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A methodology to determine the elastic moduli of crystals by matching experimental and simulated lattice strain pole figures using discrete harmonics

机译:一种通过使用离散谐波匹配实验和模拟晶格应变极图来确定晶体弹性模量的方法

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摘要

Determining reliable single crystal material parameters for complex polycrystalline materials is a significant challenge for the materials community. In this work, a novel methodology for determining those parameters is outlined and successfully applied to the titanium alloy, Ti-6Al-4V. Utilizing the results from a lattice strain pole figure experiment conducted at the Cornell High Energy Synchrotron Source, an iterative approach is used to optimize the single crystal elastic moduli by comparing experimental and simulated lattice strain pole figures at discrete load steps during a uniaxial tensile test. Due to the large number of unique measurements taken during the experiments, comparisons were made by using the discrete spherical harmonic modes of both the experimental and simulated lattice strain pole figures, allowing the complete pole figures to be used to determine the single crystal elastic moduli.
机译:为复杂的多晶材料确定可靠的单晶材料参数是材料界的重大挑战。在这项工作中,概述了确定这些参数的新颖方法,并将其成功地应用于钛合金Ti-6Al-4V。利用在康奈尔高能同步加速器源处进行的晶格应变极图实验的结果,通过在单轴拉伸试验中比较离散负载下的实验和模拟晶格应变极图,采用迭代方法来优化单晶弹性模量。由于在实验过程中进行了大量独特的测量,因此使用实验晶格应变极坐标图和模拟晶格应变极坐标图的离散球谐模态进行了比较,从而可以使用完整的极坐标图确定单晶弹性模量。

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