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Effect Of High Strain Rates On Peak Stress In A Zr-based Bulk Metallic Glass

机译:高应变速率对Zr基块状金属玻璃中峰值应力的影响

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The mechanical behavior of Zr_(41.25)Ti_(13.75)Cu_(12.5)Ni_(10)Be_(22.5) (LM-1) has been extensively characterized under quasistatic loading conditions; however, its mechanical behavior under dynamic loading conditions is currently not well understood. A Split-Hopkinson pressure bar (SHPB) and a single-stage gas gun are employed to characterize the mechanical behavior of LM-1 in the strain-rate regime of 10~2 - 10~5/s. The SHPB experiments are conducted with a tapered insert design to mitigate the effects of stress concentrations and preferential failure at the specimen-insert interface. The higher strain-rate plate-impact compression-and-shear experiments are conducted by impacting a thick tungsten carbide (WC) flyer plate with a sandwich sample comprising a thin bulk metallic glass specimen between two thicker WC target plates. Specimens employed in the SHPB experiments failed in the gage-section at a peak stress of approximately 1.8 GPa. Specimens in the high strain-rate plate-impact experiments exhibited a flow stress in shear of approximately 0.9 GPa, regardless of the shear strain-rate. The flow stress under the plate-impact conditions was converted to an equivalent flow stress under uniaxial compression by assuming a von Mises-like material behavior and accounting for the plane strain conditions. The results of these experiments, when compared to the previous work conducted at quasistatic loading rates, indicate that the peak stress of LM-1 is essentially strain rate independent over the strain-rate range up to 10~5/s.
机译:Zr_(41.25)Ti_(13.75)Cu_(12.5)Ni_(10)Be_(22.5)(LM-1)的力学行为已在准静态载荷条件下得到了广泛表征。然而,目前尚不了解在动态负载条件下的机械性能。采用分裂霍普金森压力棒(SHPB)和单级气枪来表征LM-1在10〜2〜10〜5 / s的应变速率下的力学行为。 SHPB实验采用锥形插入物设计进行,以减轻应力集中和样品-插入物界面处的优先破坏的影响。较高的应变率板冲击压缩剪切试验是通过在两个较厚的WC靶板之间用包含薄金属金属玻璃样品的三明治样品冲击厚的碳化钨(WC)飞行器板来进行的。 SHPB实验中使用的样品在应变片上以约1.8 GPa的峰值应力失效。在高应变率平板冲击实验中,无论剪切应变率如何,试样的剪切流变应力均约为0.9 GPa。通过假设类似冯·米塞斯(von Mises)的材料行为并考虑了平面应变条件,将板撞击条件下的流应力转换为单轴压缩时的等效流应力。与先前在准静态加载速率下进行的工作相比,这些实验的结果表明,LM-1的峰值应力在高达10〜5 / s的应变速率范围内基本上与应变速率无关。

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