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Numerical Investigation of Orthogonal Cutting Processes with Tool Vibration of Ti6Al4V Alloy

机译:Ti6Al4V合金工具振动正交切削过程的数值研究

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This article investigates the vibration cutting process of Ti6Al4V alloy numerically and theoretically. The Coupling Eulerian-Lagrangian finite element models with one-tool and double-tool are established, to simulate the cutting processes with tool forced vibration and self-exited vibration respectively. It is shown that low-frequency forced vibration aggravates the periodic shear banding instability and increases the cutting force amplitude, whereas high-frequency forced vibration can improve the machined quality. Furthermore, the self-exited vibration due to fluctuating cutting thickness with low frequency promotes the shear banding evolution in chip. The self-exited vibration stability limit is found dependent on the frictional behavior, penetration resistance and the inherent vibration sources of tool-workpiece system. These simulation results show good agreement with theoretical models, which provide practical guidelines for improving vibration machining.
机译:本文在数值和理论上研究了Ti6Al4V合金的振动切割过程。建立了具有单工具和双工具的耦合Eulerian-lagrangian有限元模型,分别模拟刀具强制振动和自进汰振动的切割过程。结果表明,低频强制振动加剧了周期性剪切带不稳定性并增加了切割力幅度,而高频强制振动可以提高加工质量。此外,由于具有低频的切削厚度波动而导致的自进汰振动促进了芯片中的剪切杆进化。发现自外振动稳定性限制取决于摩擦行为,渗透性和工具工件系统的固有振动源。这些仿真结果表现出与理论模型的良好协议,为改善振动加工提供实用指南。

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