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Stress concentrations at grain boundaries due to anisotropic elastic material behavior

机译:各向异性弹性材料行为导致的晶界应力集中

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Scanning electron microscopy (SEM) examinations on samples of the beta-titanium alloy LCB (low cost beta by TIMET) after fatigue tests revealed a strong influence of the crystallographic misorientation of adjacent grains on crack initation and short crack growth. From that point of view the knowledge of the anisotropic elastic properties of individua;p grains and their influence on the stress distribution within the microstructure is of great importance to understand crack initiation and propagation mechanisms. For this purpose the microstructure of polycrystals at sites where cracks initiated was simulated by means of three dimensional finite element (FE) claulations, considering the elastic anisotropy of the grains. However, to ensure a realistic simulation, epxerimental data like the grain geometry and crystallographic orientation were used, which had been measured by the electron back-scattered diffraction (EBSD) technique. Beside this, the values of the elastic constants of the single-crystalline material were required.
机译:疲劳测试后,对β-钛合金LCB(TIMET的低成本β)样品进行了扫描电子显微镜(SEM)检查,结果显示相邻晶粒的结晶学取向错误对裂纹萌生和短裂纹扩展有很大影响。从这个角度来看,了解单个p晶粒的各向异性弹性特性及其对显微组织内应力分布的影响,对于理解裂纹的萌生和扩展机理至关重要。为此,考虑到晶粒的弹性各向异性,通过三维有限元(FE)熔断模拟了裂纹产生部位的多晶组织。但是,为了确保进行逼真的模拟,使用了诸如晶粒几何形状和晶体学取向等元素数据,这些数据是通过电子背散射衍射(EBSD)技术进行测量的。除此之外,还需要单晶材料的弹性常数值。

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