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首页> 外文期刊>International Journal of Material Forming: Official Journal of the European Scientific Association for Material Forming - ESAFORM >Numerical study of chip formation and cutting force in high-speed machining of Ti-6Al-4V bases on finite element modeling with ductile fracture criterion
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Numerical study of chip formation and cutting force in high-speed machining of Ti-6Al-4V bases on finite element modeling with ductile fracture criterion

机译:基于延性断裂准则的有限元建模的Ti-6Al-4V高速加工中切屑形成和切削力的数值研究

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摘要

This paper suggests a novel numerical model to accurately simulate the chip formation for a wide range of high cutting speeds. It consists of finite element (FE) modeling of orthogonal machining of titanium alloy (Ti-6Al-4V) in which the Johnson-Cook (JC) material law which can reflect the strain rate hardening and thermal softening influences, and the JC damage law coupled with the displacement-based ductile failure criterion are implemented during the chip formation. Orthogonal machining simulations are performed in a conventional high cutting speed range of 170 to 250 m/min and at the extreme high cutting speeds ranging from 1200 to 4800 m/min, and saw-tooth chips are occurred. The development of chip serration and cutting force are analyzed. It is found that saw-tooth chip formation in high-speed machining of Ti-6Al-4V is the result of ductile fracture. When the cutting speed is increased from conventional to extreme high speeds, the chip morphology changes with varying the fracture behavior. The numerical model is also verified by comparing predicted results with available experimental data in the literature. The results indicate that chip morphology and cutting force can be accurately acquired using the ductile failure criterion in high-speed machining of Ti-6Al-4V.
机译:本文提出了一种新的数值模型,可以准确模拟各种高切削速度下的切屑形成。它由钛合金(Ti-6Al-4V)正交加工的有限元(FE)建模组成,其中在切屑形成过程中实现了能够反映应变率硬化和热软化影响的Johnson-Cook(JC)材料定律,以及JC损伤定律和基于位移的延性破坏准则。正交加工模拟是在 170 至 250 m/min 的传统高切削速度范围内和 1200 至 4800 m/min 的极高切削速度范围内进行的,并出现锯齿切屑。分析了切屑锯齿和切削力的发展规律。研究发现,Ti-6Al-4V高速加工中的锯齿形屑形成是韧性断裂的结果。当切削速度从常规速度提高到极高速时,切屑形貌会随着断裂行为的变化而变化。通过将预测结果与文献中可用的实验数据进行比较,验证了数值模型。结果表明,在Ti-6Al-4V高速加工中,使用延性破坏准则可以准确获取切屑形貌和切削力。

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