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材料研究学报  2014, Vol. 28 Issue (9): 649-655    DOI: 10.11901/1005.3093.2014.165
  本期目录 | 过刊浏览 |
微量Sr和Mn对Mg-8Li-3Al变形合金力学性能的影响*
许天才1,彭晓东1,2(),张宝1,魏国兵1,陈元芳1,3,姜军伟1
1. 重庆大学材料科学与工程学院 重庆 400045
2. 重庆大学国家镁合金材料工程技术研究中心 重庆 400044
3. 重庆理工大学材料科学与工程学院 重庆 400054
Effects of Minor Addition of Sr and Mn on Mechanical Properties of Micro-alloying Mg-8Li-3Al Wrought Alloy
Tiancai XU1,Xiaodong PENG1,2,**(),Bao ZHANG1,Guobing WEI1,Yuanfang CHEN1,3,Junwei JIANG1
1. College of Materials Science and Engineering, Chongqing University, Chongqing 400045
2. Engineering Research Center for Mg Alloys, Chongqing University, Chongqing 400044
3. College of Materials Science and Engineering, Chongqing University of Technology, Chongqing 400054
引用本文:

许天才,彭晓东,张宝,魏国兵,陈元芳,姜军伟. 微量Sr和Mn对Mg-8Li-3Al变形合金力学性能的影响*[J]. 材料研究学报, 2014, 28(9): 649-655.
Tiancai XU, Xiaodong PENG, Bao ZHANG, Guobing WEI, Yuanfang CHEN, Junwei JIANG. Effects of Minor Addition of Sr and Mn on Mechanical Properties of Micro-alloying Mg-8Li-3Al Wrought Alloy[J]. Chinese Journal of Materials Research, 2014, 28(9): 649-655.

全文: PDF(8154 KB)   HTML
摘要: 

用光学显微镜(OM)、扫描电子显微镜(SEM)、X射线衍射仪(XRD)和电子万能试验机对比研究了微量添加Sr和Mn对Mg-8Li-3Al合金组织和力学性能的影响, 结果表明: 基础合金Mg-8Li-3Al主要由α-Mg, β-Li和Al12Mg17金属间化合物组成, Sr和Mn的加入使合金中形成了Al4Sr和Al2Mn3等金属间化合物。合金元素Sr和Mn对合金组织均有细化效果, Sr的细化效果优于Mn。添加Sr和Mn后合金的强度均有所提高, 其中挤压态Mg-8Li-3Al-0.5Sr-0.5Mn合金的σb = 242.15 MPa, σ0.2 = 206.96 MPa, δ = 22.43%, 比Mg-8Li-3Al镁合金的力学性能分别提高了14.98%, 28.11%和8.31%。

关键词 金属材料镁锂合金Sr和Mn微观组织力学性能    
Abstract

The effect of minor addition of Sr and/or Mn on the microstructure and mechanical properties of the wrought Mg-8Li-3Al alloy were investigated by means of optical microscopy, scanning electron microscopy, X-ray diffraction studies, and tensile tests to reveal the variations in microstructures and mechanical behavior during processing. The results show that the alloy of Mg-8Li-3Al mainly consists of α-Mg, β-Li phases and Al12Mg17 intermetallic compound. Sr and Mn addition results in the precipitation of Al4Sr and Al2Mn3. The microstructure of the alloy is refined with the addition of Sr and Mn, respectively. Moreover, the refining effect of Sr is better than Mn at the same mass fraction addition. The tensile strength of the alloys is improved with the addition of Sr and Mn. The tensile strength, yield stress and elongation of Mg-8Li-3Al-0.5Sr-0.5Mn alloy after extrusion are 242.15 MPa, 206.96 MPa and 22.43%, which are increased by 14.98%, 28.11% and 8.31% respectively in comparison with the those of the bare Mg-8Li-3Al alloy.

Key wordsmetallic material    Mg-Li alloy    Sr and Mn    microstructure    mechanical properties
收稿日期: 2014-04-03     
基金资助:* 国家重点研究发展计划项目2007CB613702, 重庆市自然科学基金项目2008BB4323, 科技部国际合作项目2010DFR50010资助。
图1  铸态合金的金相组织
Alloy Li Al Sr Mn Mg
As-cast LA83 7.98 3.08
LA83-0.5Sr 8.11 3.15 0.67
LA83-0.5Mn 8.20 3.27 0.51
LA83-0.5Sr-0.5Mn 8.36 3.19 0.53 0.49 Bal.
实验合金的化学成分(质量分数, %)  实验合金的化学成分(质量分数, %)
图2  铸态合金的XRD图谱
图3  铸态合金的SEM像和EDS能谱图
Position Mg Al Sr Mn
A 69.87 30.13 - -
B 77.33 15.03 6.64 -
C 19.39 30.20 - 50.41
D 70.49 20.35 9.16 -
E 75.57 18.89 5.54 -
F 62.90 15.62 - 21.48
表2  图3中合金试样 EDS 微区成分(摩尔分数, %)
图4  挤压态合金金相组织
图5  挤压态合金的室温应力应变曲线
图6  挤压态合金拉伸断口的SEM像
Al4Sr (112)// α-Mg (10-10) Al4Sr (112)// α-Mg (0002) Al4Sr (200)// α-Mg (10-11) Al4Sr (213)// α-Mg (10-12) Al4Sr (213)// β-Li (200) Al2Mn3 (310)// α-Mg (10-12) Al2Mn3 (321)// α-Mg (10-12) Al2Mn3 (321)// β-Li (200)
1.38% 5.19% 9.05% 7.66% 0.19% 6.70% 0.46% 2.48
表3  基体与金属间化合物潜在匹配位面的错配度值
1 ZHENG Xiaofang,PENG Xiaodong, XIE Weidong, SU Zhonghua, LI Wenjuan, Research and application status of lithium and its alloys, Ordnance Material Science and Engineering, 34(4), 94(2011)
1 郑笑芳, 彭晓东, 谢卫东, 苏中华, 李文娟, 锂及其含锂合金的研究与应用现状, 兵器材料科学与工程, 34(4), 94(2011)
2 Hyeon-Taek Son,Yong-Ho Kim, Dae-Won Kim, Jung-Han Kim, Hyo-Sang Yu, Effects of Li addition on the microstructure and mechanical properties of Mg-3Zn-1Sn-0.4Mn based alloys, Journal of Alloys and Compounds, 564, 130(2013)
3 Z. Moser, W. Zakulski, G. Schwitzgebel,Thermodynamic studies and the phase diagram of the Li-Mg system, Metallurgical and Materials Transactions A, 30(9), 1120(1996)
4 M. Karami, R. Mahmudi, Shear punch superplasticity in equal-channel angularly pressed Mg-12Li-1Zn alloy, Materials Science & Engineering A, 576, 156(2013)
5 Alireza Sadeghi,Scott Shookb, Mihriban Pekguleryuz, Yield asymmetry and fracture behavior of Mg-3%Al-1%Zn-(0-1)%Sr alloys extruded at elevated temperatures, Materials Science and Engineering A, 528, 7529(2011)
6 L. Shanga, I. H. Jung, S. Yue, R. Verm, E. Essadiqi,An investigation of formation of second phases in microalloyed, AZ31 Mg alloys with Ca, Sr and Ce, Journal of Alloys and Compounds, 492, 173(2010)
7 T. Liu, S. D. Wu, S. X. Li, P. J. Li, Microstructure evolution of Mg-14%Li-1%Al alloy during the process of equal channel angular pressing, Materials Science and Engineering A, 460, 499(2007)
8 LI Junchen,PENG Xiaodong, LIU Junwei, YANG Yan, ZENG Li, Deformation behavior of alloy Mg-9Li-3Al-2.5Sr at elevated temperature, Chinese Journal of Materials Research, 26(3), 309(2012)
8 李俊辰, 彭晓东, 刘军威, 杨 艳, 曾 利,Mg-9Li-3Al-2.5Sr合金的热变形行为, 材料研究学报, 26(3), 309(2012)
9 Y. C. Lee, A. K. Dahle, D. H. Stjohn,The Role of solute in grain refinement of magnesium, Metallurgical and Materials Transactions A, 31A, 2895(2000)
10 Y. Yang, X. D. Peng, H. M. Wen, B. L. Zheng, Y. Z. Zhou, W. D. Xie, Enrique J. Lavernia,In?uence of extrusion on the microstructure and mechanical behavior of Mg-9Li-3Al-xSr alloys, Metallurgical and Materials Transactions A, 44A(2), 1101(2013)
11 H. M. Fu, D. Qiu, M. X. Zhang, H. Wang, P. M. Kelly, J. A. Taylor,The development of a new grain refiner for magnesium alloys using the edge-to-edge model, Journal of Alloys and Compounds, 45(1-2), 390(2008)
12 B. Jiang, D. Qiu, M. X. Zhang, P. D. Ding, L. Gao,A new approach to grain refinement of an Mg-Li-Al cast alloy, Journal of Alloys and Compounds, 492(1-2), 95(2010)
13 CAO Ye,ZHONG Ning, WANG Xiao-dong, HUANG Bao-xu, RONG Yong-hua, An Edge-to-Edge Matching Model and Its Application to the HCP/FCC System, Journal of Shanghai Jiaotong Universit, 41(4), 586(2007)
13 曹 晔, 钟 宁, 王晓东, 黄宝旭, 戎咏华, 边2边匹配晶体学模型及其应用--HCP/FCC体系晶体学位向关系的预测, 上海交通大学学报, 41(4), 586(2007)
14 N. J. Petch, J. Iron,The cleavage strength of polycrystals, Steel Institute, 174, 25(1953)
15 W. J. Kim, I. K. Moon, S. H. Han,Ultrafine-grained Mg-Zn-Zr alloy with high strength and high-strain-rate superplasticity, Mater. Sci. Eng. A, 538, 374(2012)
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