为研究纳米颗粒增强铝基复合材料的高温蠕变特性,基于6063Al-Al2(SO4)3体系,采用超声化学原位合成技术,制备出不同Al2O3体积分数(5%、7%)的纳米Al2O3/6063Al复合材料,通过高温蠕变拉伸试验测试其高温蠕变性能,利用XRD、OM、SEM及TEM分析其微观形貌.结果表明:施加高能超声可显著细化增强体颗粒并提高其分布的均匀性,所生成的Al2O3增强颗粒以圆形或近六边形为主,尺寸为20~100 nm;纳米Al2 O3/6063Al复合材料的名义应力指数、表观激活能和门槛应力值与基体相比大幅提高,均随着增强体体积分数的增加而提高,表明纳米Al2O3/6063Al复合材料的抗蠕变性能提高;纳米Al2O3/6063Al复合材料的真应力指数为8,说明复合材料蠕变机制符合微结构不变模型,即受基体晶格扩散的控制;纳米Al2O3/6063Al复合材料的高温蠕变断口特征以脆性断裂为主,高应力下形成穿晶断裂,低应力下形成沿晶断裂和晶界孔洞;纳米Al2O3/6063Al复合材料的主要强化机制为位错强化与弥散强化.
参考文献
[1] | Tjong SC.;Ma ZY..Microstructural and mechanical characteristics of in situ metal matrix composites [Review][J].Materials Science & Engineering, R. Reports: A Review Journal,20003/4(3/4):49-113. |
[2] | B.S.B. Reddy;K. Rajasekhar;M. Venu.Mechanical activation-assisted solid-state combustion synthesis of in situ aluminum matrix hybrid (Al_3Ni/Al_2O_3) nanocomposites[J].Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics,20081/2(1/2):97-105. |
[3] | Dinaharan, I.;Murugan, N.;Parameswaran, S..Influence of in situ formed ZrB2 particles on microstructure and mechanical properties of AA6061 metal matrix composites[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,201118(18):5733-5740. |
[4] | Ali MAZAHERY;Mohsen Ostad SHABANI.SiC纳米颗粒增强A356铸造合金的表征[J].中国有色金属学报(英文版),2012(02):275-280. |
[5] | Shang-Nan Chou;Jow-Lay Huang;Ding-Fwu Lii.The mechanical properties and microstructure of Al_2O_3/aluminum alloy composites fabricated by squeeze casting[J].Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics,20071/2(1/2):124-130. |
[6] | J. K. Lee;M. Taya.Strengthening mechanism of shape memory alloy reinforced metal matrix composite[J].Scripta materialia,20045(5):443-447. |
[7] | Cadek J.;Sustek V.;Oikawa H..THRESHOLD CREEP BEHAVIOUR OF DISCONTINUOUS ALUMINIUM AND ALUMINIUM ALLOY MATRIX COMPOSITES - AN OVERVIEW[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,19951/2(1/2):9-23. |
[8] | Yong Li;Terence G.Landon.Creep behavior of an Al-6061 metal matrix composite reinforced with alumina particulates[J].Acta materialia,199711(11):4797-4806. |
[9] | Yong Li;F.A.Mohamed.An investigation of creep behavior in an SiC-2124 Al composite[J].Acta materialia,199711(11):4775-4785. |
[10] | Salmon C.;Colin C.;Molins R.;Delannay F..Strengthening of Al/Ni-based composites by in situ growth of intermetallic particles[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,20021/2(1/2):193-200. |
[11] | X.J. Wang;N.Z. Wang;L.Y. Wang;X.S. Hu;K. Wu;Y.Q. Wang;Y.D. Huang.Processing, microstructure and mechanical properties of micro-SiC particles reinforced magnesium matrix composites fabricated by stir casting assisted by ultrasonic treatment processing[J].Materials & design,2014May(May):638-645. |
[12] | 张家陶;赵宇光;徐晓峰;刘晓波.超声波对原位Mg2Si/Al复合材料中初生Mg2Si形态的影响[J].中国有色金属学报(英文版),2013(10):2852-2856. |
[13] | ZHANG Song-li;ZHAO Yu-tao;CHEN Gang.In situ (Mg2Si+MgO)/Mg composites fabricated from AZ91-Al2(SiO3)3 with assistance of high-energy ultrasonic field[J].中国有色金属学报(英文版),2010(11):2096-2099. |
[14] | S.C. Tjong;Z.Y. Ma.High-temperature creep behaviour of powder-metallurgy aluminium composites reinforced with SiC particles of various sizes[J].Composites science and technology,19997(7):1117-1125. |
[15] | Z.Y. Ma;S.C. Tjong.Creep deformation characteristics of discontinuously reinforced aluminium-matrix composites[J].Composites science and technology,20015(5):771-786. |
上一张
下一张
上一张
下一张
计量
- 下载量()
- 访问量()
文章评分
- 您的评分:
-
10%
-
20%
-
30%
-
40%
-
50%