College of Engineering, Nanjing Agricultural University, Nanjing, 210031, China.
Jiangsu Key Laboratory of Precision and Micro-Manufacturing Technology, Nanjing University of Aeronautics and Astronautics, Nanjing, 210016, China.
Sci Rep. 2022 Jul 11;12(1):11789. doi: 10.1038/s41598-022-16099-1.
Electrochemical grinding (ECG) is processed by the combination of dissolution and grinding. It is very suitable for the processing of difficult-to-cut stainless steel, but its processing performance is restricted by the matching effect of dissolution and grinding. In this work, the processing of the torus surfaces of the stainless steel shaver cap was taken as the research object. A flow field model including the through-hole structure and the rotation of the grinding head was proposed to optimize the flow field distribution and promote the uniform dissolution of materials. The flow field simulation results showed that the rotational flow formed by the high-speed rotation prolonged the electrolyte flow path and was not conducive to the discharge of electrolytic products, and the reasonable selection of the diameter and distribution of the through-hole could reduce the velocity difference. The effects of rotational speed, feed rate, and inlet pressure on the flatness and surface roughness of the torus surfaces were experimentally investigated, and a better matching effect of dissolution and grinding was obtained. Moreover, the experimental results showed that the inner-jet ECG had a good prospect in the batch processing of high-hardness stainless steel parts.
电化学研磨(ECG)是通过溶解和研磨的结合来进行的。它非常适合加工难切削的不锈钢,但它的加工性能受到溶解和研磨的匹配效果的限制。在这项工作中,以不锈钢剃须刀头的环面加工为研究对象。提出了一种包含通孔结构和研磨头旋转的流场模型,以优化流场分布,促进材料的均匀溶解。流场模拟结果表明,高速旋转形成的旋流延长了电解液的流动路径,不利于电解产物的排出,而合理选择通孔的直径和分布可以降低速度差。实验研究了转速、进给速度和入口压力对环面平面度和表面粗糙度的影响,获得了更好的溶解和研磨匹配效果。此外,实验结果表明,内喷电化学研磨在高硬度不锈钢零件的批量加工中具有良好的前景。