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A frequency-based substructuring approach to efficiently model position-dependent dynamics in machine tools

机译:一种基于频率的子构造方法,可有效地对机床中位置相关的动力学进行建模

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摘要

Structural deformations of machine tool components that translate and/or rotate relative to each other to realize tool motion results in tool point dynamics varying along the tool path. These changing dynamics interact with the cutting process and the control loop of the drives to limit machine performance, making it necessary to virtually characterize these interactions such as to guide design decisions. To facilitate rapid evaluation of these varying dynamics, this paper describes a generalized frequency-based substructuring approach that combines the position-invariant component level receptances at the contacting interfaces between substructures to obtain the position-dependent tool point response. Receptances at the contacting interfaces are approximated by projecting them to a point to facilitate a multiple point receptance coupling formulation. Complete machine behavior is represented by just a few sets of receptances, making the model computationally more efficient than full-order finite element models and other dynamic substructuring methods. Position-dependent dynamic behavior for a representative three axis milling machine is simulated and numerically verified. Rapid investigations of the varying dynamics assist in virtually characterizing machine performance before eventual prototyping.
机译:相对彼此平移和/或旋转以实现刀具运动的机床部件的结构变形导致沿刀具路径变化的刀具点动力学。这些变化的动力学与切割过程和驱动器的控制环相互作用,以限制机器性能,因此有必要对这些相互作用进行虚拟表征,以指导设计决策。为了便于快速评估这些变化的动力学,本文介绍了一种基于频率的广义子结构化方法,该方法将子结构之间的接触界面处的位置不变的组件水平接受度结合起来,以获得与位置有关的工具点响应。通过将接触界面投影到一个点来简化接触界面处的接收,以促进多点接收耦合的制定。完整的机器行为仅由几组接收代表,这使得该模型在计算上比全阶有限元模型和其他动态子构造方法更有效。对具有代表性的三轴铣床的位置相关的动态行为进行了仿真和数值验证。快速研究变化的动力有助于在最终原型制作之前对机器性能进行虚拟表征。

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