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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >Finite element simulation of high-speed machining of titanium alloy (Ti–6Al–4V) based on ductile failure model
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Finite element simulation of high-speed machining of titanium alloy (Ti–6Al–4V) based on ductile failure model

机译:基于延性破坏模型的钛合金(Ti-6Al-4V)高速加工的有限元模拟

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摘要

A Johnson–Cook material model with an energy-based ductile failure criterion is developed in titanium alloy (Ti–6Al–4V) high-speed machining finite element analysis (FEA). Furthermore, a simulation procedure is proposed to simulate different high-speed cutting processes with the same failure parameter (i.e., density of failure energy). With this finite element (FE) model, a series of FEAs for titanium alloy in extremely high-speed machining (HSM) is carried out to compare with experimental results, including chip morphology and cutting force. In addition, the chip morphology and cutting force variation trends under different cutting conditions are also analyzed. Using this FE model, the ductile failure parameter is modified for one time, afterword, the same failure parameter is applied to other conditions with a key modification. The predicted chip morphologies and cutting forces show good agreement with experimental results, proving that this ductile failure criterion is appropriate for titanium alloy in extremely HSM. Moreover, a series of relatively low cutting speed experiments (within the range of HSM) were carried out to further validate the FE model. The predicted chip morphology and cutting forces agree well with the experimental results. Moreover, the plastic flow trend along an adiabatic shear band is also analyzed.
机译:在钛合金(Ti-6Al-4V)高速加工有限元分析(FEA)中开发了基于能量的延性破坏准则的Johnson-Cook材料模型。此外,提出了一种模拟程序来模拟具有相同故障参数(即故障能量的密度)的不同高速切削过程。利用这种有限元(FE)模型,进行了一系列超高速加工(HSM)钛合金的有限元分析,以与包括切屑形态和切削力在内的实验结果进行比较。此外,还分析了不同切削条件下的切屑形态和切削力变化趋势。使用此有限元模型,延性失效参数被修改了一次,之后,通过密钥修改将相同的失效参数应用于其他条件。预测的切屑形态和切削力与实验结果显示出良好的一致性,证明了这种延性破坏准则适用于极HSM的钛合金。此外,进行了一系列相对较低的切削速度实验(在HSM范围内)以进一步验证FE模型。预测的切屑形态和切削力与实验结果非常吻合。此外,还分析了沿绝热剪切带的塑性流动趋势。

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