一种玻璃钢冷却塔高效散热结构

By introducing a multi-stage filtration and ozone backflushing system within the pre-purification shell of the fiberglass cooling tower, combined with a corrugated PP packing layer, the problem of easy clogging of the spray structure is solved, achieving efficient filtration and uniform spraying of hot water, and improving heat exchange efficiency.

CN224517466UActive Publication Date: 2026-07-17

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Filing Date
2025-08-28
Publication Date
2026-07-17

AI Technical Summary

Technical Problem

The spray structure of existing FRP cooling towers is prone to clogging, resulting in low heat exchange efficiency and incomplete purification of impurities.

Method used

The pre-purification process employs a multi-stage filtration system within the housing, including a coarse filter layer, a fine filter layer, and an ozone spray pipe. Combined with a corrugated PP packing layer and a cold air introduction system, this system achieves multi-stage filtration and backflushing to prevent clogging of hot water, ensuring uniform hot water spraying and full contact with the air.

Benefits of technology

It effectively removes impurities and dissolved salts from hot water, preventing blockages, ensuring uniform and efficient heat exchange, maximizing the heat exchange area, and improving heat dissipation.

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    Figure CN224517466U_ABST
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Abstract

本实用新型公开了一种玻璃钢冷却塔高效散热结构,包括热水导入管,所述热水导入管的一端安装有预净化处理壳。本实用新型使用时,气泵启动,将外环境温度低于热水的气体泵入冷空气导入管的内部,再通过均匀分布的导气支管,吹向波纹状PP填料层,气体向上流动全面接触热水,由于热水温度高于空气,热量通过传导和对流直接从热水传递给空气,使空气温度升高,热水温度初步下降,且,热水表面的水分子因接触空气而蒸发也可以消耗热量,波纹状PP填料层上均匀布设的峰谷间隔区结构可使热水形成均匀的水膜,同时引导冷空气在波纹状PP填料层内形成湍流,增加了水与空气的扰动接触,避免出现局部空气不流通的问题,提升了散热的均匀全面性。
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Claims

1. A high-efficiency heat dissipation structure for a fiberglass cooling tower, characterized in that, Includes a hot water inlet pipe (6), one end of which is fitted with a pre-purification shell (1). Inside the pre-purification shell (1), a coarse filter layer (11), a fine filter layer (12), and an ozone spray pipe (10) are installed in sequence. A miniature ozone generator (8) is installed at the top of the ozone spray pipe (10). A water pump (9) is installed between the hot water inlet pipe (6) and the pre-purification shell (1). Spray heads (5) are evenly installed at the bottom of the hot water inlet pipe (6). 5) A flow control valve (18) is installed on the spray head (5). Atomizing nozzles (17) are evenly arranged at the bottom of the spray head (5). A corrugated PP packing layer (2) and a cold air inlet pipe (3) are installed in sequence below the spray head (5). A peak-valley interval area (14) is evenly arranged on the corrugated PP packing layer (2). An air pump (4) is installed at one end of the cold air inlet pipe (3). A guide pipe (13) matching the corrugated PP packing layer (2) is evenly arranged on one side of the cold air inlet pipe (3).

2. The high-efficiency heat dissipation structure of a glass steel cooling tower according to claim 1, characterized in that: The coarse filter layer (11) is a stainless steel filter screen coated with a Teflon non-stick layer.

3. The high-efficiency heat dissipation structure of a glass steel cooling tower according to claim 1, characterized in that: The fine filter layer (12) is an activated carbon purification mesh plate.

4. The high-efficiency heat dissipation structure of a glass steel cooling tower according to claim 1, characterized in that: An inner mounting bracket (19) is fixed on the coarse filter layer (11), the fine filter layer (12) and the ozone blowing pipe (10). The outer wall of the inner mounting bracket (19) is provided with a rubber sealing layer that matches the pre-purification shell (1).

5. The high-efficiency heat dissipation structure of a glass steel cooling tower according to claim 4, characterized in that: Screws are evenly arranged between the top of the inner mounting bracket (19) and the pre-purification shell (1), and the inner mounting bracket (19) and the pre-purification shell (1) form a disassembly and installation structure.

6. The high-efficiency heat dissipation structure of a glass steel cooling tower according to claim 1, characterized in that: The top of the hot water inlet pipe (6) is provided with a cooling tower assembly frame (7), and screw holes are evenly provided at the edge of the cooling tower assembly frame (7).

7. The high-efficiency heat dissipation structure of a glass steel cooling tower according to claim 1, characterized in that: A flange (16) is installed between the spray head (5) and the hot water inlet pipe (6), forming a disassembly and installation structure between the spray head (5) and the hot water inlet pipe (6).

8. The high-efficiency heat dissipation structure of a glass steel cooling tower according to claim 1, characterized in that: Both the air pump (4) and the water pump (9) are equipped with check valves (20).