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首页> 外文期刊>Physical review >Dynamic response of Cu_(46)Zr_(54) metallic glass to high-strain-rate shock loading: Plasticity, spall, and atomic-level structures
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Dynamic response of Cu_(46)Zr_(54) metallic glass to high-strain-rate shock loading: Plasticity, spall, and atomic-level structures

机译:Cu_(46)Zr_(54)金属玻璃对高应变率冲击载荷的动态响应:可塑性,剥落和原子级结构

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摘要

We investigate dynamic response of Cu_(46)Zr_(54) metallic glass under adiabatic planar shock wave loading (one-dimensional strain) with molecular dynamics simulations, including Hugoniot (shock) states, shock-induced plasticity, and spallation. The Hugoniot states are obtained up to 60 GPa along with the von Mises shear flow strengths, and the dynamic spall strengths, at different strain rates and temperatures. The spall strengths likely represent the limiting values achievable in experiments such as laser ablation. For the steady shock states, a clear elastic-plastic transition is identified (e.g., in the shock velocity-particle velocity curve), and the shear strength shows strain softening. However, the elastic-plastic transition across the shock front displays transient stress overshoot (hardening) above the Hugoniot elastic limit followed by a relatively sluggish relaxation to the steady shock state, and the plastic shock front steepens with increasing shock strength. The local von Mises shear strain analysis is used to characterize local deformation, and the Voronoi tessellation analysis, the corresponding local structures at various stages of shock, release, tension and spallation. The plasticity in this glass, manifested as localized shear transformation zones, is of local structure rather than thermal origin, and void nucleation occurs preferentially at the highly shear-deformed regions. The Voronoi and shear strain analyses show that the atoms with different local structures are of different shear resistances that lead to shear localization (e.g., the atoms indexed with (0,0,12,0) are most shear-resistant, and those with (0,2,8,1) are highly prone to shear flow). The dynamic changes in local structures are consistent with the observed deformation dynamics.
机译:我们用绝热平面冲击波载荷(一维应变)研究了Cu_(46)Zr_(54)金属玻璃在分子动力学模拟下的动力学响应,包括Hugoniot(冲击)态,冲击诱导的可塑性和散裂。在不同的应变速率和温度下,高达60 GPa的Hugoniot状态以及von Mises的剪切流强度和动态剥落强度均获得了。剥落强度可能代表在诸如激光烧蚀的实验中可达到的极限值。对于稳态冲击状态,可以识别出清晰的弹塑性过渡(例如,在冲击速度-粒子速度曲线中),并且剪切强度显示出应变软化。但是,整个冲击前沿的弹塑性转变显示出超过Hugoniot弹性极限的瞬态应力超调(硬化),随后相对缓慢地松弛到稳定的冲击状态,塑性冲击前沿随着冲击强度的增加而变陡。局部von Mises剪切应变分析用于表征局部变形,并进行Voronoi细分分析,包括在冲击,释放,拉伸和剥落的各个阶段对应的局部结构。这种玻璃的可塑性表现为局部剪切转变区,具有局部结构而不是热源,并且空核成核优先发生在高度剪切变形的区域。 Voronoi和剪切应变分析表明,具有不同局部结构的原子具有不同的抗剪切力,从而导致剪切局部化(例如,以(0,0,12,0)索引的原子最耐剪切,而具有(( 0,2,8,1)非常容易产生剪切流。局部结构的动态变化与观察到的变形动态一致。

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  • 来源
    《Physical review》 |2010年第14期|144201.1-144201.12|共12页
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    Los Alamos National Laboratory, Los Alamos, New Mexico 87545, USA Department of Chemical Engineering, Texas A&M University, College Station, Texas 77845, USArnLos Alamos National Laboratory, Los Alamos, New Mexico 87545, USA;

    rnLos Alamos National Laboratory, Los Alamos, New Mexico 87545, USA;

    rnDepartment of Chemical Engineering, Texas A&M University, College Station, Texas 77845, USA;

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