网站首页期刊简介编委会过刊目录投稿指南广告合作征订与发行联系我们English
温度及搅拌摩擦加工对AZ31镁合金力学性能的影响
英文标题:Influence of temperature and friction stir processing on mechanical properties of magnesium alloy AZ31
作者:杨晓敏  李明珠  董锋  刘守法 
单位:永城职业学院 西京学院 西安热工研究院 
关键词:搅拌摩擦加工 AZ31 镁合金 加工硬化率 力学性能 拉伸孪晶 压缩孪晶 基面滑移 
分类号:TG146.2
出版年,卷(期):页码:2017,42(7):169-172
摘要:

在不同温度下对AZ31 镁合金挤压型材实施了搅拌摩擦加工实验,利用光学显微镜和试样拉伸设备,研究了温度及搅拌摩擦加工对试样加工硬化率及力学性能的影响。研究表明:随着温度升高,母材和搅拌区材料的屈服强度和抗拉强度均减小,母材强度减小的较多;搅拌区材料的总伸长率和均匀伸长率均高于母材,温度达到100 ℃时,均达到最大值,分别为35%和33.5%;搅拌区材料室温及100 ℃的加工硬化率在较高应变量时仍能保持一定水平,而母材所有温度下的加工硬化率均随应变增大而大幅下降;母材的拉伸应变由非基面滑移和压缩孪晶主导,而搅拌区材料拉伸应变则转为由基面滑移和拉伸孪晶主导。

The friction stir processing (FSP) experiment was conducted for magnesium alloy AZ31 extrusion profile at different temperatures, and the influences of temperature and FSP on work hardening rate and mechanical properties of samples were investigated by means of optical microscope and sample stretching equipment. The results show that with the increase of temperature, the yield strength and ultimate tensile strength at the base material and the stirring zone material are reduced and that of the base material is reduced greatly. However, the total elongation and uniform elongation at the stirring zone material are higher than that of the base material, and the maximum values at 100 ℃ are up to 35% and 33.5% respectively. But the work hardening rate at the stirring zone material remains at a high level at room temperature and 100 ℃, and the work hardening rate at the base material decreases greatly with the increasing of stain at all temperatures. Furthermore, the tensile strain at the base material is dominated by the non-basal slip and compression twin crystals, while the tensile strain at the stirring zone material is dominated by the basal slip and tensile twin crystals.

基金项目:
陕西省教育厅专项科研计划项目(15JK2172); 西京学院科研基金项目(XJ140228)
作者简介:
作者简介:杨晓敏(1983-), 女, 硕士, 讲师,E-mail:540348719@qq.com;通讯作者:李明珠(1953-), 男, 学士, 教授,E-mail:304279656@qq.com
参考文献:

[1]鲁志龙, 张大童, 张文,. 不同冷却介质下多道次搅拌摩擦加工对AZ91镁合金组织和性能影响[J]. 航空材料学报, 2016, 36(1):33-38.


Lu Z L, Zhang D T, Zhang W, et al. Microstructure and properties of AZ91 magnesium alloy prepared by multi-pass friction stir processing under different cooling conditions [J]. Journal of Aeronautical Materials, 2016, 36(1):33-38.


[2]Carter J T, Krajewski P E, Verma R. The hot blow forming of AZ31 Mg sheet: Formability assessment and application development[J]. JOM, 2008, 60(11):77-81.


[3]刘守法, 王晋鹏, 吴松林. 快速超塑性镁合金制备新方法[J]. 稀有金属, 2015, 39(10):948-954.


Liu S F, Wang J P, Wu S L. A new method to fabricate quick superplasticity magnesium alloy[J]. Chinese Journal of Rare Metals, 2015, 39(10):948-954.


[4]李更新. 铸态AZ80A 镁合金的准超塑性[J]. 塑性工程学报, 2014, 21(5):133-138.


Li G X. Quasi-superplasticity for cast AZ80A magnesium alloy[J]. Journal of Plasticity Engineering, 2014, 21(5):133-138.


[5]丁业立, 谢允聪, 崔令江,. 镁合金筒形件正反向快速气压胀形实验研究[J]. 锻压装备与制造技术, 2016, 51(1):100-103.


Ding Y L, Xie Y C, Cui L J, et al. Study on forward-reverse quick gas bulging forming experiment for magnesium alloy cylinder[J]. China Metalforming Equipment & Manufacturing Technology, 2016, 51(1):100-103.


[6]王忠堂, 翟梽锦. AZ31镁合金板材等温弯曲实验研究[J]. 锻压技术, 2016, 41(5):20-23.


Wang Z T, Zhai Z J. Experimental study on isothermal bending of magnesium alloy AZ31 sheet[J]. Forging Stamping Technology, 2016, 41(5):20-23.


[7]Barnett M R. Twinning and the ductility of magnesium alloys: Part II, “Contraction” twins[J]. Materials Science & Engineering A, 2007, 464(1-2):8-16.


[8]Jiang L, Jonas J J. Effect of twinning on the flow behavior during strain path reversals in two Mg (+Al, Zn, Mn) alloys[J]. Scripta Materialia, 2008, 58(10):803-806.


[9]Ono N, Nakamura K, Miura S. Influence of grain boundaries on plastic deformation in pure Mg and AZ31 Mg alloy polycrystals[J]. Materials Science Forum, 2003, 419:195-200.


[10]Jain A, Agnew S R. Modeling the temperature dependent effect of twinning on the behavior of magnesium alloy AZ31B sheet[J]. Materials Science & Engineering A, 2007, 462(1-2):29-36.


[11]Chun Y B, Davies C. Twinning-induced anomaly in the yield surface of highly textured Mg-3Al-1Zn plate[J]. Scripta Materialia, 2011, 64(10):958-961.

服务与反馈:
本网站尚未开通全文下载服务】【加入收藏
《锻压技术》编辑部版权所有

中国机械工业联合会主管  中国机械总院集团北京机电研究所有限公司 中国机械工程学会主办
联系地址:北京市海淀区学清路18号 邮编:100083
电话:+86-010-82415085 传真:+86-010-62920652
E-mail: fst@263.net(稿件) dyjsjournal@163.com(广告)
京ICP备07007000号-9