Integrated pressure-stabilizing distribution device for water distribution of cooling tower

By designing an integrated pressure stabilizing and distributing device, the problem of nozzle instability caused by water pressure fluctuations in the cooling tower water distribution system was solved, achieving uniform water distribution and improved cooling efficiency. The device is also robust and easy to maintain.

CN224230829UActive Publication Date: 2026-05-12HEBEI ZHONGLENG COOLING EQUIP
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HEBEI ZHONGLENG COOLING EQUIP
Filing Date
2025-05-23
Publication Date
2026-05-12

AI Technical Summary

Technical Problem

In the existing cooling tower water distribution system, water pressure fluctuations cause unstable nozzle operation, resulting in uneven water distribution in the cooling tower and substandard cooling efficiency.

Method used

An integrated pressure stabilizing and distributing device was designed, comprising an upper body, a water distribution pipe, an upper arm pipe, a nozzle, a steel belt, a lower body, a lower arm pipe, a buffer chamber, a baffle, a sealing splicing buckle, a sealing splicing buckle groove, a binding groove, a sealing buckle, a socket, a splicing interface, a sealing groove, a sealing ring, and reinforcing ribs. Through the combination of these components, pressure stabilizing and distributing, sealing installation, buffering and guiding flow are achieved, ensuring uniform water distribution.

Benefits of technology

It achieves stable water pressure, ensures uniform water distribution in the cooling tower, improves cooling efficiency, and features a secure connection that is easy to disassemble and replace.

✦ Generated by Eureka AI based on patent content.

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    Figure CN224230829U_ABST
Patent Text Reader

Abstract

The utility model discloses an integrated pressure-stabilizing distribution device for water distribution of a cooling tower, which comprises a pressure-stabilizing distribution device upper body, the lower end of the pressure-stabilizing distribution device upper body is provided with a buffer cavity in a screwing manner, the lower end of the buffer cavity is provided with a baffle in an attached manner, and the baffle is mounted on the inner wall of the pressure-stabilizing distribution device lower body in an inserting manner. Reinforcing ribs are fixedly connected to the middle of the joint of the pressure stabilizing distribution device upper body and the upper arm pipe and the middle of the joint of the pressure stabilizing distribution device lower body and the lower arm pipe. According to the integrated pressure-stabilizing distribution device for water distribution of the cooling tower, water can be buffered through the funnel filter screen structure of the buffer cavity, separation and flow guide can be conducted through the baffles, and the influence on the strength of the branch pipes is small; and the pressure-stabilizing distribution device upper body, the water distribution pipe, the upper arm pipe, the pressure-stabilizing distribution device lower body and the lower arm pipe can be bound, sealed and installed through the sealing splicing buckle blocks, the sealing splicing buckle grooves, the steel belts and the binding grooves, connection is firm, the sealing performance is good, independent disassembly, assembly and replacement are convenient, and use is convenient.
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Description

Technical Field

[0001] This utility model relates to the field of cooling tower technology, specifically to an integrated pressure stabilizing and distributing device for cooling tower water distribution. Background Technology

[0002] Cooling tower equipment is an important component of circulating water systems and is widely used as a cooling device in industrial production, ventilation and air conditioning, electronic component processing and production, and other fields.

[0003] The main function of the cooling tower water distribution system is to evenly distribute water onto the packing material, ensuring uniform water density. The water distribution system consists of nozzles, pipes, and pressure-stabilizing and distributing devices.

[0004] Existing cooling towers suffer from excessively high or low water pressure in their distribution pipes during normal operation, leading to unstable nozzle operation and uneven water distribution, resulting in substandard cooling efficiency. Therefore, an integrated pressure stabilizing and distributing device for cooling tower water distribution is needed to solve these problems. Utility Model Content

[0005] The purpose of this utility model is to provide an integrated pressure stabilizing and distribution device for cooling tower water distribution, so as to solve the problems mentioned in the background art, where the water pressure in the water distribution pipeline of the cooling tower is too high or too low during normal operation, resulting in unstable nozzle operation, uneven water distribution in the cooling tower due to water pressure fluctuations, and substandard cooling efficiency.

[0006] To achieve the above objectives, this utility model provides the following technical solution: an integrated pressure-stabilizing and distributing device for cooling tower water distribution, comprising an upper body, a lower body, and a water distribution pipe connected to the upper part of the upper body. Upper arm pipes are connected to both sides of the upper body, and lower arm pipes are connected to both sides of the lower body. Sealing and splicing fasteners are protruding and fixedly connected to the upper edges of the lower body and the lower arm pipes. Sealing and splicing grooves are formed on the lower edges of the upper body and the upper arm pipes, and the sealing and splicing fasteners are inserted into the sealing and splicing grooves. A socket is protruding and connected to the middle of the upper end of the upper body. Furthermore, a sealing buckle is fixedly connected to the upper end of the outer wall of the socket. A splicing interface is opened at the lower end of the water distribution pipe. The socket is inserted into the splicing interface. The outer walls of the water distribution pipe, upper arm pipe, lower body of the pressure stabilizing distribution device, and lower arm pipe are all provided with binding grooves. A steel strip is inserted into the inner wall of the binding groove. The inner walls of the upper arm pipe and lower arm pipe are all provided with sealing grooves. A sealing ring is fastened into the inner wall of the sealing groove. A nozzle is fixedly connected to the inner wall of the sealing ring. A buffer chamber is screwed into the lower end of the upper body of the pressure stabilizing distribution device. A baffle is attached to the lower end of the buffer chamber. The baffle is inserted into the inner wall of the lower body of the pressure stabilizing distribution device. Reinforcing ribs are fixedly connected between the connection between the upper body of the pressure stabilizing distribution device and the upper arm pipe and the connection between the lower body of the pressure stabilizing distribution device and the lower arm pipe.

[0007] Preferably, the upper body and upper arm tube of the voltage stabilizing distribution device are fixedly installed with the lower body and lower arm tube of the voltage stabilizing distribution device by binding with steel strips in the binding groove, and the upper body and upper arm tube of the voltage stabilizing distribution device are installed with the lower body and lower arm tube of the voltage stabilizing distribution device by sealing splicing buckles and sealing splicing buckle grooves.

[0008] Preferably, the water distribution pipe is installed in a snap-fit, limiting, and sealed manner with the upper body of the pressure stabilizing and distributing device within the splicing interface via a sealing buckle and a socket, and the shape of the upper edge of the upper body of the pressure stabilizing and distributing device matches the shape of the outer wall of the water distribution pipe.

[0009] Preferably, the upper arm tube and the lower arm tube are fixedly installed in a supporting manner with the upper body and the lower body of the voltage stabilizing and distributing device through reinforcing ribs, and the reinforcing ribs are triangular in structure. The upper arm tube, the lower arm tube, the upper body and the lower body of the voltage stabilizing and distributing device are made of PP material.

[0010] Preferably, the nozzle is installed in a snap-fit ​​and sealed manner with the upper arm tube and the lower arm tube through a sealing groove and a sealing ring, and the sealing groove and the sealing ring are arranged in two parallel sets.

[0011] Preferably, the buffer cavity is a mesh funnel structure, and the buffer cavity is screwed and spliced ​​to the upper body of the voltage stabilizing and distributing device. The baffles are distributed in a parallel grid structure on the inner walls of the upper and lower bodies of the voltage stabilizing and distributing device.

[0012] Compared with the prior art, the beneficial effects of this utility model are: the integrated pressure stabilizing and distributing device for cooling tower water distribution can buffer water through the funnel filter structure of the buffer chamber, and can be separated and guided by the baffle, which has little impact on the strength of the branch pipe. Moreover, the upper body of the pressure stabilizing and distributing device, the water distribution pipe, the upper arm pipe, the lower body of the pressure stabilizing and distributing device, and the lower arm pipe can be bundled and sealed by sealing splicing buckles, sealing splicing buckle grooves, steel strips and binding grooves, resulting in a firm connection, good sealing performance, convenient independent disassembly and replacement, and easy use. Attached Figure Description

[0013] Figure 1 This is a schematic diagram of the assembly and installation of an integrated pressure stabilizing and distributing device for cooling tower water distribution according to the present invention.

[0014] Figure 2 This is a perspective view of an integrated pressure stabilizing and distributing device for cooling tower water distribution according to the present invention.

[0015] Figure 3 This is a side view of the inner wall structure of an integrated pressure stabilizing and distributing device for cooling tower water distribution according to the present invention.

[0016] Figure 4 This is a top view of the internal structure of an integrated pressure stabilizing and distributing device for cooling tower water distribution according to the present invention.

[0017] Figure 5 This utility model relates to an integrated pressure stabilizing and distributing device for cooling tower water distribution. Figure 2 Enlarged view of point A in the middle;

[0018] Figure 6 This utility model relates to an integrated pressure stabilizing and distributing device for cooling tower water distribution. Figure 3 Enlarged view at point B in the middle;

[0019] Figure 7 This utility model relates to an integrated pressure stabilizing and distributing device for cooling tower water distribution. Figure 3 Enlarged view at point C;

[0020] Figure 8 This utility model relates to an integrated pressure stabilizing and distributing device for cooling tower water distribution. Figure 4 Enlarged view of point D in the middle.

[0021] In the diagram: 1. Upper body of pressure stabilizing and distributing device; 2. Water distribution pipe; 3. Upper arm pipe; 4. Nozzle; 5. Steel strip; 6. Lower body of pressure stabilizing and distributing device; 7. Lower arm pipe; 8. Buffer chamber; 9. Baffle; 10. Sealing splicing buckle block; 11. Sealing splicing buckle groove; 12. Binding groove; 13. Sealing buckle block; 14. Socket; 15. Splicing interface; 16. Sealing groove; 17. Sealing ring; 18. Reinforcing rib. Detailed Implementation

[0022] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0023] Please see Figure 1-8This utility model provides a technical solution: an integrated pressure stabilizing and distributing device for cooling tower water distribution, comprising an upper body 1, a water distribution pipe 2, an upper arm pipe 3, a nozzle 4, a steel strip 5, a lower body 6, a lower arm pipe 7, a buffer chamber 8, a baffle 9, a sealing splicing buckle 10, a sealing splicing buckle groove 11, a binding groove 12, a sealing buckle 13, a socket 14, a splicing interface 15, a sealing groove 16, a sealing ring 17, and a reinforcing rib 18. The lower body 6 is installed at the lower end of the upper body 1, and the water distribution pipe 2 is connected to the upper end of the upper body 1. The upper body 1 and the upper arm pipe 3 are fixedly installed to the lower body 6 and the lower arm pipe 7 by the steel strip 5 within the binding groove 12. The upper body 1 and upper arm pipe 3 of the pressure distribution device are connected to the lower body 6 and lower arm pipe 7 of the pressure stabilizing distribution device via sealing splicing buckles 10 and sealing splicing grooves 11, forming a tight seal. This allows the upper body 1 and upper arm pipe 3 of the pressure stabilizing distribution device to be bound and sealed with the lower body 6 and lower arm pipe 7 of the pressure stabilizing distribution device through steel straps 5, binding grooves 12, sealing splicing buckles 10, and sealing splicing grooves 11, resulting in a more secure connection and better sealing effect. The water distribution pipe 2 is connected to the upper body 1 of the pressure stabilizing distribution device via sealing buckles 13 and sockets 14 within the splicing interface 15, forming a tight seal. The shape of the upper edge of the upper body 1 of the pressure stabilizing distribution device matches the shape of the outer wall of the water distribution pipe 2, allowing the water distribution pipe 2 to be fitted and inserted, facilitating installation and ensuring a more stable installation. The upper body 1 of the voltage stabilizing distribution device is connected to both sides of the upper arm tube 3. The upper arm tube 3 and the lower arm tube 7 are fixedly installed to the upper body 1 and the lower body 6 of the voltage stabilizing distribution device by means of reinforcing ribs 18, which are triangular in structure. The upper arm tube 3, the lower arm tube 7, the upper body 1 and the lower body 6 of the voltage stabilizing distribution device are all made of PP material, which makes the connection between the upper arm tube 3 and the lower arm tube 7 and the upper body 1 and the lower body 6 of the voltage stabilizing distribution device more stable and safer to use. The lower arm tube 7 is connected to both sides of the lower body 6 of the voltage stabilizing distribution device, and the upper edge of the lower body 6 and the lower arm tube 7 is fixedly connected to a sealing splicing buckle 10. The lower edge of the upper body 1 and the upper arm tube 3 of the voltage stabilizing distribution device is provided with a sealing splicing groove 11. The fastening block 10 is inserted into the sealing splicing groove 11. A socket 14 protrudes from the middle of the upper part of the upper body 1 of the pressure stabilizing and distributing device, and a sealing fastening block 13 is fixedly connected to the upper part of the outer wall of the socket 14. A splicing interface 15 is provided at the lower end of the water distribution pipe 2. The socket 14 and the splicing interface 15 are inserted into each other. Binding grooves 12 are provided on the outer walls of the water distribution pipe 2, upper arm pipe 3, lower body 6 of the pressure stabilizing and distributing device, and lower arm pipe 7. A steel strip 5 is inserted into the inner wall of the binding groove 12. Sealing grooves 16 are provided on the inner walls of the upper arm pipe 3 and lower arm pipe 7. A sealing ring 17 is fastened to the inner wall of the sealing groove 16. A nozzle 4 is fixedly connected to the inner wall of the sealing ring 17. The nozzle 4 is connected to the upper arm pipe 3 and lower arm pipe 7 in a fastened and sealed splicing manner through the sealing groove 16 and the sealing ring 17.Furthermore, the sealing groove 16 and sealing ring 17 are arranged in two parallel sets, allowing the nozzle 4 to be installed with a double-layer snap-fit ​​seal, ensuring a firm connection, excellent sealing effect, and convenient and quick replacement. A buffer chamber 8 is screwed onto the lower end of the upper body 1 of the pressure stabilizing and distributing device, and a baffle 9 is attached to the lower end of the buffer chamber 8. The buffer chamber 8 has a mesh funnel structure and is screwed onto the upper body 1 of the pressure stabilizing and distributing device. The baffle 9 is arranged in a parallel grid structure on the inner walls of the upper body 1 and the lower body 6 of the pressure stabilizing and distributing device, allowing the buffer chamber 8 to buffer and guide flow, and facilitating independent disassembly and assembly. The baffle 9 can also be used to divide and guide flow, reducing flow velocity. The baffle 9 is inserted into the inner wall of the lower body 6 of the pressure stabilizing and distributing device. Reinforcing ribs 18 are fixedly connected at the connection points between the upper body 1 and the upper arm tube 3, and between the lower body 6 and the lower arm tube 7.

[0024] Working principle: When using this integrated pressure stabilizing and distributing device for cooling tower water distribution, firstly, the buffer chamber 8 of the device is screwed and spliced ​​with the upper body 1 of the pressure stabilizing and distributing device. Then, the upper body 1 of the pressure stabilizing and distributing device is inserted and spliced ​​with the water distribution pipe 2 through the sealing buckle 13, the socket 14, and the splicing interface 15. Next, the lower body 6 and the lower arm pipe 7 of the pressure stabilizing and distributing device are positioned and spliced ​​with the upper body 1 and the lower arm pipe 7 of the pressure stabilizing and distributing device through the sealing splicing buckle 10 and the sealing splicing groove 11. Then, the steel belt 5 is used to connect the components. The nozzle 4 is bound and fixed with the binding groove 12. Then, the nozzle 4 is inserted and installed with the upper arm pipe 3 and the lower arm pipe 7 through the sealing groove 16 and the sealing ring 17. The nozzle 4 is then fastened and sealed by the sealing groove 16 and the sealing ring 17. When the water distribution pipe 2 guides water, the flow can be buffered and filtered through the buffer chamber 8. Then, the flow is separated by the baffle 9. Finally, the water is guided to the nozzle 4 through the arm pipe 3 and the lower arm pipe 7 for uniform spraying. This is the usage process of an integrated pressure stabilizing and distributing device for cooling tower water distribution.

[0025] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. An integrated pressure stabilizing and distributing device for cooling tower water distribution, comprising an upper body (1) of the pressure stabilizing and distributing device, a lower body (6) of the pressure stabilizing and distributing device is installed at the lower end of the upper body (1), and a water distribution pipe (2) is connected and installed at the upper end of the upper body (1), characterized in that: The upper body (1) of the pressure stabilizing distribution device is connected to the upper arm pipe (3) on both sides, and the lower body (6) of the pressure stabilizing distribution device is connected to the lower arm pipe (7) on both sides. The upper edges of the lower body (6) and the lower arm pipe (7) of the pressure stabilizing distribution device are connected to a sealing splicing buckle (10). The lower edges of the upper body (1) and the upper arm pipe (3) of the pressure stabilizing distribution device are provided with a sealing splicing groove (11). The sealing splicing buckle (10) is inserted into the sealing splicing groove (11). The upper middle position of the upper end of the pressure stabilizing distribution device is connected to a socket (14). The upper end of the outer wall of the socket (14) is connected to a sealing buckle (13). The lower end of the water distribution pipe (2) is provided with a splicing interface (15). The socket (14) is inserted into the splicing interface (15). (2) The upper arm tube (3), the lower body (6) of the pressure distribution device, and the lower arm tube (7) are all provided with binding grooves (12). A steel strip (5) is inserted into the inner wall of the binding groove (12). The upper arm tube (3) and the lower arm tube (7) are all provided with sealing grooves (16). A sealing ring (17) is fastened into the inner wall of the sealing groove (16). A nozzle (4) is fixedly connected to the inner wall of the sealing ring (17). A buffer cavity (8) is screwed into the lower end of the upper body (1) of the pressure distribution device. A baffle (9) is attached to the lower end of the buffer cavity (8). The baffle (9) is inserted into the inner wall of the lower body (6) of the pressure distribution device. A reinforcing rib (18) is fixedly connected in the middle of the connection between the upper body (1) of the pressure distribution device and the upper arm tube (3) and the connection between the lower body (6) of the pressure distribution device and the lower arm tube (7).

2. The integrated pressure stabilizing and distributing device for cooling tower water distribution according to claim 1, characterized in that: The upper body (1) and upper arm tube (3) of the voltage stabilizing and distribution device are fixedly installed with the lower body (6) and lower arm tube (7) of the voltage stabilizing and distribution device in the binding groove (12) by steel strip (5), and the upper body (1) and upper arm tube (3) of the voltage stabilizing and distribution device are fastened and sealed with the lower body (6) and lower arm tube (7) of the voltage stabilizing and distribution device by sealing splicing buckle (10) and sealing splicing buckle groove (11).

3. The integrated pressure stabilizing and distributing device for cooling tower water distribution according to claim 2, characterized in that: The water distribution pipe (2) is installed in a snap-fit ​​and limit-sealed manner with the upper body (1) of the pressure stabilizing and distribution device within the splicing interface (15) through the sealing buckle (13) and the socket (14), and the shape of the upper edge of the upper body (1) of the pressure stabilizing and distribution device matches the shape of the outer wall of the water distribution pipe (2).

4. The integrated pressure stabilizing and distributing device for cooling tower water distribution according to claim 3, characterized in that: The upper arm tube (3) and lower arm tube (7) are fixedly installed with the upper body (1) and lower body (6) of the voltage stabilizing and distribution device by means of reinforcing ribs (18), and the reinforcing ribs (18) are triangular structures. The upper arm tube (3), lower arm tube (7), upper body (1) and lower body (6) of the voltage stabilizing and distribution device are made of PP material.

5. The integrated pressure stabilizing and distributing device for cooling tower water distribution according to claim 4, characterized in that: The nozzle (4) is installed in a snap-fit ​​and sealed manner with the upper arm tube (3) and the lower arm tube (7) through the sealing groove (16) and the sealing ring (17), and the sealing groove (16) and the sealing ring (17) are arranged in two parallel sets.

6. The integrated pressure stabilizing and distributing device for cooling tower water distribution according to claim 5, characterized in that: The buffer cavity (8) is a mesh funnel structure, and the buffer cavity (8) is screwed and spliced ​​with the upper body (1) of the voltage stabilizing and distribution device. The baffle (9) is distributed in a parallel grid structure on the inner wall of the upper body (1) and the lower body (6) of the voltage stabilizing and distribution device.