部分组合混凝土夹心板在温度作用下的力学行为
CSTR:
作者:
作者单位:

1.长沙理工大学 土木工程学院,长沙 410114;2.杭州交通投资集团有限公司,杭州 233290;3.中国电建集团贵阳勘测设计研究院有限公司,贵阳 550081;4.成都基准方中建筑设计有限公司,长沙 410000

作者简介:

梁建国(1963- ),男,教授,主要从事混凝土及砌体结构基本理论应用研究,E-mail: jgliang1963@163.com。
LIANG Jianguo (1963- ), professor, main research interests: application of basic theory of concrete and masonry structure, E-mail: jgliang1963@163.com.

中图分类号:

TU311.4

基金项目:

湖南省教育厅优秀青年项目(18B141)


Mechanical behavior of partially concrete sandwich panels under temperature action
Author:
Affiliation:

1.College of Civil Engineering, Changsha University of Science and Technology, Changsha 410114, P. R. China;2.Hangzhou Communications Investment Group Co., Ltd, Hangzhou 233290, P. R. China;3.Power of China Guiyang Engineering Co., Ltd, Guiyang 550081, P. R. China;4.Chengdu Benchmark Fangzhong Architectural Design Co., Ltd., Changsha 410000, P. R. China

Fund Project:

Excellent Youth Project of Hunan Education Department (No. 18B141)

  • 摘要
  • | |
  • 访问统计
  • |
  • 参考文献 [20]
  • |
  • 相似文献 [20]
  • | | |
  • 文章评论
    摘要:

    为了减轻作为建筑围护结构时混凝土夹心板因承受内外叶温度差作用而导致墙体开裂或破坏的情况,对其在温度作用下的内力和变形进行研究。将混凝土夹心板内外叶连接件匀质化,并假设内外叶混凝土只产生弯曲变形且内外叶的弯曲曲率不同,推导出混凝土夹心板的界面应力的解析解,从而得到夹心板内外叶最不利截面位置及其内力和挠度的理论计算公式,并利用有限元软件ABAQUS对理论公式进行验证。结果表明:理论公式与有限元分析结果吻合较好,且部分组合混凝土夹心板内外叶的跨中最不利截面内力与连接件刚度无关,跨中最大挠度随连接件刚度增大而增大,但增幅很小。

    Abstract:

    In order to reduce the crack or damage of the wall caused by the temperature difference between the inner and outer blades when the concrete sandwich slab is used as building envelope, the internal force and deformation of the concrete sandwich slab under the temperature action are studied. The internal and external blade connectors of concrete sandwich slab were homogenized, and the analytical solution of interfacial stress of concrete sandwich slab was deduced, assuming that the internal and external blade only produced bending deformation and the bending curvature of the internal and external blade were different. Thus, the theoretical calculation formula of the position of the most disadvantageous section of internal and external blade of concrete sandwich slab, as well as the internal force and deflection of internal and external blade were obtained, and the theoretical formulas were verified by the finite element software ABAQUS. The results show that the theoretical formula is in good agreement with the finite element analysis results, the internal forces of the most unfavorable section in mid-span of the inner and outer blades of partial composite concrete sandwich slabs have nothing to do with the stiffness of the connectors, and the maximum mid-span deflection increases with the stiffness of the connectors, but the increase is small.

    参考文献
    [1] LEE B J, PESSIKI S. Development of a precast prestressed concrete three-wythe sandwich wall panels [R]. Chicago: Precast/Prestressed Concrete Institute, 2003.
    [2] ZHOU Z W, CHEN M X, XIONG Y P, et al. Experimental and mixed analytical-numerical studies for free and forced vibrations of Z-reinforced sandwich plates stiffened by steel ribs [J]. Composite Structures, 2021, 272: 114221.
    [3] 吴香国, 陶晓坤, 于士彦, 等. 高性能复合夹芯外挂墙板应用研究进展[J]. 建筑结构, 2020, 50(Sup1): 611-616.WU X G, TAO X K, YU S Y, et al. Research progress of high-performance composite sandwich panel [J]. Building Structure, 2020, 50(Sup1): 611-616. (in Chinese)
    [4] 孟宪宏, 周阿龙, 刘海成, 等. 夹心保温外墙板连接件力学性能试验[J]. 沈阳建筑大学学报(自然科学版), 2014, 30(2): 227-234.MENG X H, ZHOU A L, LIU H C, et al. Experiments of mechanical properties on the connectors of sandwich insulation wallboard [J]. Journal of Shenyang Jianzhu University (Natural Science), 2014, 30(2): 227-234. (in Chinese)
    [5] DJAMA K, MICHEL L, FERRIER E, et al. Numerical modelling of a truss core sandwich panel: Influence of the connectors, geometry and mechanical parameters on the mechanical response [J]. Composite Structures, 2020, 245: 112335.
    [6] 梁建国, 刘宇新, 罗家豪, 等.逐时温度变化对混凝土夹心板的温度作用[J].建筑结构学报,2022, 43(5): 217-222.LIANG J G, LIU Y X, LUO J H, et al. The effect of hourly temperature change on the temperature of concrete sandwich slab [J]. Journal of Building Structures, 2022, 43(5): 217-222. (in Chinese)
    [7] BEDFORD A, LIECHTI K M. Mechanics of materials [M]. Cham: Springer International Publishing, 2020.
    [8] NAJMI H, LUCHE J, ROGAUME T. Thermal decomposition of multilayer honeycomb core laminate sandwich composite panels in cone calorimeter apparatus- Effect of the top decomposed layer [J]. Journal of Composite Materials, 2021, 55(17): 2349-2368.
    [9] 邓军, 黄培彦. CFRP板与钢梁粘结剥离破坏的试验研究[J]. 建筑结构学报, 2007, 28(5): 124-129.DENG J, HUANG P Y. Experimental study on debonding failure of steel beams strengthened with a CFRP plate [J]. Journal of Building Structures, 2007, 28(5): 124-129. (in Chinese)
    [10] ILKHANI M H, NADERPOUR H, KHEYRODDIN A. Experimental investigation on behavior of FRP-strengthened RC beams subjected to combined twisting-bending moments [J]. Engineering Structures, 2021, 242: 112617.
    [11] JIANG Z Q, HUANG Y, CHANDRA A. Thermal stresses in layered electronic assemblies [J]. Journal of Electronic Packaging, 1997, 119(2): 127-132.
    [12] WONG E H. Thermal stresses in the discrete joints of sandwiched structures [J]. Composite Structures, 2015, 125: 72-80.
    [13] WONG E H. Design analysis of sandwiched structures experiencing differential thermal expansion and differential free-edge stretching [J]. International Journal of Adhesion and Adhesives, 2016, 65: 19-27.
    [14] SALMON D C, EINEA A. Partially composite sandwich panel deflections [J]. Journal of Structural Engineering, 1995, 121(4): 778-783.
    [15] PCI Industry Handbook Committee. PCI design handbook: Precast and prestressed [M]. 7th Edition. Chicago: Precast/Prestressed Concrete Institute, 2010.
    [16] 预制混凝土外挂墙板工程技术规程: JGJ/T 458-2018 [S]. 北京: 中国建筑工业出版社, 2018.Tehcnical standard for application of precast concrete facade panels: JGJ/T 458—2018 [S]. Beijing: China Architecture & Building Press, 2018. (in Chinese)
    [17] BAI F T, DAVIDSON J S. Analysis of partially composite foam insulated concrete sandwich structures [J]. Engineering Structures, 2015, 91: 197-209.
    [18] NOOR A K, BURTON W S, BERT C W. Computational models for sandwich panels and shells [J]. Applied Mechanics Reviews, 1996, 49(3): 155-199.
    [19] 沈观林, 胡更开. 复合材料力学[M]. 北京: 清华大学出版社, 2006.SHEN G L, HU G K. Mechanics of composite materials [M]. Beijing: Tsinghua University Press, 2006. (in Chinese)
    [20] 李砚波, 章少华, 夏宝阳. 混凝土夹芯板滑移与变形的理论计算及分析[J]. 工程力学, 2008, 25(1): 173-178, 185.LI Y B, ZHANG S H, XIA B Y. Theoretical calculation and analysis of slip and deformation for concrete sandwich panel [J]. Engineering Mechanics, 2008, 25(1): 173-178, 185. (in Chinese)
    引证文献
    网友评论
    网友评论
    分享到微博
    发 布
引用本文

梁建国,雷灵芝,王吉波,李诚鄀,刘宇新.部分组合混凝土夹心板在温度作用下的力学行为[J].土木与环境工程学报(中英文),2023,45(5):173-180. LIANG Jianguo, LEI Lingzhi, WANG Jibo, LI Chengruo, LIU Yuxin. Mechanical behavior of partially concrete sandwich panels under temperature action[J]. JOURNAL OF CIVIL AND ENVIRONMENTAL ENGINEERING,2023,45(5):173-180.10.11835/j. issn.2096-6717.2021.177

复制
分享
文章指标
  • 点击次数:343
  • 下载次数: 541
  • HTML阅读次数: 61
  • 引用次数: 0
历史
  • 收稿日期:2021-06-18
  • 在线发布日期: 2023-08-24
文章二维码