China Mechanical Engineering ›› 2026, Vol. 37 ›› Issue (5): 1072-1081.DOI: 10.3969/j.issn.1004-132X.2026.05.007

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Simulation Modeling of Single-pulse Electrical Discharge Bubble Behaviors

WANG Jin1(), QIAO Chunkai1, JIA Zhixin1(), HE Hu2   

  1. 1.School of Mechanical Engineering,University of Science and Technology Beijing,Beijing,100083
    2.Beijing Institute of Electro-machining Co. ,Ltd. ,Beijing,100191
  • Received:2025-12-13 Online:2026-05-25 Published:2026-06-09
  • Contact: JIA Zhixin

单脉冲电火花放电气泡行为仿真建模

王津1(), 乔春凯1, 贾志新1(), 何虎2   

  1. 1.北京科技大学机械工程学院, 北京, 100083
    2.北京市电加工研究所有限公司, 北京, 100191
  • 通讯作者: 贾志新
  • 作者简介:王津,男,1984年生,副教授。研究方向为电火花加工、电解加工、智能制造等。E-mail:wangjin84@ustb.edu.cn
    贾志新*(通信作者),男,1968 年生,教授。研究方向为电火花加工、智能制造等。E-mail:13693618482@163.com
  • 基金资助:
    国家自然科学基金(52275400)

Abstract:

Based on the underwater explosion theory and the ideal gas equation of state, considering the energy loss caused by the wall resistance when the fluid flows in the machining gaps, and combining the maximum expansion volume and the steady-state volume of the bubbles observed in the experiments, a calculation method was determined for the initial temperature, pressure and volume of the bubbles generated by a single-pulse EDM within the inter-electrode gaps. A simulation model for single-pulse discharge bubble behaviors was further developed by using the volume of fluid(VOF) method. The results of the single-pulse discharge bubble observation experiments show that the simulation results are in good agreement with the experimental ones.Using this model, the influences of peak current and pulse duration on bubble evolution behaviors were analyzed. Finally, based on the experimental data obtained from high-speed camera observations, the calculation formulas for the maximum expansion volume, expansion time and steady-state volume of the bubbles were derived under different peak currents and pulse durations. Moreover, the simulation calculation of the single-pulse discharge bubble behaviors may be carried out without observing the experiments.

Key words: electrical discharge machining(EDM), single-pulse, bubble, flow field

摘要:

基于水下爆炸理论和理想气体状态方程,考虑了流体在加工间隙内流动时因壁面阻力导致的能量损失,结合实验观测的气泡最大膨胀体积和稳态体积,确定了极间间隙内单脉冲电火花放电产生气泡的初始温度、压力和体积的计算方法。进一步采用流体体积(VOF)法构建了单脉冲放电产生气泡行为的仿真模型,单脉冲放电气泡观测实验结果表明仿真与实验结果吻合良好。利用该模型分析了峰值电流和脉冲宽度对气泡演变行为的影响。最后基于高速摄像机观测实验数据拟合得出了不同峰值电流和脉冲宽度下气泡最大膨胀体积、膨胀时间及稳态体积的计算公式,且无需观测实验即可对单脉冲放电气泡行为进行仿真计算。

关键词: 电火花加工, 单脉冲, 气泡, 流场

CLC Number: