Experimental Study on the Seismic Performance of Insulated Single-Sided Composite Shear Walls under Different Shear Spans and Axial Compression Ratios

IF 1.5 4区 工程技术 Q3 CONSTRUCTION & BUILDING TECHNOLOGY Advances in Civil Engineering Pub Date : 2024-05-02 DOI:10.1155/2024/8818666
Qiang Sun, Shoufeng Zhang, Ke Liu, Xinyi Wu, Guowei Zhang, Bei Cheng
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Abstract

The new insulated single-sided composite shear wall (NISCSW) composition involves setting a precast wall panel on one side and an insulation panel on the other side, with a middle cavity for casting concrete. To investigate the seismic performance of NISCSW under different shear spans and axial compression ratios, eight specimens are made, including six composite and two cast-in-place walls. The shear span ratio is controlled at 1.2 and 1.9, and the axial compression ratio is controlled at 0.1, 0.3, and 0.4. The specimens are subjected to quasistatic tests to analyze failure modes, hysteresis characteristics, stiffness degradation, displacement ductility, and energy dissipation capacity and to compare the seismic performance of the composite and cast-in-place walls. Results show that for each composite specimen, under the same axial compression ratio, the large shear span ratio specimen has a lower ultimate bearing capacity and faster stiffness degradation but better ductility and postyield energy dissipation capacity. Under the same shear span ratio, the high axial compression ratio specimen had a higher ultimate bearing capacity, slightly worse ductility, and similar stiffness degradation and energy dissipation capacity compared to other specimens. Compared with the cast-in-place specimen with the same axial compression ratio, the composite specimen failure mode and hysteresis characteristics are similar, and the ductility and energy dissipation capacity are comparable to the cast-in-place shear wall specimen, indicating that NISCSW has similar seismic performance to the cast-in-place shear wall under conditions of a large shear span ratio and high axial compression ratio. Based on the test results, the program ABAQUS is used to simulate the specimens. Compared with the test results, the simulated specimen failure mode is consistent with the test results, and the hysteresis and skeleton curves are consistent with the test curve, indicating that the model is correct, reliable, and can be verified with test results.
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不同剪力跨度和轴向压缩比下隔热单面复合剪力墙抗震性能的实验研究
新型隔热单面复合剪力墙(NISCSW)的组成包括一侧设置预制墙板,另一侧设置隔热板,中间空腔用于浇注混凝土。为了研究 NISCSW 在不同剪切跨度和轴向压缩比下的抗震性能,我们制作了八个试件,包括六个复合墙体和两个现浇墙体。剪跨比控制在 1.2 和 1.9,轴压比控制在 0.1、0.3 和 0.4。对试件进行静力试验,分析破坏模式、滞后特性、刚度退化、位移延性和耗能能力,并比较复合墙体和现浇墙体的抗震性能。结果表明,对于每个复合材料试件,在相同轴向压缩比下,大剪跨比试件的极限承载力较低,刚度退化较快,但延性和屈服后消能能力较好。在相同的剪跨比下,高轴压比试样的极限承载力较高,延性稍差,刚度退化和耗能能力与其他试样相似。与相同轴压比的现浇试件相比,复合试件的破坏模式和滞后特性相似,延性和耗能能力与现浇剪力墙试件相当,表明在大剪跨比和高轴压比条件下,NISCSW具有与现浇剪力墙相似的抗震性能。根据试验结果,使用 ABAQUS 程序对试件进行了模拟。与试验结果相比,模拟试件的破坏模式与试验结果一致,滞后曲线和骨架曲线与试验曲线一致,表明模型正确、可靠,并可与试验结果进行验证。
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来源期刊
Advances in Civil Engineering
Advances in Civil Engineering Engineering-Civil and Structural Engineering
CiteScore
4.00
自引率
5.60%
发文量
612
审稿时长
15 weeks
期刊介绍: Advances in Civil Engineering publishes papers in all areas of civil engineering. The journal welcomes submissions across a range of disciplines, and publishes both theoretical and practical studies. Contributions from academia and from industry are equally encouraged. Subject areas include (but are by no means limited to): -Structural mechanics and engineering- Structural design and construction management- Structural analysis and computational mechanics- Construction technology and implementation- Construction materials design and engineering- Highway and transport engineering- Bridge and tunnel engineering- Municipal and urban engineering- Coastal, harbour and offshore engineering-- Geotechnical and earthquake engineering Engineering for water, waste, energy, and environmental applications- Hydraulic engineering and fluid mechanics- Surveying, monitoring, and control systems in construction- Health and safety in a civil engineering setting. Advances in Civil Engineering also publishes focused review articles that examine the state of the art, identify emerging trends, and suggest future directions for developing fields.
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