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The Shear Response of Beryllium as a Function of Temperature and Strain Rate

机译:铍作为温度和应变率函数的剪切响应

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A new specimen design has been developed to measure the shear response of materials. This compact forced-simple-shear specimen (CFSS) has been utilized to measure the shear stress/shear strain response of other materials [1, 2]. Earlier, unpublished work on the shear response of beryllium using a split Hopkinson pressure bar (SHPB) with the shear compression specimen (SCS) [3] had limited success at higher strain rates due to compressive deformation in the web leading to tensile failure in the samples. The CFSS geometry was engineered to produce essentially "pure" simple shear, mode II in-plane shear, in a compact-sample geometry that eliminates the multi-mode loading of other sample geometries and produces direct measurements of shear deformation. The use of digital image correlation (DIC) to capture and calculate shear stress and shear strain when paired with this test geometry will be described. There are two competing mechanisms for the deformation in beryllium were observed, a brittle to ductile response due to increased temperature and a transition of the deformation mechanism from dislocation dominated slip to twin deformation as the strain rate is increased. The advantages of this specimen geometry and test results as a function of temperature and strain rate are discussed for high purity beryllium.
机译:一个新的样本设计已经发展到测量材料的剪切响应。这种紧凑的强制简单剪切样品(CFSS)已被用来测量其他材料[1,2]的剪切应力/剪切应变响应。此前,使用霍普金森压杆(SHPB)与剪切压缩试样(SCS)[3]铍的剪切响应未发表的工作在较高的应变速率由于在web压缩变形导致拉伸破坏在了有限的成功样本。所述CFSS几何形状改造以产生本质上是“纯的”简单剪切,模式II面内剪切,在一个紧凑的样品的几何形状,消除了其它样品的几何形状的多模式加载,并产生剪切变形的直接测量。使用数字图像相关(DIC),以捕获并计算剪切应力,并且当与这个试验几何配对剪切应变进行说明。存在用于在铍变形由于增加的温度两种竞争的机制进行了观察,脆性到韧性响应和变形机制的从位错滑移为主到双晶变形随着应变速率增加的过渡。此试样的几何形状和测试结果作为温度和应变速率的函数的优点是高纯度铍讨论。

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