Glass fiber reinforced plastic tower body and cooling tower

By adopting the combination of fiberglass tower body design, fan-assisted air inlet and spraying components in the cooling tower, the problem of insufficient air inlet efficiency of the cooling tower is solved, and the control of rotating rain cover and forward and reverse motors is used to block the acidification of rainwater, extending the service life of the cooling tower.

CN222951563UActive Publication Date: 2025-06-06JIYUAN DINGCHANG IND CO LTD
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Patent Information

Application Number
CN202421666971.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-15
Publication Date
2025-06-06
Estimated Expiration
2034-07-15

AI Technical Summary

Technical Problem

The existing cooling towers have shortcomings in the insufficient air intake efficiency and water quality corrosion caused by rainwater acidification, resulting in unsatisfactory cooling effect and shortened service life.

Method used

The fiberglass tower body design is adopted, combined with fan-assisted air inlet and spraying components to improve cooling efficiency; at the same time, by rotating the rainbow plate and controlling the positive and reverse motor, rainwater is blocked from entering the cooling tower and protecting the water quality in the tower.

Benefits of technology

It improves the air inlet efficiency and cooling effect of the cooling tower, extends the service life of the cooling tower, and avoids water quality corrosion caused by rainwater acidification.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a glass fiber reinforced plastic tower body and a cooling tower, relates to industrial cooling technical field, including: glass fiber reinforced plastic tower body, the inside of glass fiber reinforced plastic tower body is fixedly equipped with the heat exchange coil pipe, both sides surface of glass fiber reinforced plastic tower body are fixedly equipped with the coaming, the inside of glass fiber reinforced plastic tower body is equipped with the spraying subassembly, the spraying subassembly is equipped with the heat exchange coil pipe. Auxiliary air inlet assemblies are arranged in the two surrounding plates, second supporting columns are installed at the four ends of the top of the glass fiber reinforced plastic tower body, three inclined rain sheltering assemblies are arranged on the inner sides of the four second supporting columns, and sliding door assemblies are arranged on the surfaces of the opposite sides of the two second supporting columns. According to the utility model, the water pump, the fan, the exhaust fan and the positive and negative motor are communicated with an external power supply and an external control terminal, the amount of cold air entering is increased through the auxiliary air inlet assembly, and rainwater on the side surface is blocked through the sliding door assembly and the inclined rain blocking assembly.
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Description

Technical Field

[0001] The utility model relates to the technical field of industrial cooling, in particular to a glass fiber reinforced plastic tower body and a cooling tower. Background Art

[0002] A cooling tower is a device that uses water as a circulating coolant to absorb heat from a system and discharge it into the atmosphere to lower the water temperature. It uses the heat exchange between water and air flow to generate steam, and the steam evaporates and takes away the heat to achieve the principles of evaporative heat dissipation, convection heat transfer and radiation heat transfer to dissipate the waste heat generated in industry or refrigeration and air conditioning to lower the water temperature through an evaporative heat dissipation device to ensure the normal operation of the system.

[0003] However, in the prior art, when the cooling tower is performing cooling work, air is usually allowed to naturally enter the cooling tower from the bottom air inlet and then rise, heat exchange is performed on the air inside the cooling tower, and then the hot air is discharged by the top fan. However, this method has insufficient air intake efficiency and unsatisfactory cooling effect. Secondly, the acidification degree of rainwater in industrial areas is relatively large, and cooling towers are usually placed outdoors. When it rains, molecules such as sulfur dioxide in the air are mixed with rainwater and enter the cooling tower from the air outlet at the top of the cooling tower, which will cause the water quality in the cooling tower to become acidic, and will have a certain corrosion effect on the inner wall and internal pipes of the cooling tower for a long time, thereby reducing the service life of the cooling tower.

[0004] Therefore, a glass fiber reinforced plastic tower body and a cooling tower are proposed to solve the above problems. Utility Model Content

[0005] The purpose of the utility model is to solve the problems existing in the prior art.

[0006] In order to achieve the above-mentioned purpose, the utility model adopts the following technical scheme: a glass fiber reinforced plastic tower body and a cooling tower, comprising: a glass fiber reinforced plastic tower body, a water inlet is installed through the bottom of the surface of one end of the glass fiber reinforced plastic tower body, a heat exchange coil is fixedly installed inside the glass fiber reinforced plastic tower body, both ends of the heat exchange coil pass through the same side surface of the glass fiber reinforced plastic tower body, a plurality of through grooves are opened through the four ends of the surface of the glass fiber reinforced plastic tower body, and the tops of the plurality of through grooves are fixedly installed with inclined plates, and the two side surfaces of the glass fiber reinforced plastic tower body are fixedly installed with enclosures, and the A spray assembly is arranged inside the FRP tower body, a water retaining plate is fixedly installed on the top of the inner part of the FRP tower body, auxiliary air inlet assemblies are arranged inside the two enclosures, an air outlet is opened on the top of the FRP tower body, an exhaust fan is arranged inside the air outlet through a bracket, support columns 2 are installed at the four ends of the top of the FRP tower body, rain shield covers are installed on the tops of the four support columns 2, three inclined rain shield assemblies are arranged on the inner sides of the four support columns 2, and sliding door assemblies are arranged on the surfaces of the opposite sides of two of the support columns 2.

[0007] As a preferred embodiment, a supporting base plate is fixedly installed at the bottom of one side surface of the FRP tower body, an escalator is fixedly installed at the top of the supporting base plate, the top of the escalator is fixedly installed at the top of one side surface of the FRP tower body, a supporting plate is fixedly installed at one end of the top of the FRP tower body, and a through groove 2 is opened at the center of the surface of the support plate.

[0008] As a preferred embodiment, the spray assembly includes a water pipe 1, one end of which passes through the bottom of one side surface of a FRP tower body, the other end of which is fixedly connected to a water pump, a support block is fixedly installed on the surface of the water pump, one end of the support block is fixedly installed on one side surface of the FRP tower body, one end of the water pump is fixedly connected to a water pipe 2, one end of the water pipe 2 passes through one side surface of the FRP tower body and is connected to a diversion water pipe, the bottom of the diversion water pipe is connected to multiple water pipes 3, both ends of the multiple water pipes 3 are fixedly installed on both sides of the inside of the FRP tower body, and the bottoms of the multiple water pipes 3 are connected to multiple nozzles.

[0009] As a preferred embodiment, the auxiliary air intake assembly includes a support column 1, which is fixedly mounted on both sides of the inner cavity of the enclosure, and three connecting blocks are fixedly sleeved on the surface of the support column 1, and a fan is fixedly mounted at one end of the three connecting blocks.

[0010] As a preferred embodiment, the sliding door assembly includes two baffles, two limiting slide grooves are fixedly installed at both ends of one side of the two baffles, two door panels are movably embedded in the surfaces on the opposite sides of the two limiting slide grooves, the bottoms of the two door panels are opened with grooves, a plurality of connecting shafts are fixedly embedded inside the two grooves, and pulleys are movably sleeved on the surfaces of the plurality of connecting shafts, an L-shaped lock buckle is embedded in the surface of one of the door panels through a bearing, a lock block is fixedly installed on the surface of the other door panel, one end of the L-shaped lock buckle is engaged with the surface of the lock block, and handles are fixedly installed on the surfaces of the two door panels.

[0011] As a preferred implementation, the second through slot is located directly above the escalator.

[0012] As a preferred embodiment, the inclined rain shield assembly includes four rotating shafts and a forward and reverse motor, one ends of the four rotating shafts pass through the surface of one of the supporting columns two through bearings, the other ends of the four rotating shafts are embedded in the side surface of another supporting column two through bearings, rain shields are fixedly installed on the surfaces of the four rotating shafts, plywood is fixedly installed on both sides of one end of the four rotating shafts, a plurality of plywoods are evenly divided into two groups, the inner sides of the two groups of plywoods are movably connected with connecting rods through movable shafts, forward and reverse motors are provided at both ends of the four plywoods, the two ends of the four plywoods are connected to connecting rods through movable shafts, an L-shaped support block is fixedly connected to the surface of the forward and reverse motor, one end of the L-shaped support block is fixedly connected to the surface of one of the supporting columns two, and the output end of the forward and reverse motor is fixedly embedded at one end of one of the rotating shafts.

[0013] Compared with the prior art, the advantages and positive effects of the utility model are:

[0014] 1. The utility model connects the water pump, fan, exhaust fan, forward and reverse motor to the external power supply and the external control terminal, and pre-fills the bottom of the FRP tower body with water through the water inlet. After the water filling is completed, the water inlet is sealed with a rubber plug. When the cooling tower needs to be used, the water pump, fan and are started at the same time, and the hot water to be cooled enters through one end of the heat exchange coil. Then, the fan rotates to transport the external cold air along the inclined plate to the inside of the FRP tower body in an oblique upward direction. The cold air moves upward, then passes through the heat exchange coil to exchange heat with the hot air it emits, and then rotates through the exhaust fan. The exchanged hot air is discharged from the interior of the FRP tower body, and the formed water vapor is blocked by a water baffle. While the fan delivers cold air, the pre-stored water in the FRP tower body is sucked out by a water pump, and delivered to the inside of the diversion water pipe through water pipe one and water pipe two, and then diverted to multiple water pipes three through the diversion water pipe, and sprayed onto the surface of water pipe one through multiple nozzles. The sprayed water flow descends and flows back to the bottom of the FRP tower body for circulation. This method uses fan-assisted air intake to solve the problem of insufficient wind force and unsatisfactory cooling effect when the conventional cooling tower has natural air intake.

[0015] 2. In the utility model, when it is necessary to inspect and maintain the top of the tower body, the staff can climb to the top of the support plate through the escalator, rotate the L-shaped lock to unlock it from the surface of the lock block, pull the handle to drive the door panel to expand to both sides, and reduce the resistance when pulling through the pulley at the bottom of the door panel, so as to enter the equipment for maintenance. On rainy days, the top rain shield plate blocks rainwater, and the staff can control the three forward and reverse motors through the external controller according to the rain conditions. The rotation of each forward and reverse motor drives one of the rotating shafts and the clamping plate to rotate, and the rotation of the rotating shaft drives the rain shield to tilt. At the same time, the rain shield connected to each The connecting rod on the surface of the rotating shaft drives the rotation of one of the splints to drive the rotation of the other splints and synchronously drives the tilt of the other rain shields. The rotation angle of the forward and reverse motors is controlled by the control terminal, thereby controlling the tilt amplitude of multiple rain shields to further block rainwater from drifting into the interior of the fiberglass tower body. This solves the problem that because the acidity of rainwater in industrial areas is relatively high, when rainwater enters the cooling tower from the air outlet on the top of the cooling tower, it will directly cause the water quality in the cooling tower to become acidic, and will have a certain corrosive effect on the inner wall and internal pipes of the cooling tower, thereby reducing the service life of the cooling tower. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 A schematic diagram of the three-dimensional structure of a glass fiber reinforced plastic tower body and a cooling tower provided by the utility model;

[0017] Figure 2 A three-dimensional structural section diagram of a glass fiber reinforced plastic tower body and a cooling tower provided by the utility model;

[0018] Figure 3 A bottom view of the three-dimensional structure of a glass fiber reinforced plastic tower body and a cooling tower provided by the utility model;

[0019] Figure 4 A three-dimensional structural disassembled diagram of a glass fiber reinforced plastic tower body and a cooling tower provided by the utility model;

[0020] Figure 5 A cross-sectional view of a glass fiber reinforced plastic tower body and a sliding door assembly of a cooling tower provided by the utility model;

[0021] Figure 6 A cross-sectional view of a glass fiber reinforced plastic tower body and an auxiliary air inlet assembly of a cooling tower provided by the utility model;

[0022] Figure 7 A disassembled diagram of a glass fiber reinforced plastic tower body and a door panel of a cooling tower provided by the utility model;

[0023] Figure 8 This is an enlarged view of the A position of a glass fiber reinforced plastic tower body and a cooling tower provided by the utility model;

[0024] Fig. 9This is an enlarged view of point B of a glass fiber reinforced plastic tower body and a cooling tower provided by the utility model.

[0025] Legend:

[0026] 1. FRP tower body; 101. Water inlet; 102. Heat exchange coil; 103. Through slot 1; 104. Inclined plate; 105. Enclosure; 2. Spraying assembly; 201. Water pipe 1; 202. Water pump; 203. Support block; 204. Water pipe 2; 205. Diverter pipe; 206. Water pipe 3; 207. Nozzle; 3. Water baffle; 4. Auxiliary air inlet assembly; 401. Support column 1; 402. Connection block; 403. Fan; 5. Support bottom plate; 501. Escalator; 6. Air outlet; 60 1. Exhaust fan; 7. Support column 2; 701. Rain shield cover; 702. Support plate; 703. Through slot 2; 8. Sliding door assembly; 801. Baffle; 802. Limiting slide slot; 803. Door panel; 804. Groove; 805. Connecting shaft; 806. Pulley; 807. L-shaped lock; 808. Lock block; 809. Handle; 9. Tilting rain shield assembly; 901. Rotating shaft; 902. Rain shield; 903. Clamp; 904. Forward and reverse motor; 905. Connecting rod; 906. L-shaped support block. DETAILED DESCRIPTION

[0027] The following will be combined with the drawings in the embodiments of the utility model to clearly and completely describe the technical solutions in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all of the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.

[0028] See also Figure 1-9The utility model provides a technical solution: a glass fiber reinforced plastic tower body and a cooling tower, comprising: a glass fiber reinforced plastic tower body 1, a water inlet 101 is installed through the bottom of one end surface of the glass fiber reinforced plastic tower body 1, a heat exchange coil 102 is fixedly installed inside the glass fiber reinforced plastic tower body 1, both ends of the heat exchange coil 102 pass through the same side surface of the glass fiber reinforced plastic tower body 1, a plurality of through grooves 103 are opened through the four ends of the surface of the glass fiber reinforced plastic tower body 1, and the tops of the plurality of through grooves 103 are fixedly installed with inclined plates 104, and the two side surfaces of the glass fiber reinforced plastic tower body 1 are fixedly installed with enclosures 105, and the glass A spraying assembly 2 is arranged inside the steel tower body 1, a water retaining plate 3 is fixedly installed at the top of the interior of the FRP tower body 1, auxiliary air inlet assemblies 4 are arranged inside the two enclosures 105, an air outlet 6 is opened at the top of the FRP tower body 1, an exhaust fan 601 is arranged inside the air outlet 6 through a bracket, support columns 7 are installed at the four ends of the top of the FRP tower body 1, rain shield covers 701 are installed on the tops of the four support columns 7, three inclined rain shield assemblies 9 are arranged on the inner sides of the four support columns 7, and sliding door assemblies 8 are arranged on the surfaces on the opposite sides of two of the support columns 7.

[0029] Specifically: the interior of the FRP tower body 1 can be pre-injected with water through the water inlet 101, the liquid to be cooled can be transported to the interior of the FRP tower body 1 through the heat exchange coil 102, and cold air can enter the interior of the FRP tower body 1 through the through groove 103. The heat exchange coil 102 is sprayed with cold water by the spray assembly 2 to reduce the temperature, the rising water vapor is intercepted by the water baffle 3, the air volume of the cold air entering is increased by the auxiliary air inlet assembly 4, the rising hot air is discharged by the exhaust fan 601, the rain on the top of the FRP tower body 1 is blocked by the rain shield cover 701, and the rain on the side is blocked by the sliding door assembly 8 and the inclined rain shield assembly 9.

[0030] In one embodiment, a supporting base plate 5 is fixedly installed at the bottom of one side surface of the FRP tower body 1, an escalator 501 is fixedly installed on the top of the supporting base plate 5, and the top of the escalator 501 is fixedly installed on the top of one side surface of the FRP tower body 1. A supporting plate 702 is fixedly installed at one end of the top of the FRP tower body 1, and a through groove 2 703 is opened at the center of the surface of the supporting plate 702.

[0031] Specifically: the escalator 501 enables the staff to reach the top of the FRP tower body 1 to maintain the equipment, and the support plate 702 provides a place for the staff to stand when they arrive.

[0032] In one embodiment, the spray assembly 2 includes a water pipe 201, one end of which passes through the bottom of one side surface of the FRP tower body 1, the other end of which is fixedly connected to a water pump 202, a support block 203 is fixedly installed on the surface of the water pump 202, one end of the support block 203 is fixedly installed on one side surface of the FRP tower body 1, one end of the water pump 202 is fixedly connected to a water pipe 204, one end of the water pipe 204 passes through one side surface of the FRP tower body 1 and is connected to a diversion water pipe 205, the bottom of the diversion water pipe 205 is connected to multiple water pipes 3 206, both ends of the multiple water pipes 3 206 are fixedly installed on both sides of the inside of the FRP tower body 1, and the bottoms of the multiple water pipes 3 206 are connected to multiple nozzles 207.

[0033] Specifically: the pre-stored water inside the FRP tower body 1 is sucked out by the water pump 202, transported to the inside of the diversion water pipe 205 through the water pipe 1 201 and the water pipe 2 204, then diverted to multiple water pipes 3 206 through the diversion water pipe 205, and sprayed onto the surface of the water pipe 1 201 through multiple nozzles 207. The sprayed water flow descends and flows back to the bottom of the FRP tower body 1 for circulation.

[0034] In one embodiment, the auxiliary air intake assembly 4 includes a support column 401, which is fixedly mounted on both sides of the inner cavity of the enclosure 105. Three connecting blocks 402 are fixedly mounted on the surface of the support column 401, and a fan 403 is fixedly mounted at one end of the three connecting blocks 402.

[0035] Specifically: the external cold air is delivered to the inside of the device by the rotation of the fan 403 , and the fan 403 is supported by the support column 1 401 and the connection block 402 .

[0036] In one embodiment, the sliding door assembly 8 includes two baffles 801, two limiting slide grooves 802 are fixedly installed at both ends of one side of the two baffles 801, two door panels 803 are movably embedded in the surfaces on the opposite sides of the two limiting slide grooves 802, and the bottoms of the two door panels 803 are each provided with a groove 804, and a plurality of connecting shafts 805 are fixedly embedded inside the two grooves 804, and pulleys 806 are movably sleeved on the surfaces of the plurality of connecting shafts 805, and an L-shaped lock buckle 807 is embedded in the surface of one of the door panels 803 through a bearing, and a lock block 808 is fixedly installed on the surface of the other door panel 803, and one end of the L-shaped lock buckle 807 is engaged with the surface of the lock block 808, and handles 809 are fixedly installed on the surfaces of the two door panels 803.

[0037] Specifically: the L-shaped lock buckle 807 is rotated to unlock it from the surface of the lock block 808, and the handle 809 is pulled to drive the door panel 803 to expand to both sides. Both ends of the door panel 803 are engaged in the two limiting slide grooves 802, and the pulley 806 at the bottom of the door panel 803 is used to reduce the resistance during pulling.

[0038] In one embodiment, the second through slot 703 is located directly above the escalator 501 .

[0039] Specifically, the second through slot 703 is opened right above the escalator 501 so that the staff will not be blocked when reaching the top via the escalator 501 .

[0040] In one embodiment, the inclined rain shield assembly 9 includes four rotating shafts 901 and a forward and reverse motor 904, one end of the four rotating shafts 901 passes through the surface of one of the support columns 27 through a bearing, and the other end of the four rotating shafts 901 is embedded in the side surface of another support column 27 through a bearing, and the surface of the four rotating shafts 901 is fixedly installed with a rain shield 902, and both sides of one end of the four rotating shafts 901 are fixedly installed with a clamping plate 903, and the multiple clamping plates 903 are evenly divided into two groups, and the inner sides of the two groups of clamping plates 903 are movably connected with connecting rods 905 through movable shafts, and both ends of the four clamping plates 903 are provided with forward and reverse motors 904, and both ends of the four clamping plates 903 are connected to the connecting rods 905 through movable shafts, and the surface of the forward and reverse motor 904 is fixedly connected with an L-shaped support block 906, and one end of the L-shaped support block 906 is fixedly connected to the surface of one of the support columns 27, and the output end of the forward and reverse motor 904 is fixedly embedded in one end of one of the rotating shafts 901.

[0041] Specifically: three forward and reverse motors 904 are controlled by an external controller. The rotation of each forward and reverse motor 904 drives one of the rotating shafts 901 and the clamping plate 903 to rotate. The rotation of the rotating shaft 901 drives the rain shield 902 to tilt. At the same time, the connecting rod 905 connected to the surface of each rotating shaft 901 drives the remaining clamping plates 903 to rotate and synchronously drives the remaining rain shields 902 to tilt through the rotation of one of the clamping plates 903. The rotation angle of the forward and reverse motor 904 can be controlled by the amount of rainfall, thereby controlling the tilt amplitude of multiple rain shields 902 to ensure that no rainwater floats into the equipment.

[0042] Working principle: connect the water pump 202, fan 403, exhaust fan 601, forward and reverse motor 904 to the external power supply and external control terminal, and pre-fill water into the bottom of the FRP tower body 1 through the water inlet 101. After the water filling is completed, seal the water inlet 101 with a rubber plug. When the cooling tower needs to be used, start the water pump 202, fan 403 and 604 at the same time, and let the hot water to be cooled enter through one end of the heat exchange coil 102. Then, the fan 403 rotates to transport the external cold air along the inclined plate 104 to the inside of the FRP tower body 1 in an upward direction. The cold air moves upward, then passes through the heat exchange coil 102 to exchange heat with the hot air it emits, and then through the exhaust The fan 601 rotates to discharge the exchanged hot air from the inside of the FRP tower body 1, and the formed water vapor is blocked by the water baffle 3. While the fan 403 delivers cold air, the pre-stored water in the FRP tower body 1 is sucked out by the water pump 202, and delivered to the inside of the diversion water pipe 205 through the water pipe 1 201 and the water pipe 2 204, and then diverted to multiple water pipes 3 206 through the diversion water pipe 205, and sprayed onto the surface of the water pipe 1 201 through multiple nozzles 207. The sprayed water flow descends and flows back to the bottom of the FRP tower body 1 for circulation. This method uses the fan 403 to assist the air intake, which solves the problem of insufficient wind force when the conventional cooling tower naturally takes in air, and the cooling The effect is not ideal; when it is necessary to inspect and maintain the top of the tower body, the staff can climb to the top of the support plate 702 through the escalator 501, rotate the L-shaped lock buckle 807 to unlock it from the surface of the lock block 808, pull the handle 809 to drive the door panel 803 to expand to both sides, and at the same time reduce the resistance during pulling through the pulley 806 at the bottom of the door panel 803, so as to enter the equipment for maintenance. On rainy days, the top rain shield cover 701 blocks rainwater, and the staff can control the three forward and reverse motors 904 through an external controller according to the rain conditions. Each forward and reverse motor 904 rotates to drive one of the rotating shafts 901 and the clamping plate 903 to rotate, and the rotating shaft 901 rotates to drive the rain shield 90 2 tilt, and at the same time, the connecting rod 905 connected to the surface of each rotating shaft 901 drives the other clamping plates 903 to rotate and synchronously drives the other rain shields 902 to tilt through the rotation of one clamping plate 903, and controls the rotation angle of the forward and reverse motors 904 through the control terminal, so as to control the tilting amplitude of multiple rain shields 902 to further prevent rainwater from drifting into the interior of the glass fiber reinforced plastic tower body 1, and solves the problem that because the acidity of rainwater in industrial areas is relatively high, when rainwater enters the cooling tower from the air outlet on the top of the cooling tower, it will directly cause the water quality in the cooling tower to become acidic, and will have a certain corrosive effect on the inner wall and internal pipes of the cooling tower, thereby reducing the service life of the cooling tower.

[0043] The above description is only a preferred embodiment of the present invention and does not limit the present invention in other forms. Any technician familiar with the profession may use the technical content disclosed above to change or modify it into an equivalent embodiment with equivalent changes and apply it to other fields. However, any simple modification, equivalent change and modification made to the above embodiment based on the technical essence of the present invention without departing from the content of the technical solution of the present invention still falls within the protection scope of the technical solution of the present invention.

Claims

1. A glass fiber reinforced plastic tower body and cooling tower, characterized in that: include: A glass fiber reinforced plastic tower body (1), wherein a water inlet (101) is installed through the bottom of one end surface of the glass fiber reinforced plastic tower body (1), a heat exchange coil (102) is fixedly installed inside the glass fiber reinforced plastic tower body (1), both ends of the heat exchange coil (102) pass through the same side surface of the glass fiber reinforced plastic tower body (1), a plurality of through grooves (103) are opened through the four ends of the surface of the glass fiber reinforced plastic tower body (1), and inclined plates (104) are fixedly installed on the tops of the plurality of through grooves (103), enclosures (105) are fixedly installed on both side surfaces of the glass fiber reinforced plastic tower body (1), and a spraying assembly (2) is arranged inside the glass fiber reinforced plastic tower body (1), A water retaining plate (3) is fixedly installed at the top of the interior of the glass fiber reinforced plastic tower body (1), and auxiliary air inlet components (4) are arranged inside the two enclosures (105). An air outlet (6) is opened at the top of the glass fiber reinforced plastic tower body (1), and an exhaust fan (601) is arranged inside the air outlet (6) through a bracket. Support columns (7) are installed at the four ends of the top of the glass fiber reinforced plastic tower body (1), and rain shielding covers (701) are installed on the tops of the four support columns (7). Three inclined rain shielding components (9) are arranged on the inner sides of the four support columns (7), and sliding door components (8) are arranged on the surfaces of the opposite sides of two of the support columns (7).

2. A glass fiber reinforced plastic tower body and cooling tower according to claim 1, characterized in that: A supporting base plate (5) is fixedly mounted on the bottom of one side surface of the glass fiber reinforced plastic tower body (1), an escalator (501) is fixedly mounted on the top of the supporting base plate (5), the top of the escalator (501) is fixedly mounted on the top of one side surface of the glass fiber reinforced plastic tower body (1), a supporting plate (702) is fixedly mounted on one end of the top of the glass fiber reinforced plastic tower body (1), and a through groove (703) is provided at the center of the surface of the supporting plate (702).

3. A glass fiber reinforced plastic tower body and cooling tower according to claim 1, characterized in that: The spray assembly (2) comprises a water pipe (201), one end of which passes through the bottom of one side surface of the glass fiber reinforced plastic tower body (1), the other end of which is fixedly connected to a water pump (202), a support block (203) is fixedly mounted on the surface of the water pump (202), one end of which is fixedly mounted on one side surface of the glass fiber reinforced plastic tower body (1), one end of which is fixedly connected to a water pipe (204), one end of which passes through one side surface of the glass fiber reinforced plastic tower body (1) and is connected to a diversion water pipe (205), the bottom of which is connected to a plurality of water pipes (206), both ends of which are fixedly mounted on two sides of the interior of the glass fiber reinforced plastic tower body (1), and the bottoms of which are connected to a plurality of spray heads (207).

4. A glass fiber reinforced plastic tower body and cooling tower according to claim 1, characterized in that: The auxiliary air intake assembly (4) comprises a support column (401), wherein the support column (401) is fixedly mounted on both sides of the inner cavity of the enclosure (105), and three connecting blocks (402) are fixedly sleeved on the surface of the support column (401), and a fan (403) is fixedly mounted on one end of each of the three connecting blocks (402).

5. A glass fiber reinforced plastic tower body and cooling tower according to claim 1, characterized in that: The sliding door assembly (8) comprises two baffles (801), two limiting slide grooves (802) are fixedly installed at both ends of one side of the two baffles (801), two door panels (803) are movably embedded in the surfaces of the opposite sides of the two limiting slide grooves (802), the bottoms of the two door panels (803) are provided with grooves (804), a plurality of connecting shafts (805) are fixedly embedded in the interiors of the two grooves (804), and pulleys (806) are movably sleeved on the surfaces of the plurality of connecting shafts (805), an L-shaped lock buckle (807) is embedded in the surface of one of the door panels (803) through a bearing, a lock block (808) is fixedly installed on the surface of the other door panel (803), one end of the L-shaped lock buckle (807) is engaged with the surface of the lock block (808), and handles (809) are fixedly installed on the surfaces of the two door panels (803).

6. A glass fiber reinforced plastic tower body and cooling tower according to claim 2, characterized in that: The second through slot (703) is located directly above the escalator (501).

7. A glass fiber reinforced plastic tower body and cooling tower according to claim 1, characterized in that: The tilting rain shield assembly (9) comprises four rotating shafts (901) and a forward and reverse motor (904), one end of each of the four rotating shafts (901) passes through the surface of one of the supporting columns (7) through a bearing, the other end of each of the four rotating shafts (901) is embedded in the surface of one side of another supporting column (7) through a bearing, a rain shield plate (902) is fixedly mounted on the surface of each of the four rotating shafts (901), and clamping plates (903) are fixedly mounted on both sides of one end of each of the four rotating shafts (901), and the plurality of clamping plates (903) are evenly divided into two groups, the two groups The inner sides of the clamps (903) are movably connected to connecting rods (905) via movable shafts, both ends of the four clamps (903) are provided with forward and reverse motors (904), both ends of the four clamps (903) are connected to connecting rods (905) via movable shafts, the surfaces of the forward and reverse motors (904) are fixedly connected to L-shaped support blocks (906), one end of the L-shaped support block (906) is fixedly connected to the surface of one of the support columns (7), and the output end of the forward and reverse motor (904) is fixedly embedded in one end of one of the rotating shafts (901).