|本期目录/Table of Contents|

[1]任 伟,李敬泉,李晓路.带翼缘截面混凝土受压区等效应力图系数研究[J].建筑科学与工程学报,2022,39(06):87-93.[doi:10.19815/j.jace.2021.09078]
 REN Wei,LI Jing-quan,LI Xiao-lu.Study on Equivalent Stress Diagram Coefficient of Concrete Compression Zone with Flange Section[J].Journal of Architecture and Civil Engineering,2022,39(06):87-93.[doi:10.19815/j.jace.2021.09078]
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带翼缘截面混凝土受压区等效应力图系数研究(PDF)
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《建筑科学与工程学报》[ISSN:1673-2049/CN:61-1442/TU]

卷:
39卷
期数:
2022年06期
页码:
87-93
栏目:
结构工程
出版日期:
2022-11-30

文章信息/Info

Title:
Study on Equivalent Stress Diagram Coefficient of Concrete Compression Zone with Flange Section
文章编号:
1673-2049(2022)06-0087-07
作者:
任 伟1,李敬泉1,李晓路2
(1. 长安大学 旧桥检测与加固技术交通运输行业重点实验室,陕西 西安 710064; 2. 广东省交通运输规划研究中心,广东 广州 510101)
Author(s):
REN Wei1, LI Jing-quan1, LI Xiao-lu2
(1. Key Laboratory of Transport Industry of Bridge Detection Reinforcement Technology, Chang'an University, Xi'an 710064, Shaanxi, China; 2. Guangdong Provincial Transportation Planning and Research Center, Guangzhou 510101, Guangdong, China)
关键词:
混凝土结构 带翼缘截面 等效应力图系数 解析解 简化算法
Keywords:
concrete structure flange section equivalent stress diagram coefficient analytical solution simplified calculation method
分类号:
U445.72
DOI:
10.19815/j.jace.2021.09078
文献标志码:
A
摘要:
针对带翼缘截面混凝土受压区等效应力图系数αβ计算方法空缺的问题,以截面平衡为建立基本方程的唯一条件,得到了考虑截面几何参数和材料参数的带翼缘截面等效应力图系数的解析解,分析了截面几何参数对等效应力图系数的影响。为提高解析公式的可应用性,对解析解进行了再拟合处理,得到了拟合度较高的αβ简化计算公式,并给出了常用截面等效应力图系数的建议值。结果表明:等效应力图系数α随梁腹板宽度与翼缘板宽度的比值b/bf的增大而减小,随翼缘板厚度与截面有效高度的比值hf/h0的增大而增大,总体呈曲面变化特征; βb/bf的增大而增大,随hf/h0的变化呈曲线变化,总体呈微扭曲面变化特征; 推荐的简化公式精确度较高,可直接应用于带翼缘混凝土截面的分析计算中,等效应力图系数建议值可为混凝土规范的修订提供科学支撑。
Abstract:
Aiming at the problem that the calculation method of the equivalent stress diagram coefficient α and β of concrete compression zone with flange section is vacant, the analytical solutions of the equivalent stress diagram coefficient of the flange section considering the geometric parameters and material parameters of the section were obtained by taking the section balance as the only condition for establishing the basic equation, and the influence of the geometric parameters on the equivalent stress diagram coefficient was analyzed. In order to improve the applicability of the analytical formula, the analytical solution was refitted, and the simplified calculation formulas of α and β with high fitting degree were obtained, and the recommended values of the equivalent stress diagram coefficients of the commonly used cross-section were given. The results show that the coefficient α decreases with the increase of the ratio of beam web width to flange plate width b/bf, and increases with the increase of the ratio of flange plate thickness to section effective depth hf/h0, showing the characteristics of surface variation. β increases with the increase of b/bf, and shows a curve change with the change of hf/h0, showing the characteristics of slightly distorted surface. The recommended simplified formula has high accuracy and can be directly applied to the analysis and calculation of concrete section with flange. The recommended value of equivalent stress diagram coefficient can provide scientific support for the revision of concrete specification.

参考文献/References:

[1] 混凝土结构设计规范:GB 50010—2010[S].北京:中国建筑工业出版社,2011.
Code for Design of Concrete Structures:GB 50010—2010[S].Beijing:China Architecture & Building Press,2011.
[2]过镇海.钢筋混凝土原理[M].3版.北京:清华大学出版社,2013.
GUO Zhen-hai.Principles of Reinforced Concrete[M].3rd ed.Beijing:Tsinghua University Press,2013.
[3]张树仁,黄 侨.钢筋混凝土圆、环形截面偏心受压构件强度的试验研究[J].土木工程学报,1987,20(4):1-14.
ZHANG Shu-ren,HUANG Qiao.Experimental Research on Strength of R.C.Members with Circular or Ring Cross Section Subjected to Eccentric Compression[J].China Civil Engineering Journal,1987,20(4):1-14.
[4]王文炜.纤维复合材料加固钢筋混凝土梁抗弯性能研究[D].大连:大连理工大学,2003.
WANG Wen-wei.Study on Flexural Behavior of Reinforced Concrete Beams Strengthened with Fiber Reinforced Plastics(FRP)[D].Dalian:Dalian University of Technology,2003.
[5]王庆华,熊志斌.钢筋混凝土截面等效矩形应力图系数的计算[J].南昌工程学院学报,2011,30(6):58-61.
WANG Qing-hua,XIONG Zhi-bin.Calculation of Equivalent Rectangular Stress Block Coefficients of Reinforced Concrete Section[J].Journal of Nanchang Institute of Technology,2011,30(6):58-61.
[6]刘凤翰.混凝土结构正截面设计α1β1系数研究与应用[J].四川建筑科学研究,2012,38(4):55-57.
LIU Feng-han.The Concrete Structure is α11 and the Coefficients of Cross-section Design and Application[J].Sichuan Building Science,2012,38(4):55-57.
[7]丁亚进,张 普.普通和高强混凝土等效矩形应力图系数通式[J].结构工程师,2019,35(5):106-110.
DING Ya-jin,ZHANG Pu.General Formula for Equivalent Rectangle Stress Coefficient of Ordinary and High Strength Concrete[J].Structural Engineers,2019,35(5):106-110.
[8]朱莉萍,熊 杰.圆形截面偏心受压构件的等效应力图形设计方法[J].工业建筑,2001,31(5):75-77.
ZHU Li-ping,XIONG Jie.A Design Method of Eccentrically Compressed Round-section Member with Equivalent Stress Figure[J].Industrial Construction,2001,31(5):75-77.
[9]孙铁锋,杨德健.各种形状截面构件等效应力图的特征参数计算方法研究[J].建筑技术开发,2008,35(10):4-6.
SUN Tie-feng,YANG De-jian.Cross-section of Various Shapes,Such as Components of a Bid to the Calculation Method Parameters[J].Building Technique Development,2008,35(10):4-6.
[10]NAAMAN A.Rectangular Stress Block and T-section Behavior[J].PCI Journal,2002,47:106-112.
[11]SINGH B,PATEL V,OJHA P N,et al.Analysis of Stress Block Parameters for High Strength Concrete[J].Journal of Asian Concrete Federation,2020,6(1):1-9.
[12]YEON K S,YI J C,CHOI Y S.Stress-strain Relation and Stress Block Parameters on Flexural Compressive Strength of Polymer Concrete[J].Journal of the Korean Society of Agricultural Engineers,2008,50(5):29-37.
[13]PENG J,HO J C M,PAM H J.Modification on Equivalent Stress Block of Normal-strength Concrete by Incorporating Strain Gradient Effects[J].Procedia Engineering,2011,14:2246-2253.
[14]KARTHIK M M,MANDER J B.Stress-block Parameters for Unconfined and Confined Concrete Based on a Unified Stress-strain Model[J].Journal of Structural Engineering,2011,137(2):270-273.
[15]AL-KAMAL M K.Nominal Flexural Strength of High-strength Concrete Beams[J].Advances in Concrete Construction,2019,7(1):1-9.
[16]VAN SCHALKWYK F,KEARSLEY E.The Influence of Concrete Compressive Strength and Specimen Size on the Compression Stress Block Parameters of Reinforced Concrete[J].Journal of the South African Institution of Civil Engineering,2018,60(4):34-44.
[17]TRAN T T,PHAM T M,HAO H.Rectangular Stress-block Parameters for Fly-ash and Slag Based Geopolymer Concrete[J].Structures,2019,19:143-155.
[18]TEMPEST B,GERGELY J,SKIPPER A.Reinforced Geopolymer Cement Concrete in Flexure:A Closer Look at Stress-strain Performance and Equivalent Stress-block Parameters[J].PCI Journal,2016,61(6):30-43.
[19]DEEPA RAJ S,GANESAN N,ABRAHAM R,et al.Development of Stress Block Parameters for Geopolymer Concrete[J].Indian Concrete Journal,2015,89(9):47-56.
[20]陆春阳,苏益声.关于混凝土多边形非均匀受压区的等效矩形应力图探讨[J].广西大学学报(自然科学版),2003,28(2):146-150.
LU Chun-yang,SU Yi-sheng.Investigation on Characteristic Values of Equivalent Rectangular Stress Block of Non-uniform Compression Stress in Polygon[J].Journal of Guangxi University,2003,28(2):146-150.

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备注/Memo

备注/Memo:
收稿日期:2021-09-23
基金项目:国家重点研发计划项目(2021YFB1600300); 陕西省自然科学基础研究计划项目(2021JM-171)
作者简介:任 伟(1975-),男,陕西西安人,副教授,工学博士,博士后,E-mail:rw20062@163.com。通信作者:李晓路(1983-),女,陕西西安人,工程师,工学硕士,E-mail:4224170@qq.com。
更新日期/Last Update: 2022-12-20