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An efficient decomposition-condensation method for chatter prediction in milling large-scale thin-walled structures

机译:大型薄壁结构铣削颤振预测的有效分解-凝聚方法

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In this work, an efficient decomposition-condensation method is developed to predict the in-process workpiece (IPW) dynamics for chatter prediction in finishing and semi-finishing large-scale thin-walled structures. Considering the fact that the IPW dynamics is time-varying during the milling process, the IPW is decomposed into three components, namely the machined workpiece, the initial material to be removed and the removed material. The first component is kept unchanged, while the third component is subtracted from the second one. The initial material to be removed is updated by the structural dynamic modification technique to efficiently reveal the effect of material removal. Finite element models of the first two components are further condensed and coupled using component mode synthesis method to calculate the IPW dynamics. In this way, the model order of IPW is significantly reduced and the material removal can be simulated efficiently. The proposed method is finally integrated into a dynamic model for chatter prediction of the milling process. Two thin-walled pockets with planes and curved surfaces are investigated as typical cutting tests to verify the proposed method. It is shown that numerical results agree well with the experimental ones. For the same computing accuracy, the proposed method is observed to reduce the computational burden twice more than the existing methods for chatter prediction. (C) 2018 Elsevier Ltd. All rights reserved.
机译:在这项工作中,开发了一种有效的分解-冷凝方法来预测过程中工件(IPW)的动力学,从而在大型和薄壁大型精加工和半精加工中进行颤振预测。考虑到IPW动力学在铣削过程中随时间变化的事实,将IPW分解为三个部分,即加工的工件,要去除的初始材料和去除的材料。第一个分量保持不变,而第二个分量减去第三个分量。通过结构动态修改技术更新要去除的初始材料,以有效地显示去除材料的效果。使用组件模式综合方法,进一步简化和耦合前两个组件的有限元模型,以计算IPW动力学。这样,IPW的模型顺序显着降低,并且可以有效地模拟材料去除。最终将提出的方法集成到用于铣削过程颤动预测的动态模型中。研究了两个带有平面和曲面的薄壁袋,作为典型的切削测试,以验证所提出的方法。结果表明,数值结果与实验结果吻合良好。对于相同的计算精度,观察到的方法比现有的颤动预测方法减少了两倍的计算负担。 (C)2018 Elsevier Ltd.保留所有权利。

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