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High impact resistance of a TWIP beta titanium alloy: linking the multi-scale deformation and fracture mechanisms

机译:双β钛合金的高抗冲击性:连接多尺度变形和断裂机制

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摘要

Titanium alloys with twinning- and transformation-induced plasticity effects display promising mechanical properties, particularly, high impact toughness, unlike conventional titanium alloys. This work focuses on a highly strain-hardenable Ti-Cr-Sn alloy displaying both TRIP and TWIP effects upon quasi-static loading and an average impact toughness of 193 J/cm(2), which represents nearly three times the measured value for commercial titanium alloys. To account for this extremely high impact toughness, fracture and deformation features were quantified at different scales using scanning electron microscopy and transmission electron microscopy, particularly a Precession-Assisted Crystal Orientation Mapping system. Examinations evidenced the major role of twins in the fracture process, even on a sub-micrometre scale. The high impact resistance and absorbed energy of this alloy are explained by the positive contribution of dynamical refinement of the beta grains with sub-twinning structures, whereas severe stress concentration may eventually contribute to ductile fracture, at least locally.
机译:与传统钛合金不同,具有孪晶和相变诱发塑性效应的钛合金具有良好的力学性能,尤其是高冲击韧性。这项工作的重点是一种高度应变硬化的Ti-Cr-Sn合金,在准静态载荷下显示TRIP和TWIP效应,其平均冲击韧性为193 J/cm(2),几乎是商用钛合金测量值的三倍。为了解释这种极高的冲击韧性,使用扫描电子显微镜和透射电子显微镜,特别是进动辅助晶体取向映射系统,在不同的尺度上量化了断裂和变形特征。检查证明了双胞胎在骨折过程中的主要作用,即使是在亚微米的范围内。这种合金的高抗冲击性和吸收能量是由具有亚孪晶结构的β晶粒的动态细化的积极贡献来解释的,而严重的应力集中最终可能导致韧性断裂,至少是局部断裂。

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  • 来源
    《Journal of Materials Science》 |2021年第8期|共14页
  • 作者单位

    PSL Univ Mines ParisTech Ctr Mat UMR CNRS 7633 BP 87 F-91003 Evry France;

    PSL Univ Chim ParisTech Inst Rech Chim Paris UMR CNRS 8247 IRCP 11 Rue Curie F-75005 Paris France;

    PSL Univ Chim ParisTech Inst Rech Chim Paris UMR CNRS 8247 IRCP 11 Rue Curie F-75005 Paris France;

    Univ Paris Est UMR 7182 CNRS UPEC UPE ICMPE F-94320 Thiais France;

    PSL Univ Mines ParisTech Ctr Mat UMR CNRS 7633 BP 87 F-91003 Evry France;

    PSL Univ Mines ParisTech Ctr Mat UMR CNRS 7633 BP 87 F-91003 Evry France;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
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