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Dynamic tensile behavior and constitutive modeling of magnesium based hybrid nanocomposites at elevated temperatures

机译:升高温度下镁杂交纳米复合材料的动态拉伸行为及本构模拟

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The dynamic response and constitutive behavior of magnesium (Mg) based nanocomposites have not been sufficiently investigated. Thus, dynamic tensile stress-strain characteristics of 1.0 mass% hybrid carbon nanotubes (CNTs) and silicon carbide (SiC) nanoparticles reinforced AZ91D matrix composites were studied at high strain rates and elevated temperatures by experiments and simulations in the present work. The dynamic tensile stress-strain curves of the AZ91D matrix nanocomposites at different strain rates and elevated temperatures were experimentally obtained. The experimental results show that the dynamic stress-strain relationship of the AZ91D nanocomposites is strain rate and temperature dependent. By considering the strain rate hardening and the coupled effects of strain rate and temperature, a modified Johnson-Cook (J-C) constitutive model was proposed to predict the dynamic mechanical behavior of the composites at high temperatures and high strain rates. In addition, the modified J-C model is implemented in ABAQUS / Explicit by using the user material subroutine VUMAT. The simulation results using the modified model show a good agreement with the experimental data, proving its capabilty for predicting the dynamic tensile response of the AZ91D nanocomposites well at elevated temperatures.
机译:镁(Mg)纳米复合材料的动态响应和组成型行为没有得到充分研究。因此,在高应变速率下研究了1.0质量%杂交碳纳米管(CNT)和碳化硅(SiC)纳米颗粒增强AZ91D基质复合材料的动态拉伸应力 - 应变特性,并通过实验和模拟在本工作中的实验和模拟中升高。通过实验获得AZ91D基质纳米复合材料的AZ91D基质纳米复合材料的动态拉伸应力 - 应变曲线。实验结果表明,AZ91D纳米复合材料的动态应力 - 应变关系是应变速率和温度依赖性。通过考虑应变速率硬化和应变速率和温度的耦合效果,提出了一种改进的Johnson-Cook(J-C)本构模型,以预测高温和高应变率的复合材料的动态力学行为。此外,修改后的J-C型号通过使用用户材料子程序Vumat在Abaqus /明确中实现。使用修改模型的仿真结果显示了与实验数据的良好一致性,证明其能够在高温下预测AZ91D纳米复合材料的动态拉伸响应。

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