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An improvement of the Lagrangian analysis method based on particle velocity profiles

机译:基于粒子速度剖面的拉格朗日分析方法的改进

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In general, techniques used in studies on dynamic behaviour of materials could be classified into two categories, namely the split Hopkinson pressure bar technique (SHPB) and the wave propagation technique (WPT). Lagrangian analysis method is one of the most famous methods in WPT. The traditional Lagrangian analysis based on the particle velocity wave-profiles measurements should consider a boundary condition, because it involves integral operations. However, the boundary stress data in some cases cannot be detected or determined by the experimental measures. To tackle this situation, this paper presents a modified Lagrangian analysis method which does not involve the boundary stress computation. Starting from the path-lines method and utilizing the zero-initial condition, the material constitutive stress-strain curves under high strain-rates is deduced from only observing the particle velocity curve measurements. The dynamic stress/strain wave-profiles of the PMMA material, as a paradigm, are numerically studied using the proposed method, which are well in agreement with the theoretical result using the method of characteristics, which confirms the reliability and validity of the presented method.
机译:通常,用于材料动态行为研究的技术可分为两类,即分裂霍普金森压力棒技术(SHPB)和波传播技术(WPT)。拉格朗日分析方法是WPT中最著名的方法之一。基于粒子速度波剖面测量的传统拉格朗日分析应考虑边界条件,因为它涉及积分运算。但是,在某些情况下,边界应力数据无法通过实验手段检测或确定。针对这种情况,本文提出了一种改进的拉格朗日分析方法,该方法不涉及边界应力计算。从路径法开始,利用零初始条件,仅通过观察粒子速度曲线的测量就可以得出高应变速率下的材料本构应力-应变曲线。使用该方法对PMMA材料的动态应力/应变波分布进行了数值研究,与特征方法的理论结果吻合良好,证实了所提出方法的可靠性和有效性。 。

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