Aluminum Lithium Alloys (Al-Li-Cu-X)-New Generation Material for Aerospace Applications

被引:41
|
作者
Ahmed, Bilal [1 ]
Wu, Sujun [1 ]
机构
[1] Beijing Univ Aeronaut & Astronaut Beihang, Beijing, Peoples R China
关键词
Aluminum-lithium alloys; Aerospace structure; Light weight; Young' modulus; Physical metallurgy; PRECIPITATION;
D O I
10.4028/www.scientific.net/AMM.440.104
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Significant advantages in weight reduction and increased strength have place advanced aluminum-lithium alloys at forefront of aerospace materials research. These alloys are being developed to fulfill the ever increasing need for high strength, high properties, light weight and cost effective for aerospace industry. Conventional aluminum alloys has long been in service for aerospace application. The addition of lithium to aluminum improves modulus and decrease density compared to conventional aluminum alloys. Atomic weight of lithium is 7 mass units compared to aluminum 23 mass units, hence there is density reduction of about 3% for each weight percent addition of lithium and about 6% increase in Young's modulus. In principle weight saving for aerospace structural parts could reach up to 15 %. This paper examines effect of lithium addition on properties, physical metallurgy; various phases developed during processing of these alloys. The addition of Lithium to aluminum form coherent, low density Al3Li (delta') precipitates. However the binary alloys have poor mechanical properties which are attributed to strain localization and shearing of soft Al3Li (delta') precipitates. This problem has been solved by development of ternary and quaternary alloys containing copper and magnesium. In all aluminum-lithium alloys, small addition of zirconium or scandium is done to improve recrystallization. The new developed aluminum lithium alloys series Al-Li-Cu-X are potential candidate to replace existing conventional alloys in terms of enhanced properties with reduced density.
引用
收藏
页码:104 / 111
页数:8
相关论文
共 50 条
  • [21] The role of plastic deformation on the competitive microstructural evolution and mechanical properties of a novel Al-Li-Cu-X alloy
    Gable, B.M.
    Zhu, A.W.
    Csontos, A.A.
    Starke, Jr., E.A.
    2001, Elsevier Ltd (01)
  • [23] Exfoliation corrosion behavior of Al-Cu-Mg alloys for aerospace applications
    Yang, Sheng
    Yi, Danqing
    Zhong, Li
    Yao, Sujuan
    Liu, Huiqun
    Beijing Keji Daxue Xuebao/Journal of University of Science and Technology Beijing, 2007, 29 (02): : 216 - 219
  • [24] FATIGUE RESISTANCE OF Al-Cu-Li AND COMPARISON WITH 7XXX AEROSPACE ALLOYS
    Danielou, A.
    Ronxin, J. P.
    Nardin, C.
    Ehrstroem, J. C.
    PROCEEDINGS OF THE 13TH INTERNATIONAL CONFERENCE ON ALUMINUM ALLOYS (ICAA13), 2012, : 511 - 516
  • [25] Fabrication methods to manufacture isotropic Al-Li alloys and products for space and aerospace applications
    Alcoa Technical Cent, Alcoa Center, United States
    Mater Sci Eng A Struct Mater Prop Microstruct Process, 1 (100-107):
  • [26] Fabrication methods to manufacture isotropic Al-Li alloys and products for space and aerospace applications
    Rioja, RJ
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 1998, 257 (01): : 100 - 107
  • [27] POSITRON STUDIES OF PRECIPITATION PHENOMENA IN AL-LI AND IN AL-LI-X (X = CU,MG OR SC) ALLOYS
    DLUBEK, G
    KRAUSE, S
    KRAUSE, H
    BERESINA, AL
    MIKHALENKOV, VS
    CHUISTOV, KV
    JOURNAL OF PHYSICS-CONDENSED MATTER, 1992, 4 (29) : 6317 - 6328
  • [28] The Equilibrium α (Al-Li Solid Solution) and Metastable δ′ (Al3Li) Phase Boundaries in Aluminum–Lithium Alloys
    Alan J. Ardell
    Journal of Phase Equilibria and Diffusion, 2023, 44 : 255 - 268
  • [29] The role of slip length and precipitation on the ductility and fracture Behavior of isotropic Al-Li-Cu-x alloys AF/C-458 and AF/C-489
    Csontos, AA
    Starke, EA
    LIGHT METALS 2004, 2004, : 897 - 902
  • [30] Advanced weldable high-strength Al-Cu-Li alloy for aerospace applications
    Koch, U
    Pfannenmuller, T
    Davydov, V
    Fridlyander, JN
    Winkler, PJ
    ALUMINIUM ALLOYS: THEIR PHYSICAL AND MECHANICAL PROPERTIES, PART 4/SUPPLEMENT, 1997, 242 : 243 - 248