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Optimum Specimen Geometry for Accurate Tensile Testing of Superplastic Metallic Materials

机译:最佳试样几何形状,用于超塑性金属材料的精确拉伸测试

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摘要

The high temperatures and large strain limits associated with superplastic materials amplify the possibility of the tensile test outcomes being sensitive to the shape and size of the specimen geometry. In spite of that, the disparities in the specimen geometries used throughout the numerous efforts on characterising this unique class of materials are rather astonishing. There is an urge to evaluate the dependency of a superplastic tensile test on specimen geometry, before a much-needed universally-adopted standard specimen can be designed; which is the main objective of this comprehensive experimental investigation. More than 20 geometries, covering multiple variations in gauge length, gauge width, grip length and grip width values, are tested at identical conditions, and the corresponding material behaviour is compared in terms of deformation uniformity, material flow and the extracted stress/strain curves. The results reveal the influences of each geometrical parameter, as well as their combined effects, and guide the selection of an optimum specimen geometry for accurate and unified tensile testing of superplastic metallic materials.
机译:与超塑性材料相关的高温和大应变极限扩大了拉伸测试结果对样品几何形状和尺寸敏感的可能性。尽管如此,在表征这种独特材料类别的大量努力中,所使用的试样几何形状的差异还是相当惊人的。在设计出急需的普遍采用的标准试样之前,有一种评估超塑性拉伸试验对试样几何形状的依赖性的冲动。这是这项全面实验研究的主要目标。在相同条件下测试了20多种几何形状,涵盖了标距长度,标距宽度,夹具长度和夹具宽度值的多种变化,并在变形均匀性,材料流动和提取的应力/应变曲线方面比较了相应的材料性能。结果揭示了每个几何参数的影响以及它们的综合影响,并指导了最佳试样几何形状的选择,以便对超塑性金属材料进行精确而统一的拉伸测试。

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