Almacinha José A S, Fernandes Alice M G, Maciel Duarte A, Seca Ricardo J M, Marafona José D R
Departamento de Engenharia Mecânica, Faculdade de Engenharia da Universidade do Porto, Rua Roberto Frias, 4200-465 Porto, Portugal.
Materials (Basel). 2021 Jun 3;14(11):3038. doi: 10.3390/ma14113038.
In this article, a finite element (FE) thermal-electrical model with a trunk-conical discharge channel is employed to simulate individual EDM discharges with a time-on of 18 μs up to 320 μs, which are subsequently compared with the experimental results to validate the model. The discharge channel is a trunk-conical electrical conductor which dissipates heat by the Joule heating effect, being the correspondent factor equal to 1. Instead of the usual copper-iron electrode combination, steel (DIN CK45) and aluminium alloys (DIN 3.4365) are the implemented materials on both the tool and the workpiece, respectively. The numerical results were measured using the melting temperature of the materials as the boundary of material removal. The results obtained with the thermal-electrical model, namely the tool wear ratio, the tool wear rate, the material removal rate, and the surface roughness, are in good agreement with experimental results, showing that the new FE model is capable of predicting accurately with different materials for the electrodes.
在本文中,采用具有树干锥形放电通道的有限元(FE)热电模型来模拟单个电火花加工放电,放电持续时间从18 μs到320 μs,随后将其与实验结果进行比较以验证该模型。放电通道是一个树干锥形电导体,通过焦耳热效应散热,对应系数等于1。工具和工件上分别采用的材料不是通常的铜 - 铁电极组合,而是钢(DIN CK45)和铝合金(DIN 3.4365)。数值结果是使用材料的熔化温度作为材料去除边界来测量的。通过热电模型获得的结果,即工具磨损率、工具磨损速率、材料去除率和表面粗糙度,与实验结果吻合良好,表明新的有限元模型能够准确预测不同电极材料的情况。