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Electrochemical machining flow field simulation and experimental verification for irregular vortex paths of a closed integer impeller

机译:封闭整数叶轮的不规则涡流路径的电化学加工流场仿真及实验验证

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摘要

Electrochemical machining (ECM) is an economical and effective method for machining hard-to-cut metal materials into complex shapes in aerospace and aeronautics fields, which are difficult to machine with conventional methods. As we all know, electrolyte flow field is one of the important factors in ECM irregular vortex paths of the closed integer impeller. To improve the stability of the whole processing, the flow field mathematical model was developed. The 3-D gap flow field simulation models of the reversed flow and forward flow patterns were also established, respectively. From the streamline, velocity, and pressure cloud picture of the electrolyte flow field simulation, the results showed that under the reversed pattern, the electrolyte flow velocity in the front gap and the side gap was not only higher but also more uniform than the forward pattern. Finally, the experimental verification was carried out and the experimental results were consistent with the simulation results. The whole process is stable and has no spark and no short circuit phenomenon with the reverse flow pattern. We successfully obtained 0.8-micron surface roughness of the machined workpiece. On the contrary, the irregular vortex paths cannot be successfully processed by forward flow pattern. The results indicate that reverse flow pattern is an effective and feasible method to machining irregular vortex paths of the closed integer impeller.
机译:电化学加工(ECM)是一种经济型有效的和有效的方法,用于在航空航天和航空领域的复杂形状加工成复杂的形状,这难以通过传统方法机器。众所周知,电解质流场是封闭整数叶轮的ECM不规则涡流路径中的重要因素之一。为了提高整个处理的稳定性,开发了流场数学模型。还分别建立了颠倒的流动和正向流动模式的3-D间隙流场仿真模型。从电解质流场仿真的流线,速度和压力云图片,结果表明,在反向图案下,前间隙中的电解质流速和侧面间隙不仅比前向图案更高,而且更均匀。最后,进行了实验验证,实验结果与模拟结果一致。整个过程稳定,没有火花,没有带有反向流动模式的短路现象。我们成功获得了加工工件的0.8微米表面粗糙度。相反,不规则的涡流路径无法通过正向流动模式成功处理。结果表明,逆流模式是加工封闭整数叶轮的不规则涡流路径的有效和可行的方法。

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