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智能复合钢-混凝土剪力墙循环性能的评估与数值研究:有限元模型的综合研究

Evaluation and Numerical Investigations of the Cyclic Behavior of Smart Composite Steel-Concrete Shear Wall: Comprehensive Study of Finite Element Model.

作者信息

Najm Hadee Mohammed, Ibrahim Amer M, Sabri Mohanad Muayad Sabri, Hassan Amer, Morkhade Samadhan, Mashaan Nuha S, Eldirderi Moutaz Mustafa A, Khedher Khaled Mohamed

机构信息

Department of Civil Engineering, Aligarh Muslim University, Aligarh 202002, India.

Department of Civil Engineering, College of Engineering, University of Diyala, Diyala 32001, Iraq.

出版信息

Materials (Basel). 2022 Jun 26;15(13):4496. doi: 10.3390/ma15134496.

Abstract

The composite shear wall has various merits over the traditional reinforced concrete walls. Thus, several experimental studies have been reported in the literature in order to study the seismic behavior of composite shear walls. However, few numerical investigations were found in the previous literature because of difficulties in the interaction behavior of steel and concrete. This study aimed to present a numerical analysis of smart composite shear walls, which use an infilled steel plate and concrete. The study was carried out using the ANSYS software. The mechanical mechanisms between the web plate and concrete were investigated thoroughly. The results obtained from the finite element (FE) analysis show excellent agreement with the experimental test results in terms of the hysteresis curves, failure behavior, ultimate strength, initial stiffness, and ductility. The present numerical investigations were focused on the effects of the gap, thickness of infill steel plate, thickness of the concrete wall, and distance between shear studs on the composite steel plate shear wall (CSPSW) behavior. The results indicate that increasing the gap between steel plate and concrete wall from 0 mm to 40 mm improved the stiffness by 18% as compared to the reference model, which led to delay failures of this model. Expanding the infill steel plate thickness to 12 mm enhanced the stiffness and energy absorption with a ratio of 95% and 58%, respectively. This resulted in a gradual drop in the strength capacity of this model. Meanwhile, increasing concrete wall thickness to 150 mm enhanced the ductility and energy absorption with a ratio of 52% and 32%, respectively, which led to restricting the model and reduced lateral offset. Changing the distance between shear studs from 20% to 25% enhanced the ductility and energy absorption by about 66% and 32%, respectively.

摘要

组合剪力墙相较于传统钢筋混凝土墙具有多种优点。因此,文献中已报道了多项试验研究,以研究组合剪力墙的抗震性能。然而,由于钢与混凝土相互作用行为的研究存在困难,以往文献中很少有数值研究。本研究旨在对采用填充钢板和混凝土的智能组合剪力墙进行数值分析。该研究使用ANSYS软件进行。深入研究了腹板与混凝土之间的力学机理。有限元分析结果在滞回曲线、破坏行为、极限强度、初始刚度和延性等方面与试验结果吻合良好。本数值研究重点关注了间隙、填充钢板厚度、混凝土墙厚度以及抗剪栓钉间距对组合钢板剪力墙(CSPSW)性能的影响。结果表明,与参考模型相比,将钢板与混凝土墙之间的间隙从0mm增加到40mm,刚度提高了18%,这导致该模型的破坏延迟。将填充钢板厚度增加到12mm,刚度和能量吸收分别提高了95%和58%。这导致该模型的强度能力逐渐下降。同时,将混凝土墙厚度增加到150mm,延性和能量吸收分别提高了52%和32%,这导致模型受到限制并减少了侧向位移。将抗剪栓钉间距从20%改为25%,延性和能量吸收分别提高了约66%和32%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e016/9267191/0c876e1cab2e/materials-15-04496-g001a.jpg

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