利用热机械模拟方法详细研究了一种挤压Mg-7.8Li-4.6Zn-0.96Ce-0.85Y-0.30Zr合金的流变行为,温度范围为250~450℃,应变速率在0.001~10 s-1之间.结果表明,该合金的流变应力-应变曲线表现为流变应力先逐渐增加到一个最大值,而后软化.这种流变行为表明在典型的热加工过程中伴随着动态再结晶.该合金的流变应力曲线可以用整个变形温度范围内的双曲正弦函数来拟合.幂指数方程和指数方程并不能很好地拟合应力曲线.双曲正弦方程中的应力指数n很高,而且随着变形温度的增高而逐渐增加.合金的热变形过程主要被位错的攀移所控制.合金的平均热变形激活能Q为148 kJ/mol,高于Mg的自扩散激活能(135 kJ/mol)和点阵扩散激活能(103 kJ/mol).以上讨论的结果可以归因于合金中稀土元素的加入.
参考文献
[1] | Haferkamp H.;Niemeyer M. .Development, Processing and Applications Range of Magnesium Lithium Alloys[J].Materials Science Forum,2000(0):31-42. |
[2] | Crawford P;Barrosa R;Mendez J et al.[J].Journal of Materials Processing Technology,1996,56:108. |
[3] | Watanabe H;Tsutsui H;Mukai T et al.[J].International Journal of Plasticity,2006,17:387. |
[4] | Yu Huashun;Min Guanghui .[J].Rare Metal Materials and Engineering,1996,25(02):l. |
[5] | Ma Chunjiang;Zhang Di;Zhang Guoding et al.[J].Aerospace Materials & Technology,1998,2:27. |
[6] | Chang T C;Wang J Y;Chu C L et al.[J].Materials Letters,2006,60:3272. |
[7] | McQueen H J .[J].Journal of Materials Processing Technology,1993,37:3. |
[8] | Mwembela A;Konopleva E B;Mcqueen H J et al.[J].Scripta Materialia,1997,37:1789. |
[9] | Sakai T;Jonas J J .[J].Acta Metallurgy,1984,32:189. |
[10] | Somani M C;Birla N C;Prasad Y V R K et al.[J].Journal of Materials Processing Technology,1995,52:225. |
[11] | Srinivasan N;Prasad Y V R K .[J].Journal of Materials Processing Technology,1995,51:171. |
[12] | Rao K P;Prasada Y V R K;Hortb N et al.[J].Journal of Materials Processing Technology,2008,201:359. |
[13] | Prasad Y V R K;Rao K P .[J].Materials Science and Engineering A,2008,487:316. |
[14] | Ishikawa K;Watanabe H;Mukai T et al.[J].Materials Letters,2005,59:1511. |
[15] | Kima W J;Kima M J;Wang J Y et al.[J].Material Science EngineeringA,2009,516:17. |
[16] | Feng Duan.Physics of Metals.3rd ed.Mechanical Properties of Metals[M].北京:科学出版社,1999 |
[17] | Sivakesavam O.;Prasad YVRK. .Characteristics of superplasticity domain in the processing map for hot working of as-cast Mg-11.5Li-1.5Al alloy[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2002(1/2):270-277. |
[18] | Wei X W;Zu X T;Zhou W L et al.[J].Journal of Materials Science and Technology,2006,22(06):730. |
[19] | Wei X W;Huang Q M et al.[J].Transaction of Nonferrous Metal Society China,2006,16(03):432. |
[20] | Yu K;Li W X;Zhao J et al.[J].Scripta Materialia,2003,48:1319. |
[21] | Wang Y;Zhang Y;Zeng X et al.[J].Materials Science and Engineering A,2006,41:3603. |
[22] | Yang Z;Guo YC;Li JP;He F;Xia F;Liang MX .Plastic deformation and dynamic recrystallization behaviors of Mg-5Gd-4Y-0.5Zn-0.5Zr alloy[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2008(1/2):487-491. |
[23] | Poirier J P;Guan Delin.Plastic Deformation of Crystalline at High Temperature[M].大连:大连理工大学出版社,1989:56. |
[24] | Ren W L;Guo J T;Zhou J Y et al.[J].Acta Metallurgy,2002,38:908. |
[25] | Kima W J;Kima M J;Wang J Y et al.[J].Materials Science and Engineering A,2009,516:17. |
[26] | Mcqueen H J;Myshlyaev M M;Mwembela A .[J].Canadian Metallurgical Quarterly,2003,42:97. |
[27] | Sivakesavam S;Prasad Y V R K .[J].Materials Science and Engineering A,2002,323:270. |
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