DISTRIBUTION OF ELECTRIC POTENTIAL DURING ELECTROMECHANICAL TREATMENT OF CYLINDRICAL PARTS WITH THREE ELECTRODE TOOLS

Y. Isaev, V. Kurdyumov, S. A. Yakovlev S. A.
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Abstract

Further productivity increase and energy consumption reduction during electromechanical treatment (EMT) of machine parts is possible due to development and application of a three-tool impact on the treated surfaces. In this regard, power equipment for EMT, operating on linear voltage of the electrical power supply, should be used. Taking into account practical zero lag of the electric field associated with low frequency of the current in the active circuit of the EMT, we solved the problem of distributing electrical potentials in a cylindrical part along the radius of the cylinder, on the basis of the Laplace equation, as well as the deviation angle of the desired point from the initial position and the position of the electrode-tool along the axis of the cylinder. The obtained dependences were confirmed by practical experiments, which allowed to construct the surfaces of potential response of a cylindrical part during EMT, depending on the current radius values and cylindrical part length, as well as the deviation angle in the transverse plane of the desired point from the initial coordinate. Thereupon, it is possible to determine the features of heat release in the part during EMT with three tool electrodes. It allows to evaluate the nature of heat distribution over the volume of cylindrical parts during EMT, determine the parameters of the required current source, select the suitable treatment modes, and determine the nature of temperature changes in the workpiece, including in the area of its contact with the tool electrode.
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三电极工具对圆柱件机电加工过程中的电位分布
在机械零件的机电处理(EMT)过程中,由于对被处理表面的三刀冲击的开发和应用,进一步提高生产率和降低能耗是可能的。在这方面,应使用在电源线性电压下工作的EMT电源设备。考虑到EMT有源电路中与低频电流相关的电场的实际零滞后,我们根据拉普拉斯方程,以及期望点与初始位置和电极-工具位置沿圆柱体轴线的偏差角,解决了沿圆柱体半径分布的电势问题。通过实际实验验证了所得到的依赖关系,可以根据当前半径值、圆柱形零件长度以及期望点横切面与初始坐标的偏差角,构建EMT过程中圆柱形零件的电位响应曲面。因此,可以确定零件在EMT过程中使用三个工具电极的热释放特征。它可以评估EMT期间圆柱形零件体积上的热分布性质,确定所需电流源的参数,选择合适的处理模式,并确定工件温度变化的性质,包括其与工具电极接触的区域。
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