Strength and Electrical Conductivity Relationships in Al-Mg-Si and Al-Sc Alloys

被引:11
作者
Rometsch, Paul A. [1 ]
Xu, Zhou [1 ]
Zhong, Hao [1 ]
Yang, Huai [2 ]
Ju, Lin [2 ]
Wu, Xinhua [1 ]
机构
[1] Monash Univ, Dept Mat Engn, Wellington Rd, Clayton, Vic 3800, Australia
[2] Wuxi Huaneng Elect Cable Co Ltd, Wuxi 214105, Jiangsu, Peoples R China
来源
ALUMINIUM ALLOYS 2014 - ICAA14 | 2014年 / 794-796卷
关键词
6xxx aluminium; scandium alloy; electrical conductivity; tensile strength; ALUMINUM-ALLOYS; CU ALLOY; RESISTIVITY; MODEL;
D O I
10.4028/www.scientific.net/MSF.794-796.827
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Aluminium alloys play an important role in overhead power transmission applications. All-aluminium alloy conductor cables require increasingly hard-to-achieve combinations of high tensile strength and high electrical conductivity. The problem is that a high strength is normally associated with a reduced electrical conductivity. Both heat-treatable 6xxx series aluminium alloys and work-hardening 1xxx series aluminium alloys are important contenders for these applications. By contrast, the addition of rare earths and/or transition metals to aluminium may provide further opportunities to achieve improved combinations of precipitation hardening, substructural hardening and elevated temperature stability. In this work, strength and electrical conductivity relationships are investigated for a range of 6xxx series aluminium alloys and an Al-Sc alloy. The Al-Sc alloy was produced by means of a direct laser metal deposition process that should allow more Sc to be placed into solid solution than by conventional casting or solution treatment. The paper explores the relative effects of composition, cold working and age hardening on the balance of strength and electrical conductivity, including examples of how improved combinations of both strength and conductivity can be achieved.
引用
收藏
页码:827 / +
页数:2
相关论文
共 10 条
[1]   Clustering behaviour in an Al-Mg-Si-Cu alloy during natural ageing and subsequent under-ageing [J].
Cao, Lingfei ;
Rometsch, Paul A. ;
Couper, Malcolm J. .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2013, 559 :257-261
[2]   A study on the early-stage decomposition in the Al-Mg-Si-Cu alloy AA6111 by electrical resistivity and three-dimensional atom probe [J].
Esmaeili, S. ;
Vaumousse, D. ;
Zandbergen, M. W. ;
Poole, W. J. ;
Cerezo, A. ;
Lloyd, D. J. .
PHILOSOPHICAL MAGAZINE, 2007, 87 (25) :3797-3816
[3]   ALUMINUM .1. REVIEW OF RESISTIVE MECHANISMS IN ALUMINUM [J].
FICKETT, FR .
CRYOGENICS, 1971, 11 (05) :349-+
[4]  
HORNBOGEN E, 1993, ACTA METALL MATER, V41, P1, DOI 10.1016/0956-7151(93)90334-O
[5]  
Kutner F., 1976, ALUMINIUM, V52, P322
[6]  
Kutner F., 1981, Aluminiummonograph, aluminium conductor materials, P15
[7]   Electrical resistivity measurements: a sensitive tool for studying aluminum alloys [J].
Raeisinia, B. ;
Poole, W. J. .
ALUMINIUM ALLOYS 2006, PTS 1 AND 2: RESEARCH THROUGH INNOVATION AND TECHNOLOGY, 2006, 519-521 :1391-1396
[8]   Scandium in aluminium alloys [J].
Royset, J ;
Ryum, N .
INTERNATIONAL MATERIALS REVIEWS, 2005, 50 (01) :19-44
[9]   A PROCESS MODEL FOR AGE HARDENING OF ALUMINUM-ALLOYS .1. THE MODEL [J].
SHERCLIFF, HR ;
ASHBY, MF .
ACTA METALLURGICA ET MATERIALIA, 1990, 38 (10) :1789-1802
[10]   A model for the thermodynamics of and strengthening due to co-clusters in Al-Mg-Si-based alloys [J].
Starink, M. J. ;
Cao, L. F. ;
Rometsch, P. A. .
ACTA MATERIALIA, 2012, 60 (10) :4194-4207