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Fatigue-Crack Propagation in Gamma-Based Titanium Aluminide Alloys at Large and Small Crack Sizes

机译:大和小裂纹尺寸的γ-基铝化钛合金的疲劳裂纹扩展

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摘要

Most evaluations of the fracture and fatigue-crack propagation properties of γ + α_2 titanium aluminide alloys to date have been performed using standard "large-crack" samples, e.g., compact-tension specimens containing crack sizes which are on the order of tens of millimeters, i.e., large compared to microstructural dimensions. However, these alloys have been targeted for applications, such as blades in gas-turbine engines, where relevant crack sizes are much smaller (<500 μm) and where the small-crack fatigue threshold may be the most relevant design parameter. In this study, we compare and contrast the cyclic crack-growth behavior of both large (a > 5 mm) and small (c~ 25-300 μm) cracks in a γ-TiAl based alloy, of composition Ti-47Al-2Nb-2Cr-0.2B (at.%), specifically for duplex (average grain size ~17 μm) and refined lamellar (average colony size ~150 μm) microstruc-tures. It is found that, whereas the lamellar microstructure displays far superior fracture toughness and fatigue-crack growth resistance in the presence of large cracks, in small-crack testing the duplex microstructure exhibits a better combination of properties. The reasons for such contrasting behavior are examined in terms of the intrinsic and extrinsic (i.e., crack bridging) contributions to cyclic crack advance.
机译:迄今为止,大多数对γ+α_2铝化钛合金的断裂和疲劳裂纹扩展性能的评估都是使用标准的“大裂纹”样品进行的,例如,压缩强度样品的裂纹尺寸约为几十毫米。即,与微结构尺寸相比较大。然而,这些合金已针对应用,例如燃气涡轮发动机的叶片,其中相关的裂纹尺寸要小得多(<500μm),而小裂纹疲劳阈值可能是最相关的设计参数。在这项研究中,我们比较并对比了成分为Ti-47Al-2Nb-的γ-TiAl基合金中大(a> 5 mm)和小(c〜25-300μm)裂纹的周期性裂纹扩展行为。 2Cr-0.2B(at。%),特别适用于双相(平均晶粒尺寸〜17μm)和精制层状(平均菌落尺寸〜150μm)的组织。已发现,尽管层状微结构在存在大裂纹的情况下显示出极佳的断裂韧性和抗疲劳裂纹扩展性,但在小裂纹测试中,双相组织表现出更好的性能组合。从循环裂纹扩展的内在和外在(即,裂纹桥接)方面来研究这种对比行为的原因。

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  • 会议地点 Boston MA(US)
  • 作者单位

    Materials Sciences Division, Lawrence Berkeley National Laboratory, and Department of Materials Science and Mineral Engineering, University of California, Berkeley, CA 94720-1760;

    Materials Sciences Division, Lawrence Berkeley National Laboratory, and Department of Materials Science and Mineral Engineering, University of California, Berkeley, CA 94720-1760;

    Materials Sciences Division, Lawrence Berkeley National Laboratory, and Department of Materials Science and Mineral Engineering, University of California, Berkeley, CA 94720-1760;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 金属材料 ;
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