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A new method for cutting force prediction in peripheral milling of complex curved surface

机译:复杂曲面外圆铣削中切削力预测的新方法

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摘要

The instantaneous uncut chip thickness and entry/exit angle of tool/workpiece engagement vary with tool path, workpiece geometry and cutting parameters in peripheral milling of complex curved surface, leading to the strong time-varying characteristic for instantaneous cutting forces. A new method for cutting force prediction in peripheral milling of complex curved surface is proposed in this paper. Considering the tool path, cutter runout, tool type(constantonconstant pitch cutter) and tool actual motion, a representation model of instantaneous uncut chip thickness and entry/exit angle of tool/ workpiece engagement is established firstly, which can reach better accuracy than the traditional models. Then, an approach for identifying of cutter runout parameters and calibrating of specific cutting force coefficients is presented. Finally, peripheral milling experiments are carried out with two types of tool, and the results indicate that the predicted cutting forces are highly consistent with the experimental values in the aspect of variation tendency and amplitude.
机译:在复杂曲面的外围铣削中,瞬时未切削切屑厚度和工具/工件接合的进/出角随刀具路径,工件几何形状和切削参数而变化,从而导致瞬时切削力具有很强的时变特性。提出了一种复杂曲面外围铣削中切削力预测的新方法。考虑到刀具轨迹,刀具跳动,刀具类型(恒/非恒定螺距刀具)和刀具实际运动,首先建立了瞬时未切削切屑厚度和刀具/工件啮合进/出角的表示模型,其精度优于传统模式。然后,提出了一种用于识别刀具跳动参数并校准特定切削力系数的方法。最后,用两种刀具进行了外围铣削实验,结果表明,预测的切削力在变化趋势和振幅方面与实验值高度一致。

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