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Acta Metall Sin  1993, Vol. 29 Issue (2): 1-7    DOI:
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MICROSTRUCTURE ON PHASE TRANSFORMATION OF TWO-PHASE TiAl-BASE ALLOYS
HAO Shiming;WU Wentao;HAN Chuanxi Northeast University of Technology; Shenyang; Northwest Institute for Non-ferrous Metal Research; Baoji
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HAO Shiming;WU Wentao;HAN Chuanxi Northeast University of Technology; Shenyang; Northwest Institute for Non-ferrous Metal Research; Baoji. MICROSTRUCTURE ON PHASE TRANSFORMATION OF TWO-PHASE TiAl-BASE ALLOYS. Acta Metall Sin, 1993, 29(2): 1-7.

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Abstract  A supersaturated single phase ordered α_2 structure in as rapidly quenched al-loys both Ti-42at.-%Al and Ti-45at.-%Al, after solid solution treatment, was revealed un-der observation with optical and transmission electron microscope as well as X-raydiffraction analysis. The supersaturated single phase may transform into a lamellar structureof γ+α_2 with a discontinuous decomposition mechanism in Ti-42at.-% Al alloy and with asemicontinuous decomposition mechanism in Ti-45at.-%Al alloy when it aged isothermallyin the two-phase range between 1000 and 1100℃. The semicontinuous transformation in-volves two process: precipitation of primary lamellar γ phase and subsequent formation ofcellular microstructure, in result, the initial even grain boundaries of α_2 become sawtooth.
Key words:  TiAl      dual phase γ+α_2      phase transformation     
Received:  18 February 1993     
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1 Murray J L. Metall Trans, 1988; 19A: 243
2 McCullough C, Valencia J J, Levi C G, Mehrabian R. Acta Metall 1989; 37: 1321
3 Kikuchi M, Yamabe Y. In: Izumi O ed., Proc 6th Japan Institute of Metals International Symposium on Intermetallic Compounde (JIMIS-6) , Sendai, 1991: 815
4 郝士明,赵泉.第3届全国有色金属材料与加工学术会议文集,杭州,1991:281
5 Blackburn M J. In: Jaffee R I, Promisel N E eds., Science, Technology and Application of Titanium, London: Pergamon, 1970: 633
6 Aaronson H I, Aaron H B. Metall Trans, 1972; 3: 2743
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