Modelling of the flow behaviour of wrought aluminium alloys at elevated temperatures by a new constitutive equation

被引:63
|
作者
El Mehtedi, M. [1 ]
Musharavati, F. [2 ]
Spigarelli, S. [1 ]
机构
[1] Univ Politecn Marche, DIISM, I-60131 Ancona, Italy
[2] Qatar Univ, Dept Mech & Ind Engn, Doha, Qatar
关键词
Hot working; Constitutive equations; Mechanical characterization; Aluminium alloys; DEFORMATION-BEHAVIOR; MAGNESIUM ALLOY; HOT WORKABILITY; STRAIN; EXTRUSION; COMPRESSION; STRESS; STEEL;
D O I
10.1016/j.matdes.2013.09.013
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The hot working behaviour of an Al-0.7%Mg-0.4%Si (wt.%) aluminium alloy has been investigated by torsion testing in the 450-575 degrees C temperature range. The behaviour of the alloy, in terms of equivalent stress vs equivalent strain, was modelled by a modified form of the Hensel and Spittel constitutive equation. In this new equation, the applied stress sigma was replaced by the sinh(alpha sigma) term, where alpha was a constant. The revised form of the Hensel-Spittel equation gave an excellent description of the flow curves and of the decrease in the strain rate sensitivity of the flow stress observed, at a given strain, with increasing strain rate. The model equation was then rewritten to explicitly include the Arrhenius term describing the temperature dependence of strain rate. The calculation indicated that the activation energy for hot working decreased from 218 to 198 kJ mol (1) in the considered range of strain.(C) 2013 Elsevier Ltd. All rights reserved.
引用
收藏
页码:869 / 873
页数:5
相关论文
共 50 条
  • [41] The cyclic deformation behaviour of dispersion strengthened aluminium materials at elevated temperatures
    Kropfl, I
    Vohringer, O
    ALUMINIUM ALLOYS: THEIR PHYSICAL AND MECHANICAL PROPERTIES, PART 4/SUPPLEMENT, 1997, 242 : 199 - 204
  • [42] Material properties of normal and high strength aluminium alloys at elevated temperatures
    Su, Mei-Ni
    Young, Ben
    THIN-WALLED STRUCTURES, 2019, 137 : 463 - 471
  • [43] Hydromechanical deep-drawing of aluminium-alloys at elevated temperatures
    Groche, P
    Huber, R
    Dörr, J
    Schmoeckel, D
    CIRP ANNALS-MANUFACTURING TECHNOLOGY, 2002, 51 (01) : 215 - 218
  • [44] TENSILE BEHAVIOUR OF ALUMINIUM/MAGNESIUM ALLOY SHEETS AT ELEVATED TEMPERATURES.
    Shehata, F.A.
    Sheet Metal Industries, 1986, 63 (02): : 79 - 81
  • [45] EXPERIMENTAL AND NUMERICAL ANALYSIS OF THE FLOW BEHAVIOUR OF MAGNESIUM WROUGHT ALLOY AZ31 FOR DEEP DRAWING PROCESSES AT ELEVATED TEMPERATURES
    Behrens, B. -A.
    Bouguecha, A.
    Huinink, T.
    Peshekhodov, I.
    Matthias, T.
    Moritz, J.
    Schroedter, J.
    COMPUTATIONAL PLASTICITY XII: FUNDAMENTALS AND APPLICATIONS, 2013, : 1198 - 1209
  • [46] Modelling the recrystallization behaviour during industrial processing of aluminium alloys
    Marthinsen, K.
    Friis, J.
    Holmedal, B.
    Skauvik, I.
    Furu, T.
    RECRYSTALLIZATION AND GRAIN GROWTH IV, 2012, 715-716 : 543 - +
  • [47] Methodology for modelling the small crack fatigue behaviour of aluminium alloys
    Bruzzi, MS
    McHugh, PE
    INTERNATIONAL JOURNAL OF FATIGUE, 2002, 24 (10) : 1071 - 1078
  • [48] Deformation behaviour of Mg-Li alloys at elevated temperatures
    Trojanová, Z
    Drozd, Z
    Lukác, P
    Chmelík, F
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2005, 410 : 148 - 151
  • [49] Fatigue crack growth behaviour at elevated temperatures of titanium alloys
    Sarrazin-Baudoux, C
    Chabanne, Y
    Petit, J
    ECF 12: FRACTURE FROM DEFECTS, VOLS. I-III, 1998, : 315 - 320
  • [50] Modelling the initiation of crevice corrosion of passive alloys at elevated temperatures
    Postlethwaite, J.
    Evitts, R.W.
    Watson, M.K.
    Materials Science Forum, 1995, 192-194 (pt 1) : 121 - 132