MICROSTRUCTURE DEVELOPMENT IN UNDERCOOLED AL-BE POWDERS

被引:16
作者
MUELLER, BA
TANNER, LE
PEREPEZKO, JH
机构
[1] UNIV CALIF LAWRENCE LIVERMORE NATL LAB,LIVERMORE,CA 94550
[2] UNIV WISCONSIN,DEPT MAT SCI & ENGN,MADISON,WI 53706
来源
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING | 1992年 / 150卷 / 01期
关键词
D O I
10.1016/0921-5093(90)90015-U
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
The development of solidification microstructure in aluminum-rich Al-Be alloy powders was studied as a function of melt undercooling, cooling rate. powder size and beryllium content. Auger electron spectroscopy indicates that BeO partially displaces Al2O3 from the powder surface. The BeO-Al2O3 coating reduces the attainable undercooling at beryllium contents above about 4 at.% Be. Powders containing Al-9at.%Be when cooled at 0.5-degrees-C s-1 contain facetted primary beryllium and a cellular aluminum matrix. Increasing the cooling rate to 25-degrees-C s-1 reduces the extent of facetting of the primary beryllium phase, and at a cooling rate of 500-degrees-C s-1 multiple primary beryllium dendrites are observed. In Al-4at.%Be powders cooled at 500-degrees-C s-1, primary beryllium formation is avoided and solidification commences with a cellular aluminum and intercellular beryllium structure. The aluminum cells evolve to a dendritic network during recalescence. Following recalescence the dendritic aluminum and interdendritic beryllium structure is replaced by a coupled eutectic morphology which completes solidification. The microstructure development is analyzed in terms of the solidification pathways possible based on a skewed coupled eutectic growth zone and composite stable-metastable phase diagrams including a metastable liquid miscibility gap.
引用
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页码:123 / 132
页数:10
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