Seismic performance of building structures based on improved viscous damper seismic design

IF 0.7 Q4 ENGINEERING, MECHANICAL Journal of Vibroengineering Pub Date : 2024-06-06 DOI:10.21595/jve.2024.23988
Yingfei Guo, Sen Wang, Shuyuan Zhang
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Abstract

Earthquakes have serious destructive effects on building structures, and effective seismic design is the key to building design. In order to reduce the damage of earthquakes to building structures, seismic design of buildings is based on improved viscous dampers. First, the displacement seismic design was studied and a displacement-based structural seismic model was constructed. In addition, analyzing traditional viscous dampers, an improved viscous damper is adopted based on it. Through equivalent damping expression, a displacement seismic model based on the improved viscous damper is constructed. Finally, two targets, frequent and rare earthquakes, were selected for experimental analysis. In frequent earthquake experiments, the improved viscous damper structure increased the shock absorption rate by 35.65 % compared to the no-structure design. In the shear force comparison, the maximum shear force of the improved viscous damper structure in the HB wave X direction is 2186 KN, which is the smallest shear force among the three structural designs. In a rare earthquake experiment, the maximum value of the floor shear force in the X-direction of the Humbolt bay wave of the proposed improved viscous damper structure was 8696 KN. Compared with other structures, the floor shear force was the smallest. In the comparison of floor displacements, the maximum inter-story displacement in the Humbolt bay wave Y-direction of the proposed improved viscous damper structure is 162 mm, which is the smallest inter-story displacement compared with other structures. In addition, the structure apex displacement was also compared. The structure apex displacement value of the improved viscous damper structure was lower than that of other structures and was in the slight damage range. The overall seismic effect was significantly better than other structural designs. The research content is conducive to optimizing the application effect of viscous dampers and provides technical reference for the seismic design of building structures.
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基于改进的粘性阻尼器抗震设计的建筑结构抗震性能
地震对建筑结构具有严重的破坏作用,有效的抗震设计是建筑设计的关键。为了减少地震对建筑结构的破坏,建筑抗震设计以改进的粘性阻尼器为基础。首先,研究了位移抗震设计,构建了基于位移的结构抗震模型。此外,在分析传统粘性阻尼器的基础上,采用了改进型粘性阻尼器。通过等效阻尼表达式,构建了基于改进型粘滞阻尼器的位移地震模型。最后,选择了频发地震和罕见地震两个目标进行实验分析。在频发地震实验中,与无结构设计相比,改进型粘滞阻尼结构的减震率提高了 35.65%。在剪切力对比中,改进型粘性阻尼结构在 HB 波 X 方向的最大剪切力为 2186 KN,是三种结构设计中最小的剪切力。在一次罕见地震实验中,改进型粘滞阻尼结构在洪堡湾波 X 方向的楼板剪力最大值为 8696 KN。与其他结构相比,楼板剪力最小。在楼板位移对比中,改进型粘滞阻尼结构在洪堡湾波 Y 方向的最大层间位移为 162 mm,与其他结构相比,层间位移最小。此外,还对结构顶点位移进行了比较。改进型粘滞阻尼结构的结构顶点位移值低于其他结构,属于轻微破坏范围。整体抗震效果明显优于其他结构设计。研究内容有利于优化粘滞阻尼器的应用效果,为建筑结构抗震设计提供技术参考。
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来源期刊
Journal of Vibroengineering
Journal of Vibroengineering 工程技术-工程:机械
CiteScore
1.70
自引率
0.00%
发文量
97
审稿时长
4.5 months
期刊介绍: Journal of VIBROENGINEERING (JVE) ISSN 1392-8716 is a prestigious peer reviewed International Journal specializing in theoretical and practical aspects of Vibration Engineering. It is indexed in ESCI and other major databases. Published every 1.5 months (8 times yearly), the journal attracts attention from the International Engineering Community.
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