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Dynamic substructuring of machine tools considering local damping models

机译:考虑局部阻尼模型的机床动态子结构

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Dynamic substructuring is widely known and applied for different types of systems to divide a structure into subsystems while considering the dynamic influences of the coupled structure. For complex systems such as machine tools, substructuring becomes more difficult. Nevertheless, dividing a machine tool into substructures allows for a more efficient optimization of machine tool design regarding different machine positions. Recent substructuring approaches for machine tools focus on the modelling of mass and stiffness properties while lacking proper local damping models for each component. Damping is usually added after the coupling of the individual components by using measured or empirical values for the overall system in the current state. Therefore, a real prototype of the machine is needed to predict accurate results for the system behavior. This paper proposes a substructuring approach, which includes the local damping of each dissipation source on the substructure level. Each substructure is modelled using viscous and hysteretic damping models for the individual damping sources followed by a Craig-Bampton-reduction of the substructure. The reduced mass, stiffness and damping matrices are coupled in the desired machine position to predict the behavior of the machine tool structure. The hysteretic damping is thereby transformed using equivalent viscous damping values to allow for a simulation of the machine’s dynamic behavior in the time domain. The results of this substructure coupling approach are compared to a standard mode acceleration approach of the non-substructured machine tool, which needs to be recalculated for every machine position or design changes to individual components. Furthermore, the influence of the frequency range on the substructure reduction results is evaluated. It is shown, that the presented coupling approach is in high accordance with traditional reduction approaches. With this modelling approach, the dynamic behavior of a machine tool can be predicted at different machine positions without measuring the damping values on real prototypes or using simplified empirical values. This leads to new optimization possibilities in the design process of machine tools and thus to enhanced machine tool performance.
机译:动态子结构广泛熟知并应用于不同类型的系统,以在考虑耦合结构的动态影响的同时将结构划分为子系统。对于诸如机床的复杂系统,子结构变得更加困难。然而,将机床分成子结构允许更有效地优化关于不同机器位置的机床设计。最近用于机床的近摄结构方法专注于质量和刚度特性的建模,同时缺少每个组件的适当局部阻尼模型。通常通过在当前状态下的整个系统的测量或经验值在各个组分耦合之后添加阻尼。因此,需要一种机器的真实原型来预测系统行为的准确结果。本文提出了一种子结构方法,其包括对子结构水平的每个耗散源的局部阻尼。每个子结构使用用于各个阻尼源的粘性和滞回阻尼模型进行建模,然后是子结构的CRAIG-BAMPTON还原。降低的质量,刚度和阻尼矩阵在所需的机器位置耦合以预测机床结构的行为。由此使用等效粘性阻尼值改变滞后阻尼,以允许在时域中模拟机器的动态行为。将该子结构耦合方法的结果与非子结构机工具的标准模式加速度进行比较,这需要为每个机器位置或各个组件的设计改变重新计算。此外,评估频率范围对子结构减少结果的影响。示出了,所示的耦合方法与传统的减少方法高。利用这种建模方法,可以在不同的机器位置预测机床的动态行为,而不测量真实原型上的阻尼值或使用简化的经验值。这导致机床设计过程中的新优化可能性,从而提高了机床性能。

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