Energy-saving circulating water cooling tower mechanism

By introducing energy-saving components and circulation components into the cooling tower, monitoring the water temperature to control the start-stop of the fan and filtering the cooling water, the problem of high power loss of the cooling tower is solved, and the energy-saving and efficient operation of the cooling tower is achieved.

CN223091078UActive Publication Date: 2025-07-11ZHONGHUAN ENVIRONMENTAL ENG EQUIP WUXI CO LTD
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Patent Information

Application Number
CN202422213747.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-10
Publication Date
2025-07-11
Estimated Expiration
2034-09-10

AI Technical Summary

Technical Problem

There is a problem of increased power loss during use of existing cooling towers, resulting in reduced usage efficiency.

Method used

Energy-saving components and circulation components are adopted, including cooling coils, temperature sensors, cooling fans, circulation water pipes, water collection chambers and filter boxes. The water temperature is monitored through temperature sensors and the start and stop of the cooling fan is controlled. Combined with filters, the cooling water is prevented from being blocked, and the cooling efficiency and equipment life are improved.

Benefits of technology

The energy-saving operation of the cooling tower is achieved, the power consumption is reduced, the equipment life is extended, and the practicality and efficiency of the cooling tower are improved.

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Abstract

The utility model discloses an energy-saving circulating water cooling tower mechanism, which relates to the technical field of cooling towers, and comprises a cooling tower main body and an energy-saving component, an air outlet is arranged in the middle of the upper end of the cooling tower main body, a cooling fan is arranged in the air outlet, and a dehydrator is arranged at the upper end in the cooling tower main body. An energy-saving assembly is arranged in the cooling tower body and comprises a cooling coil, a water inlet, a circulating water pipe, a water outlet and a temperature sensor, the water inlet is formed in the front end of the cooling coil, the circulating water pipe is additionally arranged at the lower end of the cooling coil, and the water outlet is formed in the front end of the cooling coil. Meanwhile, a temperature sensor is additionally arranged at the upper end of the water outlet, and a circulating assembly is arranged outside the cooling tower body. According to the energy-saving circulating water cooling tower mechanism, the overall energy consumption of the cooling tower can be reduced in the use process of the cooling tower, excessive power loss during use of the cooling tower is avoided, and the overall use efficiency of the cooling tower mechanism is improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of cooling towers, in particular to an energy-saving circulating water cooling tower mechanism. Background Technique

[0002] A cooling tower uses water as a circulating coolant, absorbs heat from a system and discharges it into the atmosphere to reduce the water temperature. Its cooling principle is to use the heat exchange between water and air flow contact to generate steam, and the evaporation of the steam takes away heat to achieve evaporation heat dissipation, convective heat transfer and radiative heat transfer and other principles to dissipate the waste heat generated in industry or refrigeration air conditioning to reduce the water temperature, so as to ensure the normal operation of the system. The device is generally barrel-shaped, so it is named a cooling tower. In order to improve the circulating cooling efficiency of water, a cooling tower is needed, but the existing cooling towers still have the following deficiencies:

[0003] For example, the utility model with the application number 202223076084.6 discloses an energy-saving circulating water cooling tower mechanism. The utility model can spray and cool the hot water in the coil through the arranged spraying device, and can cool the sprayed water twice through the arranged cooling component, so that the sprayed water can be quickly cooled and reused, increasing the cooling efficiency of the water in the coil. However, for the comparative documents similar to the above application, when the existing cooling tower is in use, due to the lack of an efficient and energy-saving use structure in most cooling towers, the power loss increases during the use of the cooling tower, resulting in the problems of reduced practicality and use efficiency of the cooling tower.

[0004] Therefore, in view of this, research and improvement are carried out on the existing structure and deficiencies, and an energy-saving circulating water cooling tower mechanism is proposed. Content of the Utility Model

[0005] The purpose of the utility model is to provide an energy-saving circulating water cooling tower mechanism to solve the problems raised in the above background technique.

[0006] To achieve the above purpose, the utility model provides the following technical scheme: An energy-saving circulating water cooling tower mechanism includes a cooling tower main body and an energy-saving component. An air outlet is arranged in the middle of the upper end of the cooling tower main body, and a heat dissipation fan is installed inside the air outlet. A water eliminator is installed at the upper end inside the cooling tower main body. An energy-saving component is arranged inside the cooling tower main body, and the energy-saving component includes a cooling coil, a water inlet, a circulating water pipe, a water outlet and a temperature sensor. The water inlet is arranged at the front end of the cooling coil, a circulating water pipe is additionally arranged at the lower end of the cooling coil, the water outlet is arranged at the front end of the cooling coil, and a temperature sensor is additionally arranged at the upper end of the water outlet. A circulating component is arranged outside the cooling tower main body.

[0007] Furthermore, the external dimensions of the water eliminator are adapted to the internal dimensions of the cooling tower body, and the water eliminator is embedded in the cooling tower body.

[0008] Furthermore, the circulating water pipe is embedded in the cooling tower body, and the outer side of the circulating water pipe is closely attached to the bottom of the cooling tower body.

[0009] Furthermore, the temperature sensor is vertically distributed with the water outlet, and the temperature sensor and the water outlet are fixedly connected by bolts.

[0010] Furthermore, the circulating assembly includes a water collecting chamber, a water collecting pipe, a water injector, and a water guiding pipe. A water collecting pipe is arranged inside the water collecting chamber, and a water injector is additionally arranged at the lower end of the water collecting pipe. The outside of the water collecting chamber is connected with a water guiding pipe.

[0011] Furthermore, the circulating assembly further includes a water pump, a filtering box, and a filtering element. A water pump is installed at the front end of the water guiding pipe, a filtering box is connected to the outside of the water pump, and a filtering element is arranged inside the filtering box.

[0012] Furthermore, the water collecting pipe is embedded in the water collecting chamber, and the water collecting pipes are equidistantly distributed inside the water collecting chamber.

[0013] Furthermore, the filtering element is embedded in the filtering box, and the filtering element is fixedly connected to the filtering box by bolts.

[0014] The utility model provides an energy-saving circulating water cooling tower mechanism, which has the following beneficial effects:

[0015] 1. Through the setting of the energy-saving component, when the energy-saving circulating water cooling tower mechanism is in use, the cooling coil is fixedly installed inside the cooling tower body by fastening bolts, and hot water to be cooled is injected into the cooling coil through the water inlet. At the same time, the hot water flows into the circulating water pipe, so that the hot water in the circulating water pipe can avoid freezing of the cooling water at the bottom of the cooling tower body. At the same time, the cooled hot water is sent out through the water outlet, and the water temperature is monitored by the temperature sensor installed at the water outlet, and the switch of the cooling tower is interlocked with the temperature. When the temperature exceeds the set value, the cooling fan is turned on for cooling, and when the temperature drops to the set value, the cooling fan is turned off. In this way, the power consumption is saved, and the energy-saving performance during the use of the cooling tower is improved.

[0016] 2. Through the setting of the circulation component, when the energy-saving circulating water cooling tower mechanism is in use, the water collection cavity can be fixedly installed at the upper end inside the cooling tower main body through fastening bolts, and the water collection pipe can be fixedly installed inside the water collection cavity in cooperation with the fastening bolts. The water entering the water collection cavity then flows into the water collection pipe, and the cooling water is evenly sprinkled through the water injector installed at the lower end of the water collection pipe. Connect the water guide pipe outside the water collection cavity. At the same time, the operation of the water pump connected to the lower end of the water guide pipe causes the cooling water contained at the bottom of the cooling tower main body to be suctioned into the water collection cavity, and the cooling water is filtered through the filter box arranged at the lower end of the water pump. The filter element is used to prevent the cooling water from being blocked by the water pump and other components during long-term circulation, prolong the service life of the cooling tower mechanism, and improve the overall practicality of the cooling tower. Description of the Drawings

[0017] Figure 1 is a three-dimensional structural schematic diagram of an energy-saving circulating water cooling tower mechanism of the present utility model;

[0018] Figure 2 is a three-dimensional sectional structural schematic diagram of an energy-saving component of an energy-saving circulating water cooling tower mechanism of the present utility model;

[0019] Figure 3 is a three-dimensional structural schematic diagram of a circulation component of an energy-saving circulating water cooling tower mechanism of the present utility model.

[0020] In the figure: 1, cooling tower main body; 2, air outlet; 3, cooling fan; 4, water eliminator; 5, energy-saving component; 501, cooling coil; 502, water inlet; 503, circulating water pipe; 504, water outlet; 505, temperature sensor; 6, circulation component; 601, water collection cavity; 602, water collection pipe; 603, water injector; 604, water guide pipe; 605, water pump; 606, filter box; 607, filter element. Specific Embodiments

[0021] The following further describes in detail the embodiments of the present utility model in conjunction with the drawings and examples. The following examples are used to illustrate the present utility model, but cannot be used to limit the scope of the present utility model.

[0022] Such as Figure 1 and Figure 2As shown in the figure, an energy-saving circulating water cooling tower mechanism includes a cooling tower main body 1 and an energy-saving component 5. In the middle of the upper end of the cooling tower main body 1, there is an air outlet 2, and a cooling fan 3 is installed inside the air outlet 2. Inside the upper end of the cooling tower main body 1, a water eliminator 4 is installed. Inside the cooling tower main body 1, there is an energy-saving component 5, and the energy-saving component 5 includes a cooling coil 501, a water inlet 502, a circulating water pipe 503, a water outlet 504, and a temperature sensor 505. The front end of the cooling coil 501 is provided with a water inlet 502, and a circulating water pipe 503 is additionally provided at the lower end of the cooling coil 501. And the front end of the cooling coil 501 is provided with a water outlet 504. At the same time, a temperature sensor 505 is additionally provided above the water outlet 504. The external dimensions of the water eliminator 4 are adapted to the internal dimensions of the cooling tower main body 1, and the water eliminator 4 is embedded in the cooling tower main body 1. The circulating water pipe 503 is embedded in the cooling tower main body 1, and the outer side of the circulating water pipe 503 is closely attached to the bottom of the cooling tower main body 1. The temperature sensor 505 is vertically distributed with the water outlet 504, and the temperature sensor 505 and the water outlet 504 are fixedly connected by bolts. The cooling coil 501 is fixedly installed inside the cooling tower main body 1 through fastening bolts, and hot water to be cooled is injected into the cooling coil 501 through the water inlet 502. At the same time, the hot water flows into the circulating water pipe 503. And the circulating water pipe 503 is installed at the bottom of the cooling tower main body 1, so that the hot water inside the circulating water pipe 503 can avoid the freezing of the cooling water at the bottom of the cooling tower main body 1. At the same time, the cooling efficiency of the hot water is increased, and a heating structure is not required to be added at the bottom of the cooling tower main body 1 to prevent the cooling water from freezing at a low temperature. At the same time, the cooled hot water is sent out through the water outlet 504, and the temperature sensor 505 installed at the water outlet 504 is used to monitor the water temperature, and the switch of the cooling tower is interlocked with the temperature. When the temperature exceeds the set value, the cooling fan 3 is turned on for cooling. When the temperature drops to the set value, the cooling fan 3 is turned off. By this method, the power consumption is saved, and the energy-saving performance during the use of the cooling tower is improved.

[0023] As Figures 1 to 3As shown in the figure, a circulation assembly 6 is arranged outside the cooling tower main body 1. The circulation assembly 6 includes a water collection cavity 601, a water collection pipe 602, a water injector 603 and a water guide pipe 604. A water collection pipe 602 is arranged inside the water collection cavity 601, and a water injector 603 is additionally arranged at the lower end of the water collection pipe 602. A water guide pipe 604 is connected to the outside of the water collection cavity 601. The circulation assembly 6 further includes a water pump 605, a filtration tank 606 and a filtration element 607. A water pump 605 is installed at the front end of the water guide pipe 604, and a filtration tank 606 is connected to the outside of the water pump 605. At the same time, a filtration element 607 is arranged inside the filtration tank 606. The water collection pipe 602 is embedded in the water collection cavity 601, and the water collection pipes 602 are equidistantly distributed inside the water collection cavity 601. The filtration element 607 is embedded in the filtration tank 606, and the filtration element 607 is fixedly connected to the filtration tank 606 by bolts. The water collection cavity 601 is fixedly installed at the upper end inside the cooling tower main body 1 through fastening bolts, and the water collection pipe 602 is fixedly installed inside the water collection cavity 601 in cooperation with the fastening bolts. The water entering the water collection cavity 601 then flows into the water collection pipe 602, and the cooling water is evenly sprinkled through the water injector 603 installed at the lower end of the water collection pipe 602. The water guide pipe 604 is connected to the outside of the water collection cavity 601. At the same time, the operation of the water pump 605 connected to the lower end of the water guide pipe 604 sucks the cooling water contained at the bottom of the cooling tower main body 1 into the water collection cavity 601, and the cooling water is filtered through the filtration tank 606 arranged at the lower end of the water pump 605. The filtration element 607 is used to prevent the cooling water used in long-term circulation from blocking the water pump 605, etc., extend the service life of the cooling tower mechanism, and improve the overall practicality of the cooling tower.

[0024] In summary, for the energy-saving circulating water cooling tower mechanism, during use, firstly, the water eliminator 4 provided at the upper end inside the cooling tower main body 1 is used to prevent the circulating water from overflowing the cooling tower. The cooling coil 501 is fixedly installed inside the cooling tower main body 1 through fastening bolts, and hot water to be cooled is injected into the cooling coil 501 through the water inlet 502. Meanwhile, the hot water flows into the circulating water pipe 503 during the flow. The circulating water pipe 503 is installed at the bottom of the cooling tower main body 1, so that the hot water inside the circulating water pipe 503 can avoid the freezing of the cooling water at the bottom of the cooling tower main body 1 and increase the cooling efficiency of the hot water. The cooled hot water is sent out through the water outlet 504, and the temperature sensor 505 installed at the water outlet 504 is used to monitor the water temperature, and the switch of the cooling tower is interlocked with the temperature. When the temperature exceeds the set value, the cooling fan 3 is turned on for cooling. When the temperature drops to the set value, the cooling fan 3 is turned off. In this way, the power consumption is saved. Then, the water collecting chamber 601 is fixedly installed at the upper end inside the cooling tower main body 1 through fastening bolts, and the water collecting pipe 602 is fixedly installed inside the water collecting chamber 601 in cooperation with the fastening bolts. The water entering the water collecting chamber 601 then flows into the water collecting pipe 602, and the cooling water is evenly sprinkled out through the water injector 603 installed at the lower end of the water collecting pipe 602. The water guide pipe 604 is connected to the outside of the water collecting chamber 601. Meanwhile, the water pump 605 connected to the lower end of the water guide pipe 604 operates to suck the cooling water contained at the bottom of the cooling tower main body 1 into the water collecting chamber 601, and the cooling water is filtered through the filter box 606 provided at the lower end of the water pump 605. The filter element 607 is used to prevent the cooling water used for long-term circulation from blocking the water pump 605, etc., extend the service life of the cooling tower mechanism, and improve the overall practicality of the cooling tower.

[0025] The embodiments of the present invention are given for purposes of illustration and description, and are not exhaustive or limit the present invention to the disclosed form. Many modifications and variations are obvious to those of ordinary skill in the art. The embodiments are selected and described to better illustrate the principles and practical applications of the present invention, and enable those of ordinary skill in the art to understand the present invention and thus design various embodiments with various modifications suitable for specific purposes.

Claims

1. An energy-saving circulating water cooling tower mechanism, comprising a cooling tower main body (1) and an energy-saving component (5), characterized in that, At the middle of the upper end of the cooling tower main body (1), there is an air outlet (2), and a cooling fan (3) is installed inside the air outlet (2). An eliminator (4) is installed at the upper end inside the cooling tower main body (1). An energy-saving component (5) is arranged inside the cooling tower main body (1), and the energy-saving component (5) includes a cooling coil (501), a water inlet (502), a circulating water pipe (503), a water outlet (504), and a temperature sensor (505). The water inlet (502) is arranged at the front end of the cooling coil (501), a circulating water pipe (503) is additionally arranged at the lower end of the cooling coil (501), the water outlet (504) is arranged at the front end of the cooling coil (501), and a temperature sensor (505) is additionally arranged at the upper end of the water outlet (504). A circulating component (6) is arranged outside the cooling tower main body (1).

2. The energy-saving circulating water cooling tower mechanism according to claim 1, wherein, The external dimensions of the eliminator (4) are adapted to the internal dimensions of the cooling tower main body (1), and the eliminator (4) is embedded in the cooling tower main body (1).

3. The energy-saving circulating water cooling tower mechanism according to claim 1, characterized in that, The circulating water pipe (503) is embedded in the cooling tower main body (1), and the outer side of the circulating water pipe (503) is closely attached to the bottom of the cooling tower main body (1).

4. The energy-saving circulating water cooling tower mechanism according to claim 1, characterized in that, The temperature sensor (505) is vertically distributed with the water outlet (504), and the temperature sensor (505) is fixedly connected to the water outlet (504) by bolts.

5. The energy-saving circulating water cooling tower mechanism according to claim 1, characterized in that, The circulating component (6) includes a water collection chamber (601), a water collection pipe (602), a water injector (603), and a water guide pipe (604). A water collection pipe (602) is arranged inside the water collection chamber (601), and a water injector (603) is additionally arranged at the lower end of the water collection pipe (602). A water guide pipe (604) is connected to the outside of the water collection chamber (601).

6. The energy-saving circulating water cooling tower mechanism according to claim 5, characterized in that, The circulating component (6) further includes a water pump (605), a filter box (606), and a filter element (607). A water pump (605) is installed at the front end of the water guide pipe (604), a filter box (606) is connected to the outside of the water pump (605), and a filter element (607) is arranged inside the filter box (606).

7. The energy-saving circulating water cooling tower mechanism according to claim 6, wherein The water collection pipe (602) is embedded in the water collection chamber (601), and the water collection pipes (602) are equidistantly distributed inside the water collection chamber (601).

8. The energy-saving circulating water cooling tower mechanism according to claim 6, characterized in that, The filter element (607) is embedded in the filter box (606), and the filter element (607) is fixedly connected to the filter box (606) by bolts.

Citation Information

Patent Citations

  • An energy-saving circulating water cooling tower mechanism

    CN218864829U