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Experimental and Constitutive Model on Dynamic Compressive Mechanical Properties of Entangled Metallic Wire Material under Low-Velocity Impact

机译:低速冲击下缠结金属线材动态压缩力学性能的实验与本构模型

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摘要

In this paper, the dynamic compressive mechanical properties of entangled metallic wire material (EMWM) under low-velocity impact were investigated and the constitutive model for EMWM under low-velocity impact was established. The research in this paper is based on a series of drop-hammer tests. The results show that the energy absorption rate of EMWM is in the range from 50% to 85%. Moreover, the EMWM with a higher relative density would not plastically deform macroscopically and has excellent characteristics of repetitive energy absorption. With the increase in relative density, the maximum deformation of EMWM decreases gradually, and the impact force of EMWM increases gradually. With the increase in impact-velocity, the phenomenon of stiffness softening before reaching the maximum deformation of EMWM becomes more significant. A constitutive model for EMWM based on the Sherwood−Frost model was established to predict the dynamic compressive mechanical properties of EMWM. The accuracy of the model was verified by comparing the calculated results with the experimental data of the EMWM with different relative densities under different impact-velocities. The comparison results show that the established model can properly predict the dynamic compressive mechanical characteristics of EMWM under low-velocity impact loading.
机译:本文研究了低速冲击下缠绕金属线材(EMWM)的动态压缩力学性能,并建立了低速冲击下EMWM的本构型模型。本文的研究基于一系列滴锤试验。结果表明,EMWM的能量吸收率在50%至85%的范围内。此外,具有较高相对密度的EMWM不会宏观变形,并且具有优异的重复能量吸收特性。随着相对密度的增加,EMWM的最大变形逐渐降低,EMWM的冲击力逐渐增加。随着冲击速度的增加,在达到EMWM的最大变形之前,刚度软化的现象变得更加重要。建立了基于Sherwood-Frost模型的EMWM的构成模型,以预测EMWM的动态压缩力学性能。通过将计算结果与不同冲击速度的不同相对密度的不同相对密度进行比较来验证模型的准确性。比较结果表明,建立的模型可以在低速冲击载荷下正确预测EMWM的动态压缩力学特性。

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