首页> 外文期刊>Journal of manufacturing science and engineering: Transactions of the ASME >A Model for Bending, Torsional, and Axial Vibrations of Microand Macro-Drills Including Actual Drill Geometry—Part I: Model Development and Numerical Solution
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A Model for Bending, Torsional, and Axial Vibrations of Microand Macro-Drills Including Actual Drill Geometry—Part I: Model Development and Numerical Solution

机译:包括实际钻头几何形状在内的微型和宏观钻头的弯曲,扭转和轴向振动的模型-第一部分:模型开发和数值解

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摘要

Part I of this work presents a combined one-dimensional/three-dimensional approach for obtaining a unified model for the dynamics of micro- and macro-drills. To increase the numerical efficiency of the model, portions of the drill with circular cross-section (shank, extension, and tapered sections) are modeled using one-dimensional beam models without compromising model accuracy. A three-dimensional model is used for an accurate representation of the fluted section, considering the actual geometry with the pretwisted shape and axially varying (nonaxisymmetric) cross-section. The actual cross-section of the drills is incorporated to the model through a polynomial mapping while the pretwist effect is captured by defining a rotating reference frame. The boundary-value problem for both one- and three-dimensional models are derived using a variational approach, based on the extended Hamilton’s principle, and are subsequently solved by applying the spectral-Tchebychev technique. A component-mode synthesis is used for connecting the individual sections to obtain the dynamic model for the entire drill. Convergence of the model is studied by varying the number of polynomials for each section. The experimental validation of the model is included in Part II for both macro- and micro-drills. Also included in Part II is an analysis of drill dynamics for varying drill-geometry parameters and axial (thrust) force.
机译:这项工作的第一部分提出了一种结合一维/三维方法来获得微观和宏观钻探动力学的统一模型。为了提高模型的数值效率,使用一维梁模型对具有圆形横截面(钻头,延伸部分和锥形部分)的钻头部分进行建模,而不会影响模型的准确性。考虑到具有预扭曲形状和轴向变化(非轴对称)横截面的实际几何形状,可使用三维模型来精确表示槽纹截面。通过多项式映射将钻头的实际横截面合并到模型中,同时通过定义旋转参考系来捕获预扭转效果。基于扩展的汉密尔顿原理,使用变分方法导出一维和三维模型的边值问题,然后通过应用频谱切比雪夫技术解决。组件模式综合用于连接各个部分,以获得整个钻机的动态模型。通过改变每个部分的多项式数量来研究模型的收敛性。该模型的实验验证包括在第二部分中的宏观和微观钻探中。第二部分还包括针对各种钻头几何参数和轴向(推力)力的钻头动力学分析。

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