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Thermo–Mechanical Behavior and Constitutive Modeling of In Situ TiB2/7050 Al Metal Matrix Composites Over Wide Temperature and Strain Rate Ranges

机译:宽温度和应变速率范围内原位TiB2 / 7050 Al金属基复合材料的热力学行为和本构模型

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摘要

The thermo–mechanical behavior of in situ TiB2/7050 Al metal matrix composites is investigated by quasi-static and Split Hopkinson Pressure Bar compression tests over a wide range of temperature (20~30 °C) and strain rate (0.001~5000 s−1). Johnson–Cook and Khan–Liu constitutive models determined from curve fitting and constrained optimization are used to predict the flow stress during deformation. In addition, another Johnson–Cook model calculated from an orthogonal cutting experiment and finite element simulation is also compared in this study. The prediction capability of these models is compared in terms of correlation coefficient and average absolute error. Due to the assumptions in orthogonal cutting theory, the determined Johnson–Cook model from cutting cannot describe the material deformation behavior accurately. The results also show that the Khan–Liu model has better performance in characterizing the material’s thermo–mechanical behavior.
机译:通过准静态和分裂霍普金森压力棒压缩试验,在较宽的温度范围(20〜30°C)和应变速率(0.001〜5000 s <范围)内研究了原位TiB2 / 7050 Al金属基复合材料的热机械行为。 sup> -1 )。通过曲线拟合和约束优化确定的Johnson-Cook和Khan-Liu本构模型用于预测变形过程中的流应力。此外,本研究还比较了通过正交切削实验和有限元模拟计算出的另一个Johnson-Cook模型。根据相关系数和平均绝对误差比较了这些模型的预测能力。由于正交切削理论中的假设,从切削中确定的Johnson-Cook模型无法准确描述材料变形行为。结果还表明,Khan–Liu模型在表征材料的热机械行为方面具有更好的性能。

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