Stability and design of continuous steel beams in the strain-hardening range

被引:2
作者
Foster, A. S. J. [1 ]
Gardner, L. [2 ]
机构
[1] UCL, London, England
[2] Imperial Coll Sci Technol & Med, London, England
关键词
BEHAVIOR;
D O I
10.1016/j.jcsr.2017.05.006
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
We examine the lateral stability implications of allowing for strain-hardening in the design of continuous steel beams through a programme of experiments, numerical modelling and parametric studies. Six tests are performed on continuous beams that are partially restrained against lateral torsional buckling. Restraint spacings are chosen to give non-dimensional lateral torsional slenderness values of 0.3 and 0.4. Bending resistances determined by the continuous strength method (CSM), which takes into account strain-hardening, are shown to be exceeded. We present a numerical model validated against the laboratory test data to conduct parametric studies that investigate the range of slenderness values for which the CSM is beneficial, and to examine the interaction between beam segments with unequal loads. Neglecting beneficial interactions between neighbouring beam segments, to achieve the degree of rotation capacity required for Class 1 sections designed using the continuous strength method, closer restraint spacing than the minimum specified by EN 1993-1-1 (2005) is required. A basic design approach is presented that incorporates a limiting lateral torsional slenderness for the CSM of 0.2, and a simple transition function from bending resistances predicted by simple plastic theory to those predicted by the CSM.
引用
收藏
页码:162 / 176
页数:15
相关论文
共 50 条
[41]   Biaxial flexural response of Strain-Hardening UHPFRC circular slab elements [J].
Shen, Xiujiang ;
Bruhwiler, Eugen ;
Peng, Wanghu .
CONSTRUCTION AND BUILDING MATERIALS, 2020, 255
[42]   Event-based lattice modeling of strain-hardening cementitious composites [J].
Kang, Jingu ;
Bolander, John E. .
INTERNATIONAL JOURNAL OF FRACTURE, 2017, 206 (02) :245-261
[43]   Enhancing the crashworthiness of high-manganese steel by strain-hardening engineering, and tailored folding by local heat-treatment [J].
Bambach, Markus ;
Conrads, Laura ;
Daamen, Markus ;
Guvenc, Onur ;
Hirt, Gerhard .
MATERIALS & DESIGN, 2016, 110 :157-168
[44]   Ductility Variation and Improvement of Strain-Hardening Cementitious Composites in Structural Utilization [J].
Diao, Pinxin ;
Ling, Zongyou ;
Bai, Yunbo ;
Lu, Weihua ;
Zhang, Yongxing .
MATERIALS, 2024, 17 (04)
[45]   Effects of the strain-hardening law in the numerical simulation of wire drawing processes [J].
Panteghini, Andrea ;
Genna, Francesco .
COMPUTATIONAL MATERIALS SCIENCE, 2010, 49 (02) :236-242
[46]   Effect of Annealing Time and Temperature Parameters on the Microstructure, Hardness, and Strain-Hardening Coefficients of 42CrMo4 Steel [J].
Szala, Miroslaw ;
Winiarski, Grzegorz ;
Wojcik, Lukasz ;
Bulzak, Tomasz .
MATERIALS, 2020, 13 (09)
[47]   Effective restoration of reinforced concrete beams with severe stirrup corrosion using high-strength strain-hardening cementitious composites (SHCC) [J].
Younas, Haroon ;
Yu, Jing ;
Leung, Christopher K. Y. .
CONSTRUCTION AND BUILDING MATERIALS, 2025, 483
[48]   Fatigue Damage Assessment in AL6XN Stainless Steel Based on the Strain-Hardening Exponent n-Value [J].
Ramirez-Acevedo, Donovan ;
Ambriz, Ricardo Rafael ;
Garcia, Christian Jesus ;
Gomora, Cesar Mendoza ;
Jaramillo, David .
METALS, 2025, 15 (05)
[49]   The synergistic effects of shape memory alloy, steel, and carbon fibres with polyvinyl alcohol fibres in hybrid strain-hardening cementitious composites [J].
Dehghani, Ayoub ;
Aslani, Farhad .
CONSTRUCTION AND BUILDING MATERIALS, 2020, 252
[50]   Mechanical tensile properties by spherical macroindentation using an indentation strain-hardening exponent [J].
N'Jock, M. Yetna ;
Chicot, D. ;
Decoopman, X. ;
Lesage, J. ;
Ndjaka, J. M. ;
Pertuz, A. .
INTERNATIONAL JOURNAL OF MECHANICAL SCIENCES, 2013, 75 :257-264