Seismic performance analysis and control method of composite coupled shear wall with steel plate-fiber reinforced concrete coupling beams

IF 2.2 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
Yangyang Xia, Chenming Shen, Yuanyuan Xia, Haizeng Yang, Youchun Wang and Jianbo Tian
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Abstract

This paper based on the study of steel plate-fiber reinforced concrete coupling beam components, designs a basic model of composite coupled shear walls with steel plate-fiber reinforced concrete coupling beams. The seismic performance of this model was numerically simulated using the ABAQUS finite element software, analyzing the stress distribution of various parts and the development pattern of plastic hinges in the structure. It also examines how factors such as axial compression ratio, coupling beam cross-sectional dimensions, single-sided wall limb aspect ratio, and total floor height affect the seismic performance of this type of coupled shear wall, providing a reasonable range for axial compression ratios and coupling ratios for composite coupled shear walls with steel plate-fiber reinforced concrete coupling beams. Based on the obtained reasonable axial compression ratio and coupling ratio, and using the analytical solution of the continuum method, a method for controlling the seismic performance of coupled shear wall structures was proposed. Results show that the composite coupled shear walls with steel plate-fiber reinforced concrete coupling beams exhibit high load-bearing capacity and lateral stiffness under inverted triangular horizontal loads, with good displacement ductility and strong energy dissipation capability, making it an excellent seismic performance coupled shear wall system. As the axial compression ratio increases, the displacement corresponding to the yield point and peak point of the structure gradually decreases, and the displacement ductility coefficient shows a trend of first increasing and then decreasing; it is recommended that when designing steel plate-fiber reinforced concrete coupling beam-coupled shear walls, the axial compression ratio should not exceed 0.3. Numerical analysis of coupling ratio-related parameters indicates that in high-intensity seismic design areas, the range of coupling ratios should be between 45% and 60%.
钢板-纤维钢筋混凝土耦合梁复合耦合剪力墙的抗震性能分析与控制方法
本文在对钢板-纤维加固混凝土耦合梁构件研究的基础上,设计了钢板-纤维加固混凝土耦合梁复合耦合剪力墙的基本模型。使用 ABAQUS 有限元软件对该模型的抗震性能进行了数值模拟,分析了结构中各部分的应力分布和塑性铰的发展模式。研究还探讨了轴压比、耦合梁截面尺寸、单侧墙肢长宽比和总层高等因素对该类型耦合剪力墙抗震性能的影响,为钢板-纤维增强混凝土耦合梁复合耦合剪力墙提供了合理的轴压比和耦合比范围。根据所获得的合理轴压比和耦合比,并利用连续体法的分析求解,提出了一种控制耦合剪力墙结构抗震性能的方法。结果表明,采用钢板-纤维增强混凝土耦合梁的复合耦合剪力墙在倒三角水平荷载作用下表现出较高的承载力和侧向刚度,具有良好的位移延性和较强的耗能能力,是一种抗震性能优良的耦合剪力墙体系。随着轴压比的增大,结构屈服点和峰值点对应的位移逐渐减小,位移延性系数呈先增大后减小的趋势;建议在设计钢板-纤维增强混凝土耦合梁-耦合剪力墙时,轴压比不宜超过 0.3。耦合比相关参数的数值分析表明,在高烈度地震设计区,耦合比的范围应在 45%-60%之间。
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来源期刊
Materials Research Express
Materials Research Express MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
4.50
自引率
4.30%
发文量
640
审稿时长
12 weeks
期刊介绍: A broad, rapid peer-review journal publishing new experimental and theoretical research on the design, fabrication, properties and applications of all classes of materials.
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