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A three-dimensional model for the dynamics of micro-endmills including bending, torsional and axial vibrations

机译:微型立铣刀动力学的三维模型,包括弯曲,扭转和轴向振动

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摘要

Attainable geometric accuracy and surface finish in a micromilling operation depends on predicting and controlling the vibrations of micro-endmills. The specific multi-scale geometry of micro-endmills results in complexities in dynamic behavior, including three-dimensional vibrations, which cannot be accurately captured using one-dimensional (1D) beam models. This paper presents an analytically based three-dimensional (3D) model for micro-endmill dynamics, including actual cross-section and fluted (pretwisted) geometry. The 3D model includes not only bending, but also coupled axial/torsional vibrations. The numerical efficiency is enhanced by modeling the circular cross-sectioned shank and taper sections using 1D beam equations without compromising in model accuracy, while modeling the complex cross-sectioned and pretwisted fluted section using 3D linear elasticity equations. The boundary-value problem for both 1D and 3D models are derived using a variational approach, and the numerical solution for each section is obtained using the spectral-Tchebychev (ST) technique. Subsequently, component mode synthesis is used for joining the individual sections to obtain the dynamic model for the entire tool. The 3D model is validated through modal experimentation, by comparing natural frequencies and mode-shapes, for two-fluted and four-fluted micro-endmills with different geometries. The natural frequencies from the model was seen to be within 2percent to those from the experiments for up to 90 kHz frequency. Comparison to numerically intensive, solid-element finite-elements models indicated that the 3D and FE models agree with less than 1percent difference in natural frequencies. The 3D-ST model is then used to analyze the effect of geometric parameters on the dynamics of micro-endmills.
机译:在微型铣削操作中可获得的几何精度和表面光洁度取决于预测和控制微型立铣刀的振动。微型立铣刀的特定多尺度几何结构会导致动态行为的复杂性,包括三维振动,而使用一维(1D)光束模型无法准确捕获这些振动。本文提出了一种基于解析的三维(3D)模型,用于微型立铣刀动力学,包括实际横截面和槽纹(预缠绕)几何形状。 3D模型不仅包括弯曲,还包括轴向/扭​​转振动。通过使用一维梁方程对圆形横截面的柄部和锥度截面进行建模,而又不影响模型精度,而使用3D线性弹性方程对复杂的横截面和预捻槽形截面进行建模,可以提高数值效率。使用变分方法导出一维和3D模型的边界值问题,并使用光谱切比雪夫(ST)技术获得每个截面的数值解。随后,组件模式综合用于连接各个部分,以获得整个工具的动态模型。通过比较具有不同几何形状的两槽和四槽微型立铣刀的固有频率和模式形状,通过模态实验验证了3D模型。在高达90 kHz的频率下,模型的自然频率被认为是实验频率的2%以内。与数值密集型实体元素有限元模型的比较表明,3D和FE模型的固有频率差异小于1%。然后使用3D-ST模型分析几何参数对微型立铣刀动力学的影响。

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