一种地面雷达设备级产品凝露试验技术方法研究及应用

王风武, 冯利建, 郭林, 孙照强

装备环境工程 ›› 2026, Vol. 23 ›› Issue (2) : 165-175.

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装备环境工程 ›› 2026, Vol. 23 ›› Issue (2) : 165-175. DOI: 10.7643/ issn.1672-9242.2026.02.019
环境试验与观测

一种地面雷达设备级产品凝露试验技术方法研究及应用

  • 王风武, 冯利建, 郭林, 孙照强
作者信息 +

Study and Application of a Condensation Testing Technique for Ground Radar Equipment-level Products

  • WANG Fengwu, FENG Lijian, GUO Lin, SUN Zhaoqiang
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文章历史 +

摘要

目的 针对目前地面雷达设备在实际使用中可能会出现因凝露引发的故障问题,研究并提出了一种适用于设备级产品的实验室凝露试验方法。方法 先后开展2种试验技术方法的研究及样品试验,通过对比2种试验方法,发现方法2在激发凝露现象方面效果更显著,能有效考核产品在凝露环境下的工作性能及防护设计。结果 该方法通过控制温变速率与湿度曲线,实现了对电气设计、三防设计、结构设计、密封设计等的综合评价。结论 该方法可明确暴露产品凝露薄弱环节,为防凝露设计改进提供依据,填补了地面雷达设备级凝露试验方法的空白。同时,通过大量试验数据,从试验方法、凝露机理及过程、防凝露的考虑等方面进行总结,可供产品在进行防凝露设计时参考。

Abstract

The work aims to propose a laboratory condensation testing method suitable for equipment-level products to address the malfunctions of ground radar equipment caused by condensation in practical applications. Two experimental technical approaches were studied and tested on samples. By comparing the two methods, it was found that the second method demonstrated a more significant effect in inducing condensation, effectively evaluating the operational performance and protective design of products under condensation conditions. This method achieved a comprehensive assessment of electrical design, anti-corrosion/anti-fungal/anti-moisture design, structural design, and sealing design by controlling the temperature variation rate and humidity curve. Experiments indicate that this method can clearly expose weak points in products prone to condensation, providing a basis for improving anti-condensation design and filling the gap in equipment-level condensation testing methods for ground radar. Furthermore, based on extensive experimental data, summaries are provided regarding the testing method, the mechanism and process of condensation, and considerations for anti-condensation design, which can serve as a reference for products in anti-condensation design efforts.

关键词

凝露试验 / 雷达 / 设备级产品 / 防凝露 / 多环境因素

Key words

condensation test / radar / equipment-level products / anti-condensation / multiple environmental factors

引用本文

导出引用
王风武, 冯利建, 郭林, 孙照强. 一种地面雷达设备级产品凝露试验技术方法研究及应用[J]. 装备环境工程. 2026, 23(2): 165-175 https://doi.org/10.7643/ issn.1672-9242.2026.02.019
WANG Fengwu, FENG Lijian, GUO Lin, SUN Zhaoqiang. Study and Application of a Condensation Testing Technique for Ground Radar Equipment-level Products[J]. Equipment Environmental Engineering. 2026, 23(2): 165-175 https://doi.org/10.7643/ issn.1672-9242.2026.02.019
中图分类号: TN957.2    TM925.07   

参考文献

[1] 赵保平, 张韬, 孙建亮, 等. 航天复杂产品研发中的环境适应性设计[J]. 强度与环境, 2013, 40(5): 1-9.
ZHAO B P, ZHANG T, SUN J L, et al.Design of Environmental Worthiness for Aerospace Product System[J]. Structure & Environment Engineering, 2013, 40(5): 1-9.
[2] 胥泽奇, 张世艳, 宣卫芳. 装备环境适应性评价[J]. 装备环境工程, 2012, 9(1): 54-59.
XU Z Q, ZHANG S Y, XUAN W F.Environmental Worthiness Evaluation of Equipment[J]. Equipment Environmental Engineering, 2012, 9(1): 54-59.
[3] 陈亮, 周宏伟. 环境试验与评价总计划在型号项目中的应用分析[J]. 环境技术, 2022, 40(4): 30-34.
CHEN L, ZHOU H W.Application Analysis of Environmental Test and Evaluation Master Plan in Model Project[J]. Environmental Technology, 2022, 40(4): 30-34.
[4] 卢兆明, 周骅, 胡理莉. 道路车辆电气电子设备温度/湿度组合循环试验要点[J]. 环境技术, 2010, 28(3): 31-35.
LU Z M, ZHOU H, HU L L.Road Vehicle-the Outline of Composite Temperature/Humidity Cyclic Test for Electrical and Electronic Equipment[J]. Environmental Technology, 2010, 28(3): 31-35.
[5] 卢兆明, 沈海舟, 史晓雯. 道路车辆电子电器设备的凝露试验[J]. 环境技术, 2011, 32(1): 50-54.
LU Z M, SHEN H Z, SHI X W.Road Vehicle-the Dewing Test for Electrical and Electronic Equipments[J]. Environmental Technology, 2011, 32(1): 50-54.
[6] 李宗攀, 黄海涛. 房间空调器凝露吹水现象的实验研究[J]. 家电科技, 2024, 5(5): 110-113.
LI Z P, HUANG H T.Experimental Study on Condensation Blowing Phenomenon of Room Air Conditioner[J]. Journal of Appliance Science & Technology, 2024, 5(5): 110-113.
[7] 骆济焕. 外环境载荷下车用动力电池包的热-湿特性研究[D]. 广州: 华南理工大学, 2020.
LUO J H.Study on Temperature-Humidity Characteristics of Electric Vehicle Power Battery Pack under External Environmental Loading[D]. Guangzhou: South China University of Technology, 2020.
[8] 冯厉鹏, 康明明, 李晶, 等. FXD1-J型动力车高地热隧道运行凝露问题研究[J]. 电力机车与城轨车辆, 2025, 48(1): 122-128.
FENG L P, KANG M M, LI J, et al.Research on Condensation during the Operation of FXD1-J Power Vehicle in High Ground Heat Tunnels[J]. Electric Locomotives & Mass Transit Vehicles, 2025, 48(1): 122-128.
[9] 陈吉清, 黄朴, 蒋心平, 等. 动力电池包微环境湿热特性与凝露演变分析[J]. 汽车工程, 2025, 47(6): 1072-1085.
CHEN J Q, HUANG P, JIANG X P, et al.Analysis of Hygrothermal Characteristics and Condensation Evolution in the Micro-Environment of Power Battery Packs[J]. Automotive Engineering, 2025, 47(6): 1072-1085.
[10] 梁宏毅, 黄朴, 刘万里, 等. 动力电池包局部复式模组热均匀性分析[J]. 汽车工程, 2024, 46(10): 1886-1896.
LIANG H Y, HUANG P, LIU W L, et al.Thermal Uniformity Analysis of Local Duplex Module for Power Battery Packs[J]. Automotive Engineering, 2024, 46(10): 1886-1896.
[11] 刘畅. 转辙机内防结霜凝露措施研究[J]. 高速铁路新材料, 2025, 4(3): 70-73.
LIU C.Research on Preventing Frost and Condensation Measures Inside the Switch Machine[J]. Advanced Materials of High Speed Railway, 2025, 4(3): 70-73.
[12] 邓雷, 崔光磊. 基于COMSOL Multiphysics软件的某地铁配电柜温湿度控制策略[J]. 城市轨道交通研究, 2025, 28(4): 71-77.
DENG L, CUI G L.Temperature and Humidity Control Strategy of Certain Subway Power Distribution Cabi-Net Based on COMSOL Multiphysics Software[J]. Urban Mass Transit, 2025, 28(4): 71-77.
[13] 米楚洪. 配电设备除湿改进方案探讨[J]. 广西电力, 2020, 43(6): 81-84.
MI C H.Discussion on a Dehumidification Improvement Plan of Distribution Equipment[J]. Guangxi Electric Power, 2020, 43(6): 81-84.
[14] 陈江燕, 寇龙. 电气试验设备柜智能防凝露调控系统设计[J]. 广东水利电力职业技术学院学报, 2025, 23(1): 1-6.
CHEN J Y, KOU L.Design of Intelligent Anti-Condensation Control System for Electrical Testing Equipment Cabinets[J]. Journal of Guangdong Polytechnic of Water Resources and Electric Engineering, 2025, 23(1): 1-6.
[15] 潘岐泽, 杨芳, 杨志. 12 kV高压开关柜受潮凝露机理及防治关键技术探讨[J]. 电力系统保护与控制, 2019, 47(5): 160-162.
PAN Q Z, YANG F, YANG Z.Discussion on Mechanism of the Dampness and Dewing Inside 12 kV High-Voltage Switchgear and Its Key Control Techniques[J]. Power System Protection and Control, 2019, 47(5): 160-162.
[16] 曾文清. 高压开关柜防凝露技术研究与实践[J]. 冶金动力, 2016(10): 49-50.
ZENG W Q.Study and Practice of Anti-Condensation Technology for High-Voltage Switchgear[J]. Metallurgical Power, 2016(10): 49-50.
[17] 陈荣, 闫新, 严玮, 等. 开关柜内凝露现象数值模拟研究[J]. 资源节约与环保, 2015(5): 21.
CHEN R, YAN X, YAN W, et al.Numerical Simulation Study on Condensation Phenomenon in Switchgear[J]. Resources Economization & Environmental Protection, 2015(5): 21.
[18] 刘建戈. 空气相对湿度及凝露对中置式开关柜的影响及对策[J]. 电工技术, 2016(2): 26-28.
LIU J G.Influence of Air Relative Humidity and Condensation on Central Switchgear and Its Countermeasures[J]. Electric Engineering, 2016(2): 26-28.
[19] 丁丽平, 韩付申, 魏伟. 变电站预制舱防潮防凝露结构设计分析[J]. 中国高新科技, 2022(15): 135-137.
DING L P, HAN F S, WEI W.Design and Analysis of Moisture-Proof and Condensation-Proof Structure of Prefabricated Cabin in Substation[J]. China High-Tech, 2022(15): 135-137.
[20] 廖维东. 超双疏超自洁涂料在电力设备防潮防凝露中的应用与分析[J]. 聚酯工业, 2025, 38(1): 45-48.
LIAO W D.Application and Analysis of Super Dual Hydrophobic and Super Self-cleaning Coatings in Moisture and Condensation Prevention of Power Equipment[J]. Polyester Industry, 2025, 38(1): 45-48.
[21] 张帅, 刘双荣, 吴文友, 等. 天线阵面风冷式半导体除湿机设计[J]. 低温与超导, 2025, 53(1): 95-100.
ZHANG S, LIU S R, WU W Y, et al.Design of Air-Cooled Semiconductor Dehumidifier for Antenna Array[J]. Cryogenics & Superconductivity, 2025, 53(1): 95-100.
[22] 朱辉, 王汉青, 颜志伟, 等. 一种风电变流器防凝露系统的设计与试验[J]. 水电能源科学, 2012, 30(9): 195-197.
ZHU H, WANG H Q, YAN Z W, et al.Design and Experiment on Dehumidification System of Converter Cabinet in Wind Turbine[J]. Water Resources and Power, 2012, 30(9): 195-197.
[23] 赵孝磊. 城际动车组孔板送风结构防结露研究[D]. 青岛: 青岛理工大学, 2012.
ZHAO X L.Research on Condensation Prevention of Orifice Plate Air Supply Structure of Intercity EMU[D]. Qingdao: Qingdao University of Technology, 2012.
[24] 陈学文, 王以波, 柯昌燕, 等. 液冷系统多模态健康监测与动态评估方法[J]. 装备环境工程, 2025, 22(5): 147-153.
CHEN X W, WANG Y B, KE C Y, et al.Multi-Modal Health Monitoring and Dynamic Evaluation Method for Liquid Cooling Systems[J]. Equipment Environmental Engineering, 2025, 22(5): 147-153.
[25] 张荣海, 颜鲁华, 洪浩. 风管送风式空调(热泵)机组室内机防凝露设计[J]. 制冷与空调, 2022, 22(9): 17-20.
ZHANG R H, YAN L H, HONG H.Anti-Condensation Design of Indoor Unit of Ducted Air-Conditioning (Heat Pump) Units[J]. Refrigeration and Air-Conditioning, 2022, 22(9): 17-20.
[26] ISO. Road Vehicles-Environmental Conditions and Testing for Electrical and Electronic Equipment - Part 4: Climatic Loads: ISO 16750-4: 2003[S]. Geneva: International Organization for Standardization, 2003.

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