Changes in precipitate distribution during the low-stress creep of a hydrided magnesium-zirconium alloy

K. McNee, G. W. Greenwood, H. Jones
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引用次数: 10

Abstract

Abstract Microstructural changes occurring in hydrided Mg-Zr alloy (ZR55) during creep in the stress range 1.7–9.5 MPa at temperatures between 673 and 733 K have been critically examined by optical microscopy and by scanning electron microscopy. Particular attention has been given to the distribution of precipitates with respect to the grain boundaries to elucidate the operative mechanism of deformation. Geometrical features of the formation of precipitate-denuded zones and of the concurrent accumulation of precipitates have been explored in relation to the conditions of creep and the direction of tensile stress. Additional information has been obtained from microanalysis within the grains and near grain boundaries. Clear evidence is provided that, at the lower stress levels, all such microstructural changes are consistent with those expected from a deformation mechanism controlled by diffusional flow. The measured strain rates, however, exceeded those estimated from diffusional creep theory in this alloy and the microstructural observations provide some indication of reasons for this discrepancy.
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氢化镁锆合金低应力蠕变过程中析出相分布的变化
摘要:采用光学显微镜和扫描电镜研究了在673 ~ 733 K温度下,在1.7 ~ 9.5 MPa应力范围内蠕变过程中,氢化Mg-Zr合金(ZR55)的显微组织变化。特别注意的是相对于晶界的沉淀分布,以阐明变形的作用机制。根据蠕变条件和拉应力方向,探讨了析出剥蚀带形成和析出相同时堆积的几何特征。从晶粒内部和晶界附近的微量分析中获得了额外的信息。明确的证据表明,在较低的应力水平下,所有这些微观结构变化都与由扩散流动控制的变形机制所期望的一致。然而,该合金的测量应变率超出了扩散蠕变理论的估计,显微组织观察提供了这种差异的一些原因。
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