电流体力学
电场
聚结(物理)
多物理
机械
激发
工作(物理)
物理
电流
电流(流体)
交流电
材料科学
领域(数学)
极性(国际关系)
直流电
电润湿
蒸发
计算物理学
输运现象
化学
边值问题
产量(工程)
电磁场
电荷
静电学
电位
位移电流
流离失所(心理学)
作者
Davoud Abdi Lanbaran,Pouria Farokhi Kojour,Chao Wang,Chuang Wen,Zhenhua Wu,Bo Li
标识
DOI:10.1016/j.colsurfa.2025.138577
摘要
High-voltage electric fields provide a low-energy, non-contact means of manipulating droplet dynamics, yet a systematic comparison of direct current (DC) and alternating current (AC) excitation, particularly for interacting droplet pairs, remains limited. In this study, a validated two-dimensional phase-field model in COMSOL Multiphysics is employed to simulate single and paired water droplets (normalized volume V* = 0.2–1.0) under uniform vertical fields ranging from E = 0.1–1 kV/mm. The coupled Navier–Stokes and Maxwell equations are solved to quantify droplet displacement, coalescence, and evaporation, and the model is benchmarked against experimental data with deviations below 3 %. The results show that DC excitation produces stronger displacement, faster evaporation, and earlier, more sustained coalescence, while AC requires higher field strengths and yields only intermittent merging with weaker transport effects. Importantly, the study identifies polarity-dependent thresholds: under DC fields, coalescence initiates at E_init ≈ 0.62 kV/mm and completes at E_comp = 0.77 kV/mm (V*=1), whereas under AC fields, coalescence initiates at ≈ 0.92 kV/mm and does not complete within the tested range. This systematic mapping of polarity-dependent thresholds represents the principal novelty of the work and provides a framework for interpreting electrohydrodynamic droplet behavior. The findings offer practical guidance for applications in digital microfluidics, droplet transport, and surface cooling. • A validated 2D phase-field model is used to simulate single and dual droplet dynamics under both DC and AC electric fields. • DC fields yield up to 45 % shorter evaporation time and over twice the horizontal displacement compared to AC fields. • Droplet coalescence occurs earlier and more consistently under DC excitation than under AC conditions. • Field polarity, intensity, and droplet volume jointly govern displacement, coalescence, and evaporation outcomes. • Results provide practical guidance for the design of electrohydrodynamic cooling and droplet manipulation systems.
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