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High-strain-rate response of hot-explosively consolidated W-Ti alloys

机译:热爆炸固结钨钛合金的高应变速率响应

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摘要

Disk-shaped, two-phase, full-density W-Ti alloy billets have been fabricated by a new, hot-explosive-compaction technique. As part of a characterization effort, the compressive behavior of the alloy was investigated. Quasistatic and split Hopkinson pressure bar (SHPB) tests of cylindrical samples, taken from a 83W-17Ti at. alloy billet, demonstrate the propensity of this material to fail via shear localization at high strain rates. The effects of strain rate, orientation of the matrix phase with respect to the direction of the SHPB compression, and spatial location within the billet( i.e., periphery or core) were evaluated. At quasistatic strain rates, the alloy deformed in a ductile mode and exhibited a definite spatial location sensitivity. At high strain rates, spatial location sensitivity was absent. Shear localization was unaffected by density variations, matrix orientation in the alloy, or the presence of coarsened substructural features in the matrix. These experiments and the microstructural characteristics of the resultant localized regions are discussed.
机译:盘状两相全密度W-Ti合金坯料是通过一种新型的热爆炸压制技术制成的。作为表征工作的一部分,研究了合金的压缩行为。圆柱形样品的准静态和分裂霍普金森压力棒(SHPB)测试,取自83W-17Ti。合金坯料证明了这种材料在高应变率下会通过剪切定位而失效的可能性。评估了应变速率,基体相相对于SHPB压缩方向的取向以及坯料内的空间位置(即外围或芯部)的影响。在准静态应变率下,合金以延性模式变形并表现出确定的空间位置敏感性。在高应变率下,缺乏空间位置敏感性。剪切局部不受密度变化,合金中基体取向或基体中存在粗糙的亚结构特征的影响。讨论了这些实验和所得局部区域的微观结构特征。

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