Influence of weld simulation on the microstructure and fatigue strength of 2195 aluminum-lithium alloy

被引:0
|
作者
Chaturvedi, MC [1 ]
Chen, DL [1 ]
机构
[1] Univ Manitoba, Dept Mech & Ind Engn, Winnipeg, MB R3T 5V6, Canada
来源
ALUMINIUM ALLOYS: THEIR PHYSICAL AND MECHANICAL PROPERTIES, PTS 1-3 | 2000年 / 331-3卷
关键词
Al-Li alloy; fatigue life; fatigue limit; fatigue strength; microstructure; tensile properties; weld simulation; welding;
D O I
10.4028/www.scientific.net/MSF.331-337.1769
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Microstructure, tensile and fatigue properties of 2195 AI-Li alloy in the T8 temper (as-received alloy) and after weld simulation in Gleeble 1500 to temperatures of 550 degrees C and 600 degrees C were studied. The microstructure of the alloy consisted of a pancake shaped grains with the major strengthening precipitates of T-1 phase. The weld simulation resulted in the dissolution of T1 phase and the formation of G-P zones, delta' particles and dislocations. The higher simulation temperature enhanced the microstructural modification and resulted in larger grain size, more grain boundary precipitates and microcracks or voids. The weld simulation gave rise to a significant decrease in the yield and fatigue strength due to the absence of T1 phase and other microstructural modifications. Fatigue cracks in the base alloy were observed to initiate generally from the specimen surface, and at the interior defects in the weld simulated specimens, especially after the 600 degrees C simulation. Fatigue striations were typical features observed in the base alloy, while cleavage-like cracking occurred in the alloy after weld simulation.
引用
收藏
页码:1769 / 1774
页数:6
相关论文
共 50 条
  • [31] FATIGUE-CRACK PROPAGATION MECHANISMS IN AN ALUMINUM-LITHIUM ALLOY
    RANGANATHAN, N
    ADIWIJAYANTO, F
    PETIT, J
    BAILON, JP
    ACTA METALLURGICA ET MATERIALIA, 1995, 43 (03): : 1029 - 1035
  • [32] On the evolution of heterogeneous microstructure and microtexture in impacted aluminum-lithium alloy
    Gurao, N.P.
    Adesola, A.O.
    Odeshi, A.G.
    Szpunar, J.A.
    Journal of Alloys and Compounds, 2013, 578 : 183 - 187
  • [33] Fatigue and Fracture Mechanisms of Aluminum-Lithium Alloy Containing Cerium
    陈铮
    王永欣
    丁占来
    Journal of Rare Earths, 1999, (01) : 75 - 77
  • [34] On the evolution of heterogeneous microstructure and microtexture in impacted aluminum-lithium alloy
    Gurao, N. P.
    Adesola, A. O.
    Odeshi, A. G.
    Szpunar, J. A.
    JOURNAL OF ALLOYS AND COMPOUNDS, 2013, 578 : 183 - 187
  • [35] On the evolution of heterogeneous microstructure and microtexture in impacted aluminum-lithium alloy
    Department of Mechanical Engineering, University of Saskatchewan, Saskatoon, S7N 5A9, Canada
    不详
    J Alloys Compd, 2013, (183-187):
  • [36] Thermodynamic and Kinetic Calculation of High Strength Aluminum-Lithium Alloy
    Wang, Jinsan
    Xiao, Xiang
    CRYSTALS, 2022, 12 (04)
  • [37] In-situ Investigation of the Fracture Behaviors of 2195-T8 Aluminum-Lithium alloy
    Wang, Liang
    Hao, Min
    Li, Guoai
    Chen, Gaohong
    INTERNATIONAL SYMPOSIUM ON MATERIALS APPLICATION AND ENGINEERING (SMAE 2016), 2016, 67
  • [38] Process investigation on ultrasonic vibration enhanced friction stir welding of 2195 aluminum-lithium alloy
    Shi Lei
    Dai Xiang
    Wu Chuan-song
    Fu Li
    CAILIAO GONGCHENG-JOURNAL OF MATERIALS ENGINEERING, 2021, 49 (05): : 122 - 129
  • [39] Experimental investigation on post-high temperature mechanical properties of aluminum-lithium alloy 2195
    He, Wenfu
    Zhu, Chenyang
    Yang, Sen
    Lu, Xiaofeng
    JOURNAL OF CONSTRUCTIONAL STEEL RESEARCH, 2025, 227
  • [40] ALUMINUM-LITHIUM ALLOY DESIGN
    BALMUTH, ES
    GAYLE, FW
    JOURNAL OF METALS, 1979, 31 (12): : 92 - 92