Simulation and Optimization of the Auxiliary Cathode for Inter-Electrode Discharge Electric Field in Microarc Oxidation

阴极 材料科学 GSM演进的增强数据速率 电极 图层(电子) 有限元法 复合材料 电弧 电场 沟槽(工程) 氧化物 弧(几何) 微弧氧化 合金 冶金 机械工程 结构工程 电气工程 化学 工程类 物理化学 电信 量子力学 镁合金 物理
作者
Pengxiang Lv,Xiaozhou Zhang,Lei Chen,Shixuan Wang,Zhen Wang,Rongguo He,Le Guan
出处
期刊:Materials [Multidisciplinary Digital Publishing Institute]
卷期号:16 (14): 5065-5065 被引量:4
标识
DOI:10.3390/ma16145065
摘要

Currently, research on the edge effect issue in the micro-arc oxidation process primarily focuses on investigating process conditions and enhancing additives. However, some scholars have utilized finite element analysis software to simulate the edge effect during the simulation process, overlooking the investigation of the morphology of the auxiliary cathode. This study analyzes the growth characteristics of the oxide film on aluminum alloy 2A12 during micro-arc oxidation. Additionally, the inter-electrode discharge electric field is simulated using the finite element analysis method. The auxiliary cathode is optimized to mitigate the influence of the edge effect on the film layer. The findings indicate that employing a cylindrical shape as the auxiliary cathode instead of a rectangular groove leads to an increased thickness of the micro-arc oxidation film. However, it also results in an augmented length of the film layer affected by the edge effect at both ends of the workpiece. Decreasing the distance between the auxiliary cathode and the workpiece surface leads to a higher thickness of the obtained micro-arc oxidation film. Decreasing the length of the auxiliary cathode results in a reduction in both the thickness of the film layer on the workpiece surface and the area affected by the edge effect. Increasing the eccentric cone ratio of the auxiliary cathode enhances the uniformity of the micro-arc oxidation film layer. In this study, we present a novel auxiliary cathode model that incorporates a smaller cylindrical shell at the center and eccentric cone shells on each side. This model has the potential to enhance the optimization rate of the micro-arc oxidation film layer on cylindrical workpieces by 17.77%.
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