Wang Geng, Yang Junyu, Lei Timan, Fei Linlin, Zhao Xiao, Zhao Jianfu, Li Kai, Luo Kai H
National Microgravity Laboratory, Institute of Mechanics, Chinese Academy of Sciences, Beijing, China.
Institute for Multiscale Thermofluids, School of Engineering, The University of Edinburgh, Edinburgh, UK.
Commun Phys. 2025;8(1):188. doi: 10.1038/s42005-025-02102-4. Epub 2025 Apr 30.
The electric field is known as an effective approach to improving pool boiling. However, there has been limited research on electric field-enhanced boiling of leaky dielectric fluids and the associated bubble dynamics. In this work, we employ a mesoscopic multiphase lattice Boltzmann method to perform large-scale three-dimensional simulations of electric field-enhanced pool boiling in leaky dielectric fluids. Our findings confirm that, compared to conventional pool boiling, electric field-enhanced pool boiling significantly increases heat transfer efficiency in the transition boiling regime. Furthermore, we propose a theoretical model based on the hydrodynamic theory that accurately predicts the heat flux across a wide range of operating parameters. Finally, we reveal size effects of the electric force on nucleation sites and rising bubbles, explaining the contrasting phenomena of bubble suppression and enhanced bubble detachment observed in electric field-enhanced boiling. The results of this study provide theoretical insight for optimizing phase‑change heat transfer efficiency.
电场是提高池沸腾的一种有效方法。然而,关于漏电介质流体的电场增强沸腾及其相关气泡动力学的研究有限。在这项工作中,我们采用介观多相格子玻尔兹曼方法对漏电介质流体中的电场增强池沸腾进行大规模三维模拟。我们的研究结果证实,与传统池沸腾相比,电场增强池沸腾在过渡沸腾区域显著提高了传热效率。此外,我们基于流体动力学理论提出了一个理论模型,该模型能够准确预测在广泛的运行参数范围内的热流。最后,我们揭示了电场力对成核位点和上升气泡的尺寸效应,解释了在电场增强沸腾中观察到的气泡抑制和气泡脱离增强的对比现象。本研究结果为优化相变传热效率提供了理论见解。