首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >Tuning strain -induced gamma-to-epsilon martensitic transformation of biomedical Co-Cr-Mo alloys by introducing parent phase lattice defects
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Tuning strain -induced gamma-to-epsilon martensitic transformation of biomedical Co-Cr-Mo alloys by introducing parent phase lattice defects

机译:通过引入母相晶格缺陷,调节应变 - 诱导生物医学CO-CR-MO合金的γ-ε-马氏体转化

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摘要

In this study, we examined the effect of pre-existing dislocation structures in a face-centered cubic gamma-phase on strain-induced martensitic transformation (SIMT) to produce a hexagonal close-packed epsilon-phase in a hot-rolled biomedical Co-Cr-Mo alloy. The as-rolled microstructure was characterized by numerous dislocations as well as stacking faults and deformation twins. SIMT occurred just after macroscopic yielding in tensile deformation. Using synchrotron X-ray diffraction line-profile analysis, we successfully captured the nucleation of epsilon-martensite during tensile deformation in terms of structural evolution in the surrounding gamma-matrix: many dislocations that were introduced into the gamma-matrix during the hot-rolling process were consumed to produce e-martensite, together with strong interactions between dislocations in the gamma-matrix. As a result, the SIMT behavior during tensile deformation was accelerated through the consumption of these lattice defects, and the nucleation sites for the SIMT epsilon-phase transformed into intergranular regions upon hot rolling. Consequently, the hot-rolled Co-Cr-Mo alloy simultaneously exhibited an enhanced strain hardening and a high yield strength. The results of this study suggest the possibility of a novel approach for controlling the gamma - epsilon SIMT behavior, and ultimately, the performance of the alloy in service by manipulating the initial dislocation structures.
机译:在这项研究中,我们研究了在应变诱导的马氏体转化(SIMT)上以面为中心的立方γ相中预先存在的脱位结构的影响,以在热轧生物医学共同中生产六边​​形近填充普通相。 Cr-Mo合金。卷起的微观结构的特征在于许多脱位以及堆叠故障和变形双胞胎。在拉伸变形中宏观递送后,刚刚发生。使用同步X射线衍射线型材分析,我们在周围γ-基质的结构演变方面成功地捕获了ε-马氏体的成核:在热轧期间在γ-基质中引入伽马基矩阵的许多脱位消耗过程以产生E-马氏体,以及γ-基质中脱位之间的强相互作用。结果,通过消耗这些晶格缺陷的消耗来加速拉伸变形期间的SIMT行为,以及在热轧时将SIMT epsilon-阶段转换成晶间区域的核心位点。因此,热轧的CO-CR-MO合金同时表现出增强的应变硬化和高屈服强度。本研究的结果表明了一种用于控制伽马的新方法的可能性 - & epsilon simt行为,最终,通过操纵初始错位结构来实现合金的性能。

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