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Improving Machining Accuracy of the EMM Process through Mluti-physics AnalysisImproving Machining Accuracy of the EMM Process through Mluti-physics Analysis

机译:通过MLUTI-Physics分析通过MLUTI-MATIONICS ANASICATIM ATICAPING加工精度提高EMM过程的加工精度

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In this study, the parametric effects of the EMM process were studied by both numerical simulation and experimental tests. The numerical simulation was performed using commercial software, FEMLAB, to establish a multi-physics model which consists of electrical field, convection and diffusion phenomena to simulate the parametric effects of pulse rate, pulse duty, electrode gap and inflow velocity. From the simulated results, the relationship between parameters and the distribution of metal removal could be established. Proper process variables were also chosen to conduct the EMM experiments. After the experiments, the profile of the processed rectangular slot was measured by a Keyence digital microscope. Comparing profile of the processed rectangular slot with the profile of the cathode, the machining accuracy of EMM process could be determined. It could also verify the efficacy of the multi-physics model for predicting machining accuracy. From this study, the effects of parameters such as pulse rate, pulse duty, electrode gap and inflow velocity are better understood. The simulation model could be employed as a predictive tool to provide optimal parameters for better machining accuracy and process stability of the EMM process.
机译:在这项研究中,通过数值模拟和实验测试研究了EMM过程的参数效应。使用商业软件Femlab进行数值模拟来建立由电场,对流和扩散现象组成的多物理模型,以模拟脉冲率,脉冲占电电极间隙和流入速度的参数效果。从模拟结果中,可以建立参数与金属去除分布之间的关系。还选择适当的过程变量来进行EMM实验。实验后,通过键入数字显微镜测量处理的矩形槽的轮廓。将处理的矩形槽的轮廓与阴极的轮廓相比,可以确定EMM过程的加工精度。它还可以验证多物理模型预测加工精度的功效。从该研究来看,更好地理解脉冲率,脉搏,电极间隙和流入速度的参数的影响。仿真模型可以用作预测工具,以提供最佳参数,以便更好的加工精度和EMM过程的过程稳定性。

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