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1.上海交通大学制冷与低温工程研究所 上海 200240
2. 苏州华旃航天电器有限公司 苏州 215129
3. 苏州工学院 常熟 215500
翟晓强,男,教授,上海交通大学制冷与低温工程研究所, 021-34206296,E-mail:xqzhai@sjtu.edu.cn。研究方向:电子元器件高效冷却技术。Zhai Xiaoqiang, male, professor, Institute of Refrigeration and Cryogenics, Shanghai Jiao Tong University, 86-21-34206296, E-mail: xqzhai@sjtu.edu.cn. Research fields: efficient cooling technology for electronic component.
收稿:2025-08-12,
修回:2025-09-07,
录用:2025-10-13,
网络出版:2026-01-19,
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李纯熙,陆高锋,翟晓强.液冷板多工况冷却过程中表面温度的变化规律及其预测方法[J].制冷学报,
Li Chunxi,Lu Gaofeng,Zhai Xiaoqiang.Surface Temperature Variation Patterns and Prediction Method for Liquid Cooling Plate during Multi-Condition Cooling Processes[J].Journal of Refrigeration,
李纯熙,陆高锋,翟晓强.液冷板多工况冷却过程中表面温度的变化规律及其预测方法[J].制冷学报, DOI:10.12465/issn.0253-4339.20250812001. CSTR: XXXXX.XX.XXX.20250812001.
Li Chunxi,Lu Gaofeng,Zhai Xiaoqiang.Surface Temperature Variation Patterns and Prediction Method for Liquid Cooling Plate during Multi-Condition Cooling Processes[J].Journal of Refrigeration, DOI:10.12465/issn.0253-4339.20250812001. CSTR: XXXXX.XX.XXX.20250812001.
近年来,模块化液冷板在船舶电子设备的散热系统中得到了广泛应用,在保证供冷能力的同时防止液冷板表面结露对于电子设备的安全运行至关重要。本文实验研究了不同冷却工况下液冷板表面温度的动态变化和结露现象,并建立了卷积神经网络(CNN)和长短期记忆网络(LSTM)的混合模型(CNN-LSTM)预测液冷板表面易结露区域温度。结果表明:液冷板易结露区域受边缘效应影响,且在温度降至露点后至实际结露的过程中,存在过冷和结露延迟现象。同时,CNN-LSTM模型温度预测值的平均绝对误差MAE相较CNN和LSTM分别降低41.7%和48.8%;均方根误差RMSE相较上述2个模型分别降低40.7%和49.1%;拟合优度R²也优于CNN和LSTM模型。
In recent years, modular liquid cooling plates have been increasingly used for thermal management in marine electronic equipment. In addition to maintaining the cooling performance, preventing surface condensation is critical for device safety. This study experimentally investigated the surface-temperature dynamics and condensation phenomena under various cooling conditions. A hybrid model that combined a convolutional neural network (CNN) and long short-term memory network (LSTM) was developed to predict the surface temperatures in condensation-prone regions of a liquid cooling plate. The results indicated that such areas are affected by edge effects. Moreover, supercooling and delayed condensation were observed when the temperature fell below the dew point, as well as the actual occurrence of condensation. The proposed model reduced the mean absolute error (MAE) by 41.7% and 48.8% and the root mean squared error (RMSE) by 40.7% and 49.1%, respectively, compared to the standalone CNN and LSTM models, while also achieving a higher coefficient of determination (R2).
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