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纤维水泥基复合材料和混凝土柱的非弹性响应及有限元预测

Inelastic Responses and Finite Element Predictions of Fiber Cementitious Composite and Concrete Columns.

作者信息

Cho Chang-Geun, Lee Sun-Ju

机构信息

Department of Architectural Engineering, Chosun University, Gwangju 61452, Korea.

出版信息

Materials (Basel). 2021 Apr 24;14(9):2180. doi: 10.3390/ma14092180.

DOI:10.3390/ma14092180
PMID:33923189
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8123199/
Abstract

In this research, reinforced concrete (RC) and strain-hardening cementitious composite (SHCC) columns subjected to lateral loads combined with a constant load were investigated, both by experiments and predictions, with two distributed inelastic finite element models established by the stiffness and flexibility formulations. SHCC applied in the column plastic hinge region could not only enhance the lateral load and displacement capacities of columns but also offer effective advantages in the control of bending and shear cracks induced by multiple microcracks, the prevention of the spalling of cover concrete, and the resistance to buckling of steel bars. With the layered cross-sectional approach using constitutive laws of SHCC considering a proposed model of the post-cracked high-ductile tensile characteristics, as well as concrete and reinforcing steel bars, an inelastic beam-column finite element model was presented with a distributed flexibility formulation. In comparison with experiments concerning the RC and reinforced strain-hardening cementitious composite (R-SHCC) columns, the current flexibility method showed relatively accurate estimations in the lateral load and displacement responses of column systems as well as in localized nonlinear responses of cross-section as estimated in axial strains of longitudinal reinforcing steel bars. In comparison with the stiffness method, the current flexibility method gave more accurate solutions at both element and structural levels, as manifested in the experiments and analysis solutions.

摘要

在本研究中,通过实验和预测对承受侧向荷载与恒定荷载组合作用的钢筋混凝土(RC)柱和应变硬化水泥基复合材料(SHCC)柱进行了研究,采用刚度和柔度公式建立了两个分布式非弹性有限元模型。应用于柱塑性铰区域的SHCC不仅可以提高柱的侧向荷载和位移能力,而且在控制由多条微裂缝引起的弯曲和剪切裂缝、防止混凝土保护层剥落以及抵抗钢筋屈曲方面具有显著优势。采用考虑所提出的开裂后高延性拉伸特性模型以及混凝土和钢筋本构关系的分层截面方法,提出了一种具有分布式柔度公式的非弹性梁柱有限元模型。与关于RC柱和钢筋应变硬化水泥基复合材料(R-SHCC)柱的实验相比,当前的柔度方法在柱系统的侧向荷载和位移响应以及纵向钢筋轴向应变估计的截面局部非线性响应方面显示出相对准确的估计。与刚度方法相比,当前的柔度方法在单元和结构层面都给出了更准确的解,这在实验和分析解中都有体现。

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https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9505/8123199/a36e956c2248/materials-14-02180-g003.jpg
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https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9505/8123199/7d268b935225/materials-14-02180-g007.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9505/8123199/263f7267588d/materials-14-02180-g008.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9505/8123199/af234ac6853b/materials-14-02180-g009.jpg
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https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9505/8123199/4f2ec90873f7/materials-14-02180-g012.jpg

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本文引用的文献

1
Research on Bonding and Shrinkage Properties of SHCC-Repaired Concrete Beams.基于应变硬化水泥基复合材料(SHCC)修复混凝土梁的粘结与收缩性能研究
Materials (Basel). 2020 Apr 9;13(7):1757. doi: 10.3390/ma13071757.
2
Developing and Testing of Strain-Hardening Cement-Based Composites (SHCC) in the Context of 3D-Printing.基于3D打印的应变硬化水泥基复合材料(SHCC)的开发与测试
Materials (Basel). 2018 Aug 7;11(8):1375. doi: 10.3390/ma11081375.