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A Mechanical Testing Capability for Measuring the Microscale Deformation Behavior of Structural Materials

机译:测量结构材料微观形变行为的机械测试能力

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High energy x-ray diffraction can be used to probe the crystal scale mechanical response of polycrystalline alloys. Recently there have been several efforts to create new high energy x-ray experiments. These include the lattice Strain Pole Figure (SPF) technique. By measuring lattice strains in thousands of directions, the lattice strain tensor associated with each orientation can be determined. The focus of this paper is on transforming the SPF technique from a one-off style experiment to a measurement capability. Such a standardization process is of the utmost importance for the field of mechanics of materials and shifts the discovery associated with these experiments from the measurements themselves, to what they reveal about the material. We define a new technique for quantifying how effectively a set of lattice strain measurements (SPFs) probes each crystal orientation. The polycrystal sampling matrix, defined Γ *, represents the mapping between the most likely strain tensor for each orientation and the lattice strain results. The orientation space sampling matrix, defined Γ(R), represents the set of lattice strain measurements that interrogate each crystal orientation. The rank of Γ(R) can be used to quantitatively compare different experimental configurations and systematically investigate Γ *. The net result is a new tool for selecting experimental conditions to produce optimal sets of SPF data. Results are shown for different experiment configurations and an example of the SPF technique is provided for the Low Solvus High Refractory (LSHR) nickel base superalloy. In addition, we show that for the face centered cubic LSHR, with lattice strains measured for the {111}, {200}, {220}, and the {311} crystallographic families, there are at most 25 lattice strain measurements that interrogate a single orientation.
机译:高能X射线衍射可用于探测多晶合金的晶体尺度机械响应。最近,人们为建立新的高能X射线实验做出了许多努力。这些包括晶格应变极图(SPF)技术。通过在数千个方向上测量晶格应变,可以确定与每个方向关联的晶格应变张量。本文的重点是将SPF技术从一次性实验转换为测量能力。这样的标准化过程对于材料力学领域至关重要,并将与这些实验相关的发现从测量本身转移到关于材料的发现上。我们定义了一种新技术,用于量化一组晶格应变测量(SPF)如何有效探测每个晶体取向。定义为Γ*的多晶采样矩阵表示每个方向上最可能的应变张量与晶格应变结果之间的映射。定义为Γ(R)的取向空间采样矩阵表示询问每个晶体取向的一组晶格应变测量值。 Γ(R)的等级可用于定量比较不同的实验配置并系统地研究Γ*。最终结果是一种用于选择实验条件以生成最佳SPF数据集的新工具。显示了不同实验配置的结果,并为低溶剂高耐火性(LSHR)镍基高温合金提供了SPF技术的示例。此外,我们表明,对于以面心为中心的立方LSHR,对于{111},{200},{220}和{311}晶体族测得的晶格应变,最多可查询25个晶格应变单一方向。

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