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Vibration analysis of cutting force in titanium alloy milling

机译:钛合金铣削切削力的振动分析

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摘要

Machining processes such as milling, which are characterized by interrupted cutting, are often susceptible to problems involving vibration of the machine-tool-workpiece fixation device system because of the proximity between their natural frequency harmonics and the frequency of tool entry on the workpiece. This phenomenon is particularly important in the milling of titanium alloys, because these materials show a low Young modulus, and hence, an extended elastic behavior, which means tremendous variations in chip thickness and fluctuating cutting forces. Moreover, very low heat conductivity causes the formation of serrated chips, which further increase the fluctuation in cutting forces. The purpose of this work is to study the influence of the tool entering angle on the stability of the process and on tool life based on a time and frequency domain analysis of the cutting forces. The results show that lower entering angles may provide stabler cutting, as indicated by the regular tool wear instead of the microchipping resulting from the use of a higher value of this angle. Although cutting forces are larger at lower entering angles, the tool life is much longer, since most of this load is associated with low frequencies, at which the tool behaves like a rigid body.
机译:由于其固有频率谐波与工具进入工件的频率之间的接近性,以铣削为特征的切削等加工过程通常易受涉及机床工件固定装置系统振动的问题的影响。这种现象在铣削钛合金时尤为重要,因为这些材料的杨氏模量低,因此具有扩展的弹性性能,这意味着切屑厚度和切削力的波动很大。此外,非常低的导热率导致形成锯齿状切屑,这进一步增加了切削力的波动。这项工作的目的是基于切削力的时域和频域分析,研究刀具进入角度对过程稳定性和刀具寿命的影响。结果表明,较小的进入角可提供更稳定的切削效果,如常规刀具磨损所示,而不是由于使用该角度的较高值而产生的微屑。尽管在较小的进入角度下切削力较大,但刀具寿命更长,因为这种负载的大部分与低频有关,在低频下,刀具的行为类似于刚体。

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