Water vapor recovery device of fog dispersal cooling tower

By designing a water vapor recovery device for defogging cooling towers, the problems of complex steam recovery and treatment and resource waste in cooling towers have been solved, achieving efficient water vapor recovery and secondary utilization, and reducing costs.

CN224018870UActive Publication Date: 2026-03-20QINGDAO AOTES ELECTROMECHANICAL SYST ENG CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-17
Publication Date
2026-03-20

AI Technical Summary

Technical Problem

Existing cooling towers generate a large amount of steam during operation, and the recovery and treatment methods are complicated. The treated steam water is difficult to collect effectively, resulting in water waste and increased costs.

Method used

A water vapor recovery device for a defogging cooling tower was designed, including a base, a defogging cooling tower, a conveying structure, a supporting structure, a load-bearing structure, a heat dissipation structure, and a water tank structure. The device processes water vapor through conveying, diverting, condensing, and recovering, thereby improving the condensation rate and enabling secondary utilization.

Benefits of technology

It achieves efficient recovery and reuse of water vapor, reduces water waste, lowers costs, and has a simple structure and is easy to use.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a vapor recovery device for a fog dispersal cooling tower, relates to the field of industrial cooling towers, and solves the problems that a large amount of vapor is generated when the existing cooling tower works, the vapor treatment mode of the fog dispersal cooling tower for recovering the vapor is more complicated, the treated vapor water cannot be well collected, and the use cost of the fog dispersal cooling tower is reduced. The problems that in the prior art, water resources are wasted and cost is increased due to stepped water price due to the fact that the water resources after being treated fall into a collecting pool on the lower portion in a scattered mode, the collecting efficiency is low, and circulating water in the cooling tower can be brought out by water vapor are solved. The device is technically characterized by comprising a base and a fog dispersal cooling tower, the fog dispersal cooling tower is mounted on the upper surface of the base; and the first conveying structure is installed on the fog dispersal cooling tower, and the first conveying structure is used for conveying. Waste of water resources is reduced, the structure is relatively simple, and use is convenient.
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Description

TECHNICAL FIELD

[0001] The utility model relates to industrial cooling tower technical field especially relates to a kind of fog dissipating cooling tower water vapor recovery device. BACKGROUND

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

[0003] The existing cooling tower can produce a large amount of steam when working, and the fog dissipating cooling tower for recovering water vapor has a relatively complex treatment mode for water vapor, and the treated steam water cannot be collected well, and the treated water source will be scattered and dropped into the lower collecting pool, so that the collection efficiency is low, and the circulating water in the cooling tower will be taken out by the water vapor, which not only causes waste of water resources, but also increases the cost due to the ladder water price, so it is necessary to design a fog dissipating cooling tower water vapor recovery device to solve the problem. SUMMARY

[0004] The utility model wants to solve the technical problem in prior art that the existing cooling tower can produce a large amount of steam when working, and the fog dissipating cooling tower for recovering water vapor has a relatively complex treatment mode for water vapor, and the treated steam water cannot be collected well, and the treated water source will be scattered and dropped into the lower collecting pool, so that the collection efficiency is low, and the circulating water in the cooling tower will be taken out by the water vapor, which not only causes waste of water resources, but also increases the cost due to the ladder water price, and provides a fog dissipating cooling tower water vapor recovery device.

[0005] To solve the above technical problems, the technical scheme of the utility model is as follows:

[0006] A kind of fog dissipating cooling tower water vapor recovery device, comprising:

[0007] Base and fog dissipating cooling tower;

[0008] The fog dissipating cooling tower is installed on the upper surface of the base;

[0009] First conveying structure, the first conveying structure is installed on fog dissipating cooling tower, and the first conveying structure is used for conveying;

[0010] Supporting structure, the supporting structure is installed on the upper surface of fog dissipating cooling tower, and the supporting structure is used for supporting;

[0011] a bearing structure, which is installed on the upper surface of the support structure and is used for bearing;

[0012] a heat dissipation structure, which is installed on the side surface of the bearing structure and is used for heat dissipation;

[0013] a second conveying structure, which is installed on the bearing structure and is used for conveying;

[0014] a water tank structure, which is installed on the upper surface of the base, is connected with the second conveying structure, and is used for bearing;

[0015] a third conveying structure, which is installed on the water tank structure and is used for conveying.

[0016] Preferably, the first conveying structure comprises a first conveying shell and a first conveying pipe.

[0017] Therefore, the first conveying shell is installed on the upper surface of the mist-eliminating cooling tower and is connected with the gas outlet on the upper surface of the mist-eliminating cooling tower, and the first conveying pipe is installed on the upper surface of the first conveying shell.

[0018] Preferably, the support structure comprises a support frame.

[0019] The support frame is installed on the upper surface of the mist-eliminating cooling tower.

[0020] Preferably, the bearing structure comprises a bearing tank, a flow distribution shell, and a plurality of flow guide plates.

[0021] The bearing tank is installed on the upper surface of the support frame and is connected with the first conveying pipe, the flow distribution shell is installed on the first conveying pipe and is located in the bearing tank, and the plurality of flow guide plates are installed on the inner side surface of the bearing tank.

[0022] Preferably, the heat dissipation structure comprises a plurality of refrigeration pipes matched with the plurality of flow guide plates and a plurality of heat dissipation fins.

[0023] Each lower surface of the flow guide plates is provided with a laying groove, each refrigeration pipe is installed in the corresponding laying groove, and the plurality of heat dissipation fins are installed on the outer side surface of the bearing tank.

[0024] Preferably, the second conveying structure comprises a plurality of flow guide shells matched with the plurality of flow guide plates, a plurality of conveying pipes matched with the plurality of flow guide shells, a multi-way pipe, and a second conveying pipe.

[0025] A plurality of said flow guide shell is installed on the inside surface of the bearing tank, and each said flow guide shell is located below the corresponding flow guide plate, each said conveying pipe is installed on the corresponding flow guide shell, and a plurality of said conveying pipe extends out of the bearing tank, said multi-way pipe is installed on a plurality of said conveying pipe, and said second conveying pipe is installed on the multi-way pipe.

[0026] Preferably, the water tank structure comprises: a bearing water tank, a water inlet pipe, a first valve, a water outlet pipe, a second valve and a third conveying pipe;

[0027] The bearing water tank is installed on the upper surface of the base, and the bearing water tank is connected with the second conveying pipe, the water inlet pipe is installed on the bearing water tank, the first valve is installed on the water inlet pipe, the water outlet pipe is installed on the bearing water tank, and the second valve is installed on the water outlet pipe, the third conveying pipe is installed at the lower end of the mist cooling tower, and the third conveying pipe is connected with the bearing water tank.

[0028] Preferably, the third conveying structure comprises: a conveying pump body and a fourth conveying pipe;

[0029] The conveying pump body is installed on the bearing water tank, and the conveying pump body is in communication with the inside of the bearing water tank, the fourth conveying pipe is installed on the conveying pump body, and the fourth conveying pipe is connected with the spraying system of the mist cooling tower.

[0030] Preferably, the base is provided with a controller, and the base is provided with a power supply interface.

[0031] The utility model has the following beneficial effects:

[0032] The mist cooling tower water vapor recovery device can better recover and process water vapor, is very convenient, reduces unnecessary trouble, ensures low temperature through the heat dissipation structure, improves the condensation rate of water vapor, is more efficient, the treated steam water can be well recovered and reused, reduces the waste of water resources, and the structure is relatively simple and convenient to use. BRIEF DESCRIPTION OF DRAWINGS

[0033] The utility model will be further explained in detail in combination with the drawings and specific embodiments.

[0034] Figure 1 It is a structure diagram of a mist cooling tower water vapor recovery device of the utility model;

[0035] Figure 2 It is a front view structure diagram of a mist cooling tower water vapor recovery device of the utility model;

[0036] Figure 3 It is a front view of a mist cooling tower water vapor recovery device of the utility model.

[0037] Figure 4 A plan view of a fog dissipating cooling tower water vapor recovery device of the utility model.

[0038] The reference signs in the drawings represent:

[0039] Base 10, fog dissipating cooling tower 20, first conveying structure 30, support structure 40, bearing structure 50, heat dissipation structure 60, second conveying structure 70, water tank structure 80, third conveying structure 90, controller 100, mains interface 110;

[0040] First conveying shell 31, first conveying pipe 32;

[0041] Support frame 41;

[0042] Bearing tank body 51, shunt shell 52, flow guide plate 53;

[0043] Refrigeration pipe 61, heat dissipation fin 62;

[0044] Flow guide shell 71, conveying guide pipe 72, multi-way pipe 73, second conveying pipe 74;

[0045] Bearing water tank 81, water inlet pipe 82, first valve 83, water outlet pipe 84, second valve 85, third conveying pipe 86;

[0046] Conveying pump body 91, fourth conveying pipe 92. DETAILED DESCRIPTION

[0047] 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 in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the utility model. It should be noted that, in order to facilitate description, in the current view, "left side" is "first end", "right side" is "second end", "upper side" is "first end", and "lower side" is "second end". The purpose of such description is to clearly express the technical solutions, and it should not be understood as improper limitation of the technical solutions of the application.

[0048] Please refer to Figures 1-4As shown, a kind of fog cooling tower water vapor recovery device, including: base 10 and fog cooling tower 20, fog cooling tower 20 is installed on the upper surface of base 10, first transmission structure 30, first transmission structure 30 is installed on fog cooling tower 20, and first transmission structure 30 is used to transmit, support structure 40, support structure 40 is installed on the upper surface of fog cooling tower 20, and support structure 40 is used to support, bearing structure 50, bearing structure 50 is installed on the upper surface of support structure 40, and bearing structure 50 is used to bear, heat dissipation structure 60, heat dissipation structure 60 is installed on the side surface of bearing structure 50, and heat dissipation structure 60 is used to dissipate heat, second transmission structure 70, second transmission structure 70 is installed on bearing structure 50, and second transmission structure 70 is used to transmit, water tank structure 80, water tank structure 80 is installed on the upper surface of base 10, water tank structure 80 is connected with second transmission structure 70, and water tank structure 80 is used to bear, third transmission structure 90, third transmission structure 90 is installed on water tank structure 80, and third transmission structure 90 is used to transmit.

[0049] First transmission structure 30 on fog cooling tower 20 is used to transmit, support structure 40 on the upper surface of fog cooling tower 20 is used to support, bearing structure 50 on the upper surface of support structure 40 is used to bear, heat dissipation structure 60 on the side surface of bearing structure 50 is used to dissipate heat, second transmission structure 70 on bearing structure 50 is used to transmit, water tank structure 80 on the upper surface of base 10 is used to bear, third transmission structure 90 on water tank structure 80 is used to transmit.

[0050] First transmission structure 30 includes: first transmission shell 31 and first transmission pipe 32, so first transmission shell 31 is installed on the upper surface of fog cooling tower 20, and first transmission shell 31 is communicated with the gas outlet on the upper surface of fog cooling tower 20, first transmission pipe 32 is installed on the upper surface of first transmission shell 31.

[0051] Water vapor in fog cooling tower 20 is transmitted by first transmission shell 31 and first transmission pipe 32.

[0052] Support structure 40 includes: support frame 41, support frame 41 is installed on the upper surface of fog cooling tower 20.

[0053] Bearing structure 50 includes: bearing tank body 51, shunt shell 52 and several guide plates 53, bearing tank body 51 is installed on the upper surface of support frame 41, and bearing tank body 51 is communicated with first transmission pipe 32, shunt shell 52 is installed on first transmission pipe 32, and shunt shell 52 is located in bearing tank body 51, several guide plates 53 are installed on the inner side surface of bearing tank body 51.

[0054] The water vapor is shunted by the shunting shell 52 in the bearing tank 51, and then the water vapor is fully contacted with the flow guide plate 53.

[0055] The heat dissipation structure 60 comprises the refrigeration pipes 61 matched with the flow guide plates 53, and the heat dissipation fins 62, the lower surface of each flow guide plate 53 is provided with a laying groove, each refrigeration pipe 61 is installed in the corresponding laying groove, and the heat dissipation fins 62 are installed on the outer side surface of the bearing tank 51.

[0056] The water vapor is cooled by the refrigeration pipes 61 on the flow guide plates 53, and the bearing tank 51 is cooled by the heat dissipation fins 62, so that the water vapor is better treated.

[0057] The second conveying structure 70 comprises the flow guide shells 71 matched with the flow guide plates 53, the conveying pipes 72 matched with the flow guide shells 71, the multi-way pipe 73, and the second conveying pipe 74, the flow guide shells 71 are installed on the inner side surface of the bearing tank 51, each flow guide shell 71 is located below the corresponding flow guide plate 53, each conveying pipe 72 is installed on the corresponding flow guide shell 71, the conveying pipes 72 extend out of the bearing tank 51, the multi-way pipe 73 is installed on the conveying pipes 72, and the second conveying pipe 74 is installed on the multi-way pipe 73.

[0058] The cooled steam water is sent out of the bearing tank 51 by the flow guide shells 71 cooperating with the conveying pipes 72, the multi-way pipe 73, and the second conveying pipe 74, and is sent back into the bearing water tank 81.

[0059] The water tank structure 80 comprises the bearing water tank 81, the water inlet pipe 82, the first valve 83, the water outlet pipe 84, the second valve 85, and the third conveying pipe 86, the bearing water tank 81 is installed on the upper surface of the base 10, the bearing water tank 81 is connected with the second conveying pipe 74, the water inlet pipe 82 is installed on the bearing water tank 81, the first valve 83 is installed on the water inlet pipe 82, the water outlet pipe 84 is installed on the bearing water tank 81, the second valve 85 is installed on the water outlet pipe 84, and the third conveying pipe 86 is installed at the lower end of the fog cooling tower 20 and is connected with the bearing water tank 81.

[0060] The spraying water is carried by the bearing water tank 81, and the steam water is recycled for use.

[0061] The third conveying structure 90 comprises the conveying pump body 91 and the fourth conveying pipe 92, the conveying pump body 91 is installed on the bearing water tank 81 and is connected with the inside of the bearing water tank 81, and the fourth conveying pipe 92 is installed on the conveying pump body 91 and is connected with the spraying system of the fog cooling tower 20.

[0062] The water is sent into the fourth conveying pipe 92 through the conveying pump body 91, and is conveyed to the spraying system of the fog-eliminating cooling tower 20 through the fourth conveying pipe 92, and is used in a cycle.

[0063] The base 10 is provided with a controller 100, and the base 10 is provided with a commercial power interface 110.

[0064] The controller 100 on the base 10 is controlled, and the commercial power interface 110 on the base 10 is connected to the power supply.

[0065] Firstly, the commercial power interface 110 on the base 10 is connected to the power supply, the controller 100 on the base 10 is turned on, the first valve 83 on the water inlet pipe 82 is opened, a certain amount of water is injected, then the first valve 83 on the water inlet pipe 82 is closed, the fog-eliminating cooling tower 20 starts to work, the water vapor is sent into the bearing tank body 51 through the first conveying shell 31 and the first conveying pipe 32, is divided through the dividing shell 52, contacts the guide plate 53 and the inner side surface of the bearing tank body 51, is condensed under the cooling of the refrigeration pipe 61 and the heat dissipation fin 62, flows into the guide shell 71 along the guide plate 53 and the inner side surface of the bearing tank body 51, is sent into the bearing water tank 81 through the conveying guide pipe 72, the multi-way pipe 73 and the second conveying pipe 74, is conveyed to the spraying system of the fog-eliminating cooling tower 20 through the conveying pump body 91 and the fourth conveying pipe 92, and is used continuously, which is very convenient.

[0066] Obviously, the above embodiments are only examples for clearly illustrating, but not limitation to the embodiments. Other different forms of changes or variations can be made on the basis of the above description for ordinary skilled in the art. Here, all the embodiments need not and cannot be exhausted. The obvious changes or variations derived therefrom are still within the protection scope of the present application.

Claims

1. A steam recovery device for a defogging cooling tower, characterized in that, include: Base (10) and defogging cooling tower (20); The defogging cooling tower (20) is installed on the upper surface of the base (10); A first conveying structure (30) is installed on the defogging cooling tower (20) and is used for conveying. A support structure (40) is installed on the upper surface of the defogging cooling tower (20) and is used for support; A load-bearing structure (50) is mounted on the upper surface of a support structure (40) and is used to bear loads. A heat dissipation structure (60) is mounted on the side surface of the supporting structure (50) and is used for heat dissipation. The second conveying structure (70) is mounted on the supporting structure (50) and is used for conveying. A water tank structure (80) is installed on the upper surface of the base (10), the water tank structure (80) is connected to the second conveying structure (70), and the water tank structure (80) is used to carry loads. A third conveying structure (90) is installed on a water tank structure (80) and is used for conveying.

2. The steam recovery device for a defogging cooling tower as described in claim 1, characterized in that, The first transmission structure (30) includes: a first transmission housing (31) and a first transmission tube (32); Therefore, the first conveying housing (31) is installed on the upper surface of the defogging cooling tower (20), and the first conveying housing (31) is connected to the gas outlet on the upper surface of the defogging cooling tower (20), and the first conveying pipe (32) is installed on the upper surface of the first conveying housing (31).

3. The steam recovery device for a defogging cooling tower as described in claim 2, characterized in that, The support structure (40) includes: a support frame (41); The support frame (41) is installed on the upper surface of the defogging cooling tower (20).

4. The steam recovery device for a mist-eliminating cooling tower as described in claim 3, characterized in that, The supporting structure (50) includes: a supporting tank (51), a diversion shell (52), and several guide plates (53); The carrying tank (51) is installed on the upper surface of the support frame (41), and the carrying tank (51) is connected to the first conveying pipe (32). The diversion shell (52) is installed on the first conveying pipe (32), and the diversion shell (52) is located inside the carrying tank (51). Several of the guide plates (53) are installed on the inner surface of the carrying tank (51).

5. The steam recovery device for a defogging cooling tower as described in claim 4, characterized in that, The heat dissipation structure (60) includes: a cooling pipe (61) that matches a plurality of the guide plates (53) and a plurality of heat dissipation fins (62). Each of the flow guide plates (53) has a laying groove on its lower surface, each of the cooling pipes (61) is installed in the corresponding laying groove, and a number of the heat dissipation fins (62) are installed on the outer surface of the carrier tank (51).

6. The steam recovery device for a defogging cooling tower as described in claim 5, characterized in that, The second conveying structure (70) includes: a flow guide housing (71) that matches the plurality of flow guide plates (53), a conveying conduit (72) that matches the plurality of flow guide housings (71), a multi-port pipe (73), and a second conveying pipe (74). A plurality of the flow guide shells (71) are installed on the inner surface of the carrier tank (51), and each flow guide shell (71) is located below the corresponding flow guide plate (53). Each of the transfer conduits (72) is installed on the corresponding flow guide shell (71), and a plurality of the transfer conduits (72) extend out of the carrier tank (51). The multi-port pipe (73) is installed on a plurality of the transfer conduits (72), and the second transfer pipe (74) is installed on the multi-port pipe (73).

7. The steam recovery device for a mist-eliminating cooling tower as described in claim 6, characterized in that, The water tank structure (80) includes: a carrying water tank (81), an inlet pipe (82), a first valve (83), an outlet pipe (84), a second valve (85), and a third transmission pipe (86); The carrying water tank (81) is installed on the upper surface of the base (10), and the carrying water tank (81) is connected to the second transmission pipe (74). The inlet pipe (82) is installed on the carrying water tank (81). The first valve (83) is installed on the inlet pipe (82). The outlet pipe (84) is installed on the carrying water tank (81), and the second valve (85) is installed on the outlet pipe (84). The third transmission pipe (86) is installed at the lower end of the defogging cooling tower (20), and the third transmission pipe (86) is connected to the carrying water tank (81).

8. The steam recovery device for a defogging cooling tower as described in claim 7, characterized in that, The third transmission structure (90) includes: a transmission pump body (91) and a fourth transmission pipe (92). The transfer pump body (91) is installed on the carrying water tank (81) and is connected to the inside of the carrying water tank (81). The fourth transfer pipe (92) is installed on the transfer pump body (91) and is connected to the spray system of the defogging cooling tower (20).

9. A steam recovery device for a defogging cooling tower as described in claim 1, characterized in that, The base (10) is provided with a controller (100) and a mains power interface (110).