Influence of lacing bars on the buckling capacity of four-legged latticed columns considering geometric imperfections

被引:1
作者
Li, Yinqi [1 ]
Liu, Feng [1 ]
Cheng, Wenming [2 ]
机构
[1] Guangdong Univ Technol, Sch Civil & Transportat Engn, Guangzhou, Guangdong, Peoples R China
[2] Southwest Jiaotong Univ, Sch Mech Engn, Chengdu, Sichuan, Peoples R China
基金
中国国家自然科学基金;
关键词
Latticed columns; buckling; geometric imperfections; nonlinear buckling analysis; FEA; BUILT-UP COLUMNS; STEEL FRAMES; LACED COLUMN; BEHAVIOR;
D O I
10.1177/00368504211025905
中图分类号
G40 [教育学];
学科分类号
040101 ; 120403 ;
摘要
The buckling behavior of latticed columns had been widely investigated based on the theory of Euler, Engesser and Timoshenko shear beam. Although these methods had been formulated and proved to be accurate in case of special assumptions, the influences of lacing bars on the buckling behavior of latticed columns were unclear. This paper modeled a general four-legged latticed column to study the influence of the cross-section characteristics of lacing bars along with their imperfections on the buckling capacity of latticed columns. Three loading conditions and four geometric imperfect models were built to testify the performance of lacing bars. To calculate the buckling load of latticed columns with imperfections accurately, advanced nonlinear analytical procedures using Newton-Raphson incremental-iterative method (ANAP-NR) and Risk arc-length incremental-iterative method (ANAP-Risk) were developed, and then validated by FE software ABAQUS. The current data in the paper show the maximum variation on the critical buckling load of latticed columns, caused by the cross-section area, the bending moment of inertia outer lacing plane, and the imperfections of lacing bars, could reach 68%, 30%, and 25%. The analytical results indicate the great importance of lacing bars on the buckling capacity of latticed columns.
引用
收藏
页数:32
相关论文
共 30 条
[1]  
[Anonymous], 2005, 199311 CEN BS
[2]   Experimental evaluation of the elastic buckling and compressive capacity of laced columns [J].
Bonab, A. Poursamad ;
Hashemi, B. Hosseini ;
Hosseini, Mahmood .
JOURNAL OF CONSTRUCTIONAL STEEL RESEARCH, 2013, 86 :66-73
[3]  
[陈宝春 Chen Baochun], 2007, [土木工程学报, China Civil Engineering Journal], V40, P32
[4]   A computer method for nonlinear inelastic analysis of 3D semi-rigid steel frameworks [J].
Chiorean, C. G. .
ENGINEERING STRUCTURES, 2009, 31 (12) :3016-3033
[5]   Second-order flexibility-based model for nonlinear inelastic analysis of 3D semi-rigid steel frameworks [J].
Chiorean, Cosmin G. .
ENGINEERING STRUCTURES, 2017, 136 :547-579
[6]   Ultimate capacity of battened columns composed of four equal slender angles [J].
El Aghoury, M. A. ;
Salem, A. H. ;
Hanna, M. T. ;
Amoush, E. A. .
THIN-WALLED STRUCTURES, 2013, 63 :175-185
[7]   Experimental investigation for the behaviour of battened beam-columns composed of four equal slender angles [J].
El Aghoury, M. A. ;
Salem, A. H. ;
Hanna, M. T. ;
Amoush, E. A. .
THIN-WALLED STRUCTURES, 2010, 48 (09) :669-683
[8]  
Fooladi A, 2015, INT J CIV ENG, V13, P202
[9]   Axially and transversely loaded Timoshenko and laced built-up columns with arbitrary supports [J].
Gantes, Charis J. ;
Kalochairetis, Konstantinos E. .
JOURNAL OF CONSTRUCTIONAL STEEL RESEARCH, 2012, 77 :95-106
[10]   Second-order analysis and design of steel structures allowing for member and frame imperfections [J].
Gu, JX ;
Chan, SL .
INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN ENGINEERING, 2005, 62 (05) :601-615