|本期目录/Table of Contents|

[1]吴 波,王 辉,刘晓珠.内置高强角钢的方钢管混凝土柱偏压性能试验[J].建筑科学与工程学报,2021,38(02):16-25.[doi:10.19815/j.jace.2021.02023]
 WU Bo,WANG Hui,LIU Xiao-zhu.Experiment on Eccentric Compressive Behaviors of Square CFST Columns with Built-in High-strength Steel Angles[J].Journal of Architecture and Civil Engineering,2021,38(02):16-25.[doi:10.19815/j.jace.2021.02023]
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《建筑科学与工程学报》[ISSN:1673-2049/CN:61-1442/TU]

卷:
38卷
期数:
2021年02期
页码:
16-25
栏目:
出版日期:
2021-03-25

文章信息/Info

Title:
Experiment on Eccentric Compressive Behaviors of Square CFST Columns with Built-in High-strength Steel Angles
文章编号:
1673-2049(2021)02-0016-10
作者:
吴 波,王 辉,刘晓珠
华南理工大学 亚热带建筑科学国家重点实验室,广东 广州 510640
Author(s):
WU Bo, WANG Hui, LIU Xiao-zhu
State Key Laboratory of Subtropical Building Science, South China University of Technology, Guangzhou 510640, Guangdong, China
关键词:
方钢管混凝土柱 高强角钢 偏压性能 取钢率 偏心距
Keywords:
square concrete-filled steel tubular column high-strength steel angle eccentric compression behavior replacement ratio of steel eccentric distance
分类号:
TU398
DOI:
10.19815/j.jace.2021.02023
文献标志码:
A
摘要:
为了揭示内置高强角钢的方钢管混凝土柱偏压性能,开展了8根该类柱及2根传统方钢管混凝土柱的偏心受压试验,考察了取钢率(角钢质量与总用钢质量之比)、角钢到钢管内壁净距、偏心距等主要参数对柱偏压性能的影响,探讨了内置高强角钢的方钢管混凝土柱偏压承载力计算方法。结果表明:在总用钢量基本保持不变的情况下,合理确定取钢率和角钢到钢管内壁净距,能够使内置高强角钢的方钢管混凝土柱偏压性能和传统方钢管混凝土柱基本相当; 相比于取钢率,角钢到钢管内壁净距对内置高强角钢的方钢管混凝土柱偏压承载力影响更为明显; 总用钢量保持不变时,相比于传统无内置角钢试件,内置高强角钢试件的等效刚度及延性总体上改变有限; 对于内置高强角钢的方钢管混凝土柱,在达到偏压峰值荷载时,柱受压区或(和)受拉区的高强角钢已充分发挥其强度; 针对内置高强角钢的方钢管混凝土柱改进提出的偏压承载力实用计算方法总体上具有良好的精度。
Abstract:
In order to clarify the eccentric compression behaviors of square concrete-filled steel tubular(CFST)columns with built-in high-strength steel angles, eight such columns and two traditional steel tubular columns filled with concrete were tested under eccentric compression. The effects of the replacement ratio of steel(the mass ratio of the steel angles to the total steel usage), the clear distance between the steel angle and the steel tube, and the eccentric distance on the eccentric compression behaviors of the columns were investigated, and the calculation method of the eccentric load bearing capacity of the square CFST column with built-in high-strength steel angles was discussed. The results show that when the total steel consumption remains unchanged, through reasonable selection of both the replacement ratio of steel and the clear distance between the steel angle and the steel tube, the eccentric compressive behaviors of the square CFST column with built-in high-strength steel angle is similar to that of the traditional CFST column under eccentric load. Compared with the replacement ratio of steel, the clear distance between the steel angle and the steel tube has greater influence on the eccentric load bearing capacity of the square CFST column with built-in high-strength steel angles. When the total steel usage keeps unchanged, the equivalent stiffness and ductility of the square CFST column with built-in high-strength steel angles are close to those of the traditional square CFST column. When the square CFST columns with built-in high-strength steel angles reach their eccentric peak loads, the high-strength steel angles in the compression or(and)the tension zones have fully exerted their strength. The improved calculation method of the eccentric load bearing capacity of the square CFST column with built-in high-strength steel angles can predict the peak load well on the whole.

参考文献/References:

[1] 韩林海.钢管混凝土结构——理论与实践[M].第2版.北京:科学出版社,2007.
HAN Lin-hai.Concrete Filled Steel Tubular Structures — Theory and Practice[M].2nd ed.Beijing:Science Press,2007.
[2]韩林海,陶 忠,王文达.现代组合结构和混合结构:试验、理论和方法[M].北京:科学出版社,2009.
HAN Lin-hai,TAO Zhong,WANG Wen-da.Advanced Composite and Mixed Structures:Testing,Theory and Approach[M].Beijing:Science Press,2009.
[3]钟善桐.钢管混凝土结构[M].北京:清华大学出版社,2003.
ZHONG Shan-tong.Concrete-filled Steel Tube Structure[M].Beijing:Tsinghua University Press,2003.
[4]FUJIMOTO T,MUKAI A,NISHIYAMA I,et al.Behavior of Eccentrically Loaded Concrete-filled Steel Tubular Columns[J].Journal of Structural Engineering,2004,130(2):203-212.
[5]TIKKA T K,MIRZA S A.Nonlinear EI Equation for Slender Composite Columns Bending About the Minor Axis[J].Journal of Structural Engineering,2006,132(10):1590-1602.
[6]ZHANG W,SHAHROOZ B M.Comparison Between ACI and AISC for Concrete-filled Tubular Columns[J].Journal of Structural Engineering,1999,125(11):1213-1223.
[7]UY B.Strength of Concrete Filled Steel Box Columns Incorporating Local Buckling[J].Journal of Structural Engineering,2000,126(3):341-352.
[8]陈宝春.钢管混凝土拱桥实例集[M].北京:人民交通出版社,2002.
CHEN Bao-chun.Examples of Concrete Filled Steel Tubular Arch Bridges[M].Beijing:China Communications Press,2002.
[9]GB 50936—2014,钢管混凝土结构技术规范[S].
GB 50936—2014,Technical Code for Concrete Filled Steel Tubular Structures[S].
[10]ANSI/AISC 360-16,Specification for Structural Steel Buildings[S].
[11]EN 1994-1-1:2004,Eurocode 4:Design of Composite Steel and Concrete Structures.Part 1-1:General Rules and Rules for Buildings[S].
[12]CECS 28:2012,钢管混凝土结构技术规程[S].
CECS 28:2012,Technical Specification for Concrete-filled Steel Tubular Structures[S].
[13]LU H,HAN L H,ZHAO X L.Fire Performance of Self-consolidating Concrete Filled Double Skin Steel Tubular Columns:Experiments[J].Fire Safety Journal,2010,45(2):106-115.
[14]米振伟.带肋薄壁方钢管混凝土柱抗火性能研究[D].阜新:辽宁工程技术大学,2017.
MI Zhen-wei.Research on Behavious of Square Thin-walled Concrete-filled Steel Tubes with Steel Bar Stiffeners Under Fire[D].Fuxin:Liaoning Technical University,2017.
[15]朱美春,孟凡钦,何宝杰.型钢-钢管混凝土柱耐火性能试验研究[J].建筑结构学报,2016,37(3):36-43.
ZHU Mei-chun,MENG Fan-qin,HE Bao-jie.Experimental Research on Fire Resistance of Steel Tubular Columns Filled with Steel Reinforced Concrete[J].Journal of Building Structures,2016,37(3):36-43.
[16]MYLLYMAKI J,LIE T T,CHABOT M.Fire Resistance Tests of Square Hollow Steel Columns Filled with Reinforced Concrete[R].Ottawa:CNRC,1994.
[17]吴 波,傅翼飞.内置高强角钢的方钢管再生块体混凝土柱轴压及耐火性能试验研究[J].建筑结构学报,2020,41(5):85-95.
WU Bo,FU Yi-fei.Test on Compressive Behavior and Fire Performance of Square Steel Tubular Columns Filled with Recycled Lump Concrete and High-strength Steel Angles[J].Journal of Building Structures,2020,41(5):85-95.
[18]蔡绍怀.现代钢管混凝土结构(修订版)[M].北京:人民交通出版社,2007.
CAI Shao-huai.Modern Steel Tube Confined Concrete Structures(Revised Edition)[M].Beijing:China Communications Press,2007.
[19]GB/T 228.1—2010,金属材料拉伸试验第1部分:室温试验方法[S].
GB/T 228.1—2010,Metallic Materials — Tensile Testing — Part 1:Method of Test at Room Temperature[S].
[20]GB/T 50081—2019,混凝土物理力学性能试验方法标准[S].
GB/T 50081—2019,Standard for Test Methods of Concrete Physical and Mechanical Properties[S].
[21]简思敏.部分外包再生混合混凝土组合柱的轴压和偏压性能研究[D].广州:华南理工大学,2016.
JIAN Si-min.Study on Mechanical Behaviors of Axially-and Eccentrically-loaded Partially Encased Composite Columns Cast with Demolished Concrete Blocks and Fresh Concrete[D].Guangzhou:South China University of Technology,2016.
[22]PARK R.Ductility Evaluation from Laboratory and Analytical Testing[C]//WCEE.Proceedings of the 9th World Conference on Earthquake Engineering:Vol.III.Tokyo:WCEE,1988:605-616.
[23]ZHAO X Y,WU B,WANG L.Structural Response of Thin-walled Circular Steel Tubular Columns Filled with Demolished Concrete Lumps and Fresh Concrete[J].Construction and Building Materials,2016,129:216-242.
[24]CHEN W F,HAN D J.Plasticity for Structural Engineers[M].New York:Springer-Verlag,2007.
[25]朱美春.钢骨-方钢管自密实高强混凝土柱力学性能研究[D].大连:大连理工大学,2005.
ZHU Mei-chun.Research on Mechanical Behavior of Square Steel Tube Columns Filled with Steel-reinforced Self-consolidating High-strength Concrete[D].Dalian:Dalian University of Technology,2005.
[26]赵同峰.方钢管钢骨混凝土构件力学性能研究[D].沈阳:东北大学,2009.
ZHAO Tong-feng.Mechanical Behaviors Study of Square Tube Components Filled with Steel Reinforced Concrete[D].Shenyang:Northeastern University,2009.
[27]ZHU M C,LIU J X,WANG Q X,et al.Experimental Research on Square Steel Tubular Columns Filled with Steel-reinforced Self-consolidating High-strength Concrete Under Axial Load[J].Engineering Structures,2010,32(8):2278-2286.

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备注/Memo

备注/Memo:
收稿日期:2021-02-04
基金项目:国家重点研发计划项目(2016YFC0701203); 国家自然科学基金项目(51778240)
作者简介:吴 波(1968-),男,重庆市人,研究员,工学博士,E-mail:bowu@scut.edu.cn。
更新日期/Last Update: 2021-03-20