THERMAL-STABILITY AND GRAIN-GROWTH BEHAVIOR OF MECHANICALLY ALLOYED NANOCRYSTALLINE FE-CU ALLOYS

被引:234
作者
ECKERT, J
HOLZER, JC
JOHNSON, WL
机构
[1] California Institute of Technology, W. M. Keck Laboratory of Engineering Materials 138-78, Pasadena
关键词
D O I
10.1063/1.353890
中图分类号
O59 [应用物理学];
学科分类号
摘要
X-ray diffraction, transmission electron microscopy, and differential scanning calorimetry were used to study the thermal stability of highly supersaturated nanocrystalline FexCu100-x alloys (10 less-than-or-equal-to x less-than-or-equal-to 95) synthesized by mechanical alloying. Alloys with x < 60 exhibit single-phase fcc structure while single-phase bcc alloys form for x > 80. For 60 less-than-or-equal-to x less-than-or-equal-to 80 fcc and bcc phases coexist. Heating to elevated temperatures leads to structural relaxation, phase separation, and grain growth of the metastable nanocrystalline solid solutions. Single-phase fcc and bcc alloys undergo significant strain release but no appreciable grain growth prior to phase separation. After phase separation pronounced grain growth sets in. In contrast, samples in the two-phase region show some grain growth and significant chemical redistribution even at low temperatures. The phase separation of single-phase fcc and bcc alloys proceeds via different mechanisms: fcc solid solutions decompose by forming small Fe precipitates, while demixing in bcc alloys starts by segregation of Cu atoms to bcc grain boundaries before nucleation of Cu precipitates. These results show that the stability and grain growth behavior of nanocrystalline alloys is strongly affected by the microstructure of the material.
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页码:131 / 141
页数:11
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