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Modelling and simulation of micro-milling cutting forces

机译:微铣削切削力的建模与仿真

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The paper presents a new approach for predicting micro-milling cutting forces using the finite element method (FEM). The trajectory of the tool and the uncut chip thickness for different micro-milling parameters (cutting tool radius, feed rate, spindle angular velocity and number of flutes) are determined and used for predicting the cutting forces in micro-milling. The run-out effect is also taken into account. An orthogonal FE model is developed. A number of FE analyses (FEA) are performed at different uncut chip thicknesses (0-20 μm) and velocities (104.7-4723 mm/s) for AISI 4340 steel. Based on the FE results, the relationship between the cutting forces, uncut chip thickness and cutting velocity has been described by a non-linear equation proposed by the authors. The suggested equation describes the ploughing and shearing dominant cutting forces. The micro-milling cutting forces have been determined by using the predicted forces from the orthogonal cutting FE model and the calculated uncut chip thickness. Different feed rates and spindle angular velocities have been investigated and compared with experimentally obtained results. The predicted and the measured forces are in very good agreement.
机译:本文提出了一种使用有限元方法(FEM)预测微铣削切削力的新方法。确定不同微铣削参数(切削刀具的半径,进给速度,主轴角速度和凹槽的数量)的刀具轨迹和未切屑厚度,并将其用于预测微铣削中的切削力。还考虑了跳动效应。建立了正交有限元模型。针对AISI 4340钢,在不同的未切屑厚度(0-20μm)和速度(104.7-4723 mm / s)下进行了许多有限元分析(FEA)。基于有限元结果,作者提出的非线性方程描述了切削力,未切削切屑厚度和切削速度之间的关系。建议的方程式描述了耕作和剪切的主要切削力。通过使用正交切削有限元模型的预测力和计算出的未切削切屑厚度,可以确定微铣削切削力。已经研究了不同的进给速度和主轴角速度,并将其与实验获得的结果进行了比较。预测力和测量力非常吻合。

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