Low-temperature tensile behaviours of 6061-T6 aluminium alloy: Tests, analysis, and numerical simulation

被引:17
作者
Yan, Jia-Bao [1 ,2 ,3 ]
Kong, Guobin [3 ]
Zhang, Lingxin [1 ,2 ]
机构
[1] China Earthquake Adm, Inst Engn Mech, Key Lab Earthquake Engn & Engn Vibrat, Harbin 150080, Peoples R China
[2] Minist Emergency Management, Key Lab Earthquake Disaster Mitigat, Harbin 150080, Peoples R China
[3] Tianjin Univ, Sch Civil Engn, Tianjin 300350, Peoples R China
关键词
Mechanical property; Aluminium alloy; Tension tests; Stress strain behaviour; Constitutive model; Low temperature; Finite element model; POSTFIRE MECHANICAL-PROPERTIES; FRACTURE-BEHAVIOR; CRACK-GROWTH; STRAIN-RATE; STEEL; CONCRETE; STRENGTH; MODEL; PLATES;
D O I
10.1016/j.istruc.2023.105054
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
This paper made efforts on tensile behaviours of aluminium alloy (AA) 6061-T6 at low temperatures (T). To investigate low-temperature tensile behaviours of 6061-T6 AA, this paper carried out 24 tension tests on AA coupons at varying T levels of 20,-30,-60, and-80 & DEG;C. The tests revealed that reducing T from 20 to-80 & DEG;C improved mechanical properties of 6061-T6 AA including improved elastic modulus by about 15%, increased yield strength by 9%, and improved ultimate strength by 10%; however, decreasing the low temperature from 20 to-80 & DEG;C has marginal influences on the ductility of 6061-T6 AA. In addition, the ambient-and low-temperature stress-strain (cr-e) curves of 6061-T6 AA exhibited close behaviours. Analytical constitutive models were proposed for 6061-T6 AA. These proposed analytical models predicted well low-temperature cr-e behaviours of 6061T6 AA. FEMs with continuum damage mechanics were also developed for the low-temperature tensile cr-e behaviours of 6061-T6 AA. It was proved that the developed FEM provided reasonable simulations on engineering cr-e curves of 6061-T6 AA at different low temperatures.
引用
收藏
页数:17
相关论文
共 37 条
[1]  
Abaqus, 2013, Abaqus 6.13
[2]   The room temperature mechanical properties of hot rolled 7075 aluminum alloy [J].
Abolhasani, A. ;
Zarei-Hanzaki, A. ;
Abedi, H. R. ;
Rokni, M. R. .
MATERIALS & DESIGN, 2012, 34 :631-636
[3]   Experimental investigation on the post-fire mechanical properties of structural aluminum alloys 6061-T6 and 7075-T73 [J].
Chen, Zhihua ;
Lu, Jie ;
Liu, Hongbo ;
Liao, Xiangwei .
THIN-WALLED STRUCTURES, 2016, 106 :187-200
[4]   DYNAMIC MECHANICAL BEHAVIOR OF 6061 AL ALLOY AT ELEVATED TEMPERATURES AND DIFFERENT STRAIN RATES [J].
Fan, Xueling ;
Suo, Tao ;
Sun, Qin ;
Wang, Tiejun .
ACTA MECHANICA SOLIDA SINICA, 2013, 26 (02) :111-120
[5]   Compression load failure of aluminum plates due to fire [J].
Fogle, Emily J. ;
Lattimer, Brian Y. ;
Feih, Stefanie ;
Kandare, Everson ;
Mouritz, Adrian P. ;
Case, Scott W. .
ENGINEERING STRUCTURES, 2012, 34 :155-162
[6]  
GB/T, 2006, GB/T 13239-2006
[7]   Aluminium alloys as structural material: A review of research [J].
Georgantzia, Evangelia ;
Gkantou, Michaela ;
Kamaris, George S. .
ENGINEERING STRUCTURES, 2021, 227
[8]   Simple shear behavior of 2024-T351 aluminum alloy over a wide range of strain rates and temperatures: Experiments and constitutive modeling [J].
Jia, Bin ;
Rusinek, Alexis ;
Xiao, Xinke ;
Wood, Paul .
INTERNATIONAL JOURNAL OF IMPACT ENGINEERING, 2021, 156
[9]   Effect of strain rate on impact response and dislocation substructure of 6061-T6 aluminum alloy [J].
Lee, WS ;
Shyu, JC ;
Chiou, ST .
SCRIPTA MATERIALIA, 1999, 42 (01) :51-56
[10]   A CONTINUOUS DAMAGE MECHANICS MODEL FOR DUCTILE FRACTURE [J].
LEMAITRE, J .
JOURNAL OF ENGINEERING MATERIALS AND TECHNOLOGY-TRANSACTIONS OF THE ASME, 1985, 107 (01) :83-89