) is fixedly installed with a flow collector (108), and the bottom of the flow collector (108) is fixedly installed with a discharge pipe (109), and the end of the discharge pipe (109) is provided with a first valve (110), and the side of the flow divider (104) close to the shunt pipe (105) is fixedly installed with a plurality of first heat dissipation spiral leaves (111), and the connecting elbow (103) is fixedly installed at the top central position of the cooling tower body (101).

3. The energy efficient cooling tower as claimed in claim 2, wherein: The flow divider (104) and the flow collector (108) are fixedly connected with a rotating connecting column (112), and the outer side of the rotating connecting column (112) is fixedly installed with a plurality of second heat dissipation spiral leaves (113), and the bottom side of the cooling tower body (101) is fixedly installed with a second valve (114), and the spray pump (115) is fixedly installed on the inner side of the top of the cooling tower body (101).

4. The energy efficient cooling tower as claimed in claim 3, wherein: The top side of the spray pump (115) is fixedly installed with a water injection pipe (116), the bottom of the spray pump (115) is fixedly installed with a sprayer (117), and the bottom of the sprayer (117) is fixedly installed with a plurality of spray nozzles (118).

5. The energy efficient cooling tower as claimed in claim 1, wherein: The condensate recovery mechanism (2) comprises a condenser (201), and the bottom inner side of the condenser (201) is fixedly installed with an air inlet pipe (202) around, the air inlet pipe (202) is fixedly installed around the top of the cooling tower body (101), the bottom side of the condenser (201) is fixedly installed with a third valve (203), and the top central position of the condenser (201) is fixedly installed with an exhaust pipe (204).

6. An energy efficient cooling tower as claimed in claim 5, wherein: The support column (205) is fixedly installed at the inner central position of the condenser (201), the top of the support column (205) is fixedly installed with a support disc (206), the top side of the support disc (206) is symmetrically installed with a rotating support (207), the outer side of one side of the rotating support (207) is fixedly installed with a rotating motor (208), and the output end of the rotating motor (208) is fixedly connected with a rotating worm (209).

7. An energy efficient cooling tower as claimed in claim 6, wherein: One side of the rotating worm (209) is connected with a rotating worm wheel (210), the rotating worm wheel (210) is rotationally connected with the support disc (206), the top of the rotating worm wheel (210) is fixedly installed with a rotating connecting disc (211), the top of the rotating connecting disc (211) is fixedly installed with a flow guide plate (212), and the top of the flow guide plate (212) is fixedly installed with a condensing disc (213).

Citation Information

Patent Citations

  • Efficient cooling tower

    CN216558391U