Source Journal of Chinese Scientific and Technical Papers
Included as T2 Level in the High-Quality Science and Technology Journals in the Field of Architectural Science
Core Journal of RCCSE
Included in the CAS Content Collection
Included in the JST China
Indexed in World Journal Clout Index (WJCI) Report
Volume 55 Issue 10
Oct.  2025
Turn off MathJax
Article Contents
LIU Xiaofan, WANG Zhangxuan, XIE Hongping, LIU Liang, TONG Teng, LI Xiaobo. Early-Age Behavior of Large-Scale Concrete-Filled Steel Tubular Members: Field Measurement, Simulation, and Neural Network Prediction[J]. INDUSTRIAL CONSTRUCTION, 2025, 55(10): 163-170. doi: 10.3724/j.gyjzG24022710
Citation: LIU Xiaofan, WANG Zhangxuan, XIE Hongping, LIU Liang, TONG Teng, LI Xiaobo. Early-Age Behavior of Large-Scale Concrete-Filled Steel Tubular Members: Field Measurement, Simulation, and Neural Network Prediction[J]. INDUSTRIAL CONSTRUCTION, 2025, 55(10): 163-170. doi: 10.3724/j.gyjzG24022710

Early-Age Behavior of Large-Scale Concrete-Filled Steel Tubular Members: Field Measurement, Simulation, and Neural Network Prediction

doi: 10.3724/j.gyjzG24022710
  • Received Date: 2024-02-27
  • Publish Date: 2025-10-31
  • For concrete-filled steel tube (CFST) columns with a large diameter, the cracking problems caused by the early-age hydration heat in the internal mass concrete urgently need to be studied. The temperature and strain in the concrete of the tower leg (a 2.1 m diameter CFST member) after pouring were measured. The tower leg is part of the world’s highest transmission tower, which stands 385 meters tall.The results showed that due to the early-age hydration of concrete, the temperature in its core region reached 97.0 ℃, with a maximum temperature difference of up to 30.6 ℃ compared to the steel wall surface. The tensile strain at the core region of the concrete reached 400×10-6 after 30 hours of pouring, leading to early-age cracking in the concrete. Additionally, to investigate the impact of size on the early-age behavior of CFST members, eight CFST specimens with different diameters were manufactured and measured for temperature and strain. Based on the “hydration-thermal-mechanical” constitutive model, a refined finite element model for CFST members was developed and validated against experimental results. Finally, an early-age hydration heat database considering the diameter of CFST members, ambient temperature, and concrete mix proportions was established. Based on a BP neural network, the early-age behavior of CFST members was predicted. The BP neural network enables accurate prediction of early-age hydration heat in CFST members, thereby helping to reduce the risk of early-age cracking.
  • loading
  • [1]
    汪大绥,姜文伟,包联进,等. 中央电视台(CCTV)新主楼的结构设计及关键技术[J]. 建筑结构,2007(5):1-7.
    [2]
    任进博. 钢管混凝土桁式和哑铃形截面拱桥应用与对比[J]. 铁道建筑技术,2022,59(11):120-125.
    [3]
    熊铁华,梁枢果,邹良浩,等. 大跨越钢管混凝土输电塔地震作用弹塑性分析[J]. 工程力学,2012,29(11):158-164.
    [4]
    邵帅,杨风利,程永锋,等. 大跨越输电高塔发展历程及其结构承载性能研究综述[J]. 中国电机工程学报,2022,42(增刊1):313-331.
    [5]
    孙建渊,谢津宝. 基于等效龄期的钢管拱内混凝土硬化过程热应力[J]. 同济大学学报(自然科学版),2019,47(6):755-763.
    [6]
    陈宝春,徐爱民,孙潮. 钢管混凝土拱桥温度内力计算时温差取值分析[J]. 中国公路学报,2000(2):54-58.
    [7]
    沈炯伟,杨沈红. 钢管混凝土拱桥拱脚水化热温度效应分析[J]. 结构工程师,2018,34(3):73-80.
    [8]
    周大为,邓年春,郭晓. 低温灌注条件下钢管混凝土水化热应力试验研究[J]. 铁道科学与工程学报,2020,17(11):2807-2815.
    [9]
    SUN J,XIE J. Simulation analysis of the hydration heat of large diameter CFST arch and its effects on loading age[J]. Applied Thermal Engineering,2019,150:482-491.
    [10]
    葛庆雷,郭德胜,陈明芳,等. 基于神经网络和改进遗传算法的混凝土水化热管冷参数优化[J]. 公路工程,2022,47(2):55-60.
    [11]
    马超. 基于BP神经网络的大体积混凝土温度场正反分析研究[D]. 长沙:长沙理工大学,2020.
    [12]
    HANSEN P F,PEDERSEN E J. Maturity computer for controlled curing and hardening of concrete[R]. Copenhagen:Swedish National Road and Transport Research Institute(VTI),1977.
    [13]
    DE S G. Finite element simulation of thermal cracking in massive hardening concrete elements using degree of hydration based material laws[J]. Computers & Structures,2002,80(27/28/29/30):2035-2042.
    [14]
    VAN B K. Prediction of temperature development in hardening concrete[J]. Prevention of Thermal Cracking in Concrete at Early Ages,1998,15:51-75.
    [15]
    中华人民共和国住房和城乡建设部. 混凝土结构设计规范:GB 50010—2010[S]. 北京:中国建筑工业出版社,2010.
    [16]
    YU Q,BAZANT Z P,WENDNER R. Improved algorithm for efficient and realistic creep analysis of large creep-sensitive concrete structures[J]. ACI Structural Journal,2012,109(5),665.
    [17]
    BAŽANT Z P,JIRÁSEK M. Temperature effect on water diffusion,hydration rate,creep and shrinkage[G] // Creep and Hygrothermal Effects in Concrete Structures.Berlin:Springer Verlag,2018:607-686.
  • 加载中

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Article Metrics

    Article views (9) PDF downloads(0) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return