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The Role of Geometrically Necessary Dislocations in Cantilever Beam Bending Experiments of Single Crystals

机译:几何必要位错在单晶悬臂梁弯曲实验中的作用

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摘要

The mechanical behavior of single crystalline, micro-sized copper is investigated in the context of cantilever beam bending experiments. Particular focus is on the role of geometrically necessary dislocations (GNDs) during bending-dominated load conditions and their impact on the characteristic bending size effect. Three different sample sizes are considered in this work with main variation in thickness. A gradient extended crystal plasticity model is presented and applied in a three-dimensional finite-element (FE) framework considering slip system-based edge and screw components of the dislocation density vector. The underlying mathematical model contains non-standard evolution equations for GNDs, crystal-specific interaction relations, and higher-order boundary conditions. Moreover, two element formulations are examined and compared with respect to size-independent as well as size-dependent bending behavior. The first formulation is based on a linear interpolation of the displacement and the GND density field together with a full integration scheme whereas the second is based on a mixed interpolation scheme. While the GND density fields are treated equivalently, the displacement field is interpolated quadratically in combination with a reduced integration scheme. Computational results indicate that GND storage in small cantilever beams strongly influences the evolution of statistically stored dislocations (SSDs) and, hence, the distribution of the total dislocation density. As a particular example, the mechanical bending behavior in the case of a physically motivated limitation of GND storage is studied. The resulting impact on the mechanical bending response as well as on the predicted size effect is analyzed. Obtained results are discussed and related to experimental findings from the literature.
机译:在悬臂梁弯曲实验的背景下研究了单晶,微尺寸铜的机械性能。特别要注意的是在弯曲为主的负载条件下几何必要位错(GND)的作用及其对特征弯曲尺寸效应的影响。在这项工作中,考虑了三种不同的样本大小,其主要厚度有所不同。提出了一种梯度扩展的晶体可塑性模型,并将其应用于三维滑动有限元框架中,该框架考虑了基于滑移系统的位错密度矢量的边缘和螺钉分量。基本的数学模型包含用于GND,晶体特定的相互作用关系和高阶边界条件的非标准演化方程。此外,检查了两种元素配方,并就尺寸无关以及尺寸依赖的弯曲行为进行了比较。第一个公式基于位移和GND密度场的线性插值以及完全积分方案,而第二个公式则基于混合插值方案。在等效地处理GND密度场的同时,结合简化的积分方案对位移场进行二次插值。计算结果表明,在小悬臂梁中的GND存储强烈影响统计存储的位错(SSD)的演变,从而影响总位错密度的分布。作为一个特定示例,研究了在物理上限制GND存储的情况下的机械弯曲行为。分析了对机械弯曲响应以及预测尺寸影响的最终影响。讨论了获得的结果并与文献中的实验结果相关。

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