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研究挤压态镁合金沿挤压方向预压缩对随后沿ED方向拉伸以及垂直于ED方向压缩屈服行为的影响。结果表明:在所研究的1%~9%压缩预变形范围内,不同预变形量对随后沿ED方向拉伸的屈服影响几乎一样,都能使沿挤压方向拉伸屈服强度下降到约120 MPa,这几乎与沿挤压方向压缩屈服强度122 MPa一致;沿ED方向预压缩将导致垂直于ED方向压缩屈服强度显著增加,且不同预变形量对随后沿垂直于ED方向压缩的屈服行为影响几乎一致。造成不同施载方向屈服行为不一样的原因是不同施载方向孪生变体的最大施密特因子值不同。最大施密特因子值越大,孪生启动时的临界剪切应力越小,屈服强度也就越低。

The effects of compressive pre-deformation on subsequent tension along extrusion direction (ED) and compression perpendicular to ED were investigated in an extruded AZ31 Mg alloy. The results show that the subsequent tensile yield stress decreases to about 120 MPa irrespective of the prestrain from 1%to 9%. The tensile yield stresses of about 120 MPa for the samples subjected to pre-compression are nearly equal to that of compression along ED (about 122 MPa) for the sample without any prestrain. However, the pre-compression along ED leads to an obvious increase in the yield stress for subsequent compression perpendicular to ED. Different prestrains exhibit similar effects on the yielding behavior during subsequent compression perpendicular to ED. Because of the difference in the highest Schmid factors for{10 1 2} twinning, the samples exhibit different yielding behaviors under different strain paths. The critical resolved shear stress (CRSS) decreases with the increase of the highest Schmid factor for {10 1 2} twinning.

参考文献

[1] Xin Wang;Lianxi Hu;Kai Liu.Grain growth kinetics of bulk AZ31 magnesium alloy by hot pressing[J].Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics,2012:193-196.
[2] J. F. Nie;Y. M. Zhu;J. Z. Liu;X. Y. Fang .Periodic Segregation of Solute Atoms in Fully Coherent Twin Boundaries[J].Science,2013(TN.6135):957-960.
[3] JIAN Wei-wei .Ultrastrong Mg-alloy via nano-spaced stacking faults[J].Materials Research Letter,2013,1(02):61-66.
[4] 袁新建,盛光敏,罗军,李佳.纯铜作中间层的镁合金与不锈钢扩散-钎焊接头区的微观结构特征[J].中国有色金属学报(英文版),2013(03):599-604.
[5] 余琨,黎文献,王日初,马正青.变形镁合金的研究、开发及应用[J].中国有色金属学报,2003(02):277-288.
[6] 丁雪征,刘天模,陈建,张瑜,卢立伟.孪晶界对AZ31镁合金静态再结晶的影响[J].中国有色金属学报,2013(01):1-8.
[7] LI X;YANG P;WANG L N;MENG L CUI F .Orientational analysis of static recrystallization at compression twins in a magnesium alloy AZ31[J].MATERIALS SCIENCE & ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING,2009,517:160-169.
[8] 张丁非,张红菊,兰伟,马春华.高强镁合金的研究进展[J].材料热处理学报,2012(06):1-8.
[9] 陈振华,刘俊伟,陈鼎,严红革.镁合金超塑性的变形机理﹑研究现状及发展趋势[J].中国有色金属学报,2008(02):193-202.
[10] 余琨,黎文献,王日初.镁合金塑性变形机制[J].中国有色金属学报,2005(07):1081-1086.
[11] 唐伟琴,张少睿,范晓慧,李大永,彭颖红.AZ31镁合金的织构对其力学性能的影响[J].中国有色金属学报,2010(03):371-377.
[12] Shahzad, M;Wagner, L .Influence of extrusion parameters on microstructure and texture developments, and their effects on mechanical properties of the magnesium alloy AZ80[J].Materials Science and Engineering. A, Structural Materials: Properties, Microstructure and Processing,2009(1/2):141-147.
[13] 刘筱,娄燕,李落星,朱必武,何凤亿.AZ31镁合金热压缩过程中晶粒取向和织构的演变[J].中国有色金属学报,2012(08):2141-2147.
[14] 路君,靳丽,董杰,曾小勤,丁文江,姚真裔.等通道角挤压变形AZ31镁合金的变形行为[J].中国有色金属学报,2009(03):424-432.
[15] 刘天模,刘世宇,彭天成,刘建忠,刘宇,潘复生.AZ31镁合金变通道角挤压工艺[J].材料热处理学报,2009(05):64-67,73.
[16] A.A. Luo;R.K. Mishra;A.K. Sachdev .High-ductility magnesium-zinc-cerium extrusion alloys[J].Scripta materialia,2011(5):410-413.
[17] Seong-Gu Hong;Sung Hyuk Park;Chong Soo Lee .Role of {10–12} twinning characteristics in the deformation behavior of a polycrystalline magnesium alloy[J].Acta materialia,2010(18):5873-5885.
[18] Y.N. Wang;J.C. Huang .The role of twinning and untwinning in yielding behavior in hot-extruded Mg-Al-Zn alloy[J].Acta materialia,2007(3):897-905.
[19] Barnett MR .Twinning and the ductility of magnesium alloys Part I: "Tension" twins[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2007(1-2):1-7.
[20] He, J.;Liu, T.;Xu, S.;Zhang, Y..The effects of compressive pre-deformation on yield asymmetry in hot-extruded Mg-3Al-1Zn alloy[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2013:1-8.
[21] Wang, H.;Wu, P.D.;Wang, J.;Tomé, C.N..A crystal plasticity model for hexagonal close packed (HCP) crystals including twinning and de-twinning mechanisms[J].International Journal of Plasticity,2013:36-52.
[22] 陈振华.镁合金[M].北京:化学工业出版社,2004:224-253.
[23] 刘庆.镁合金塑性变形机理研究进展[J].金属学报,2010(11):1458-1472.
[24] Haitham El Kadiri;J. Kapil;A.L. Oppedal .The effect of twin-twin interactions on the nucleation and propagation of {1012} twinning in magnesium[J].Acta materialia,2013(10):3549-3563.
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