采用基于力的设计和改进的基于性能的塑性设计方法设计土耳其地震动作用下的钢筋混凝土建筑抗震性能评价

Q2 Engineering
Rohit Vyas, Bush Rc, Abdullah Ansari, Kaushik Gondaliya, Anoop I. Shirkol
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引用次数: 0

摘要

基于性能的塑性设计(PBPD)是一种广泛使用的方法,通过允许控制非线性行为来改善结构的抗震性能。该方法基于能量平衡原理和预定义的目标漂移。然而,它对横向荷载计算的依赖往往导致结构构件强度的降低,特别是在中低层建筑中,梁段经常不能满足安全设计要求。这一限制引起了人们对pbpd设计结构的安全性和可靠性的关注。为了解决这个问题,提出了一种改进的PBPD方法,该方法结合了印度设计规范中规定的梁的最小配筋标准。采用改进的PBPD方法设计了10层钢筋混凝土特殊抗弯矩框架,并与传统的基于力的框架设计方法进行了比较。在土耳其强烈地震动下进行了非线性推覆分析和非线性时程分析,以评估两种设计的抗震性能。结果表明,改进后的PBPD方法显著提高了结构的抗震性能。PBPD框架考虑的最大抗震性能点位于防倒塌范围内,其整体漂移比力基设计框架低19.82%。增量动力分析进一步表明,在改进的PBPD框架中,只有一次地面运动超过0.02的目标漂移。此外,脆弱性分析表明,PBPD框架完全失效的概率降低到17.2%,表明与FBD框架相比,PBPD框架具有更高的鲁棒性和可靠性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Seismic performance assessment of RC buildings under Turkey ground motions designed by Force Based Design and improved performance based plastic design method

Seismic performance assessment of RC buildings under Turkey ground motions designed by Force Based Design and improved performance based plastic design method

Performance-Based Plastic Design (PBPD) is a widely used method for improving the seismic performance of structures by allowing controlled nonlinear behavior. The method is based on energy balance principles and a predefined target drift. However, its reliance on lateral load calculations often results in reduced strength of structural members, particularly in low- to medium-rise buildings where beam sections frequently fail to meet safe design requirements. This limitation raises concerns about the safety and reliability of PBPD-designed structures. To address this issue, an improved PBPD method is proposed by incorporating the minimum reinforcement criteria for beams as specified in the Indian design code. A 10-story reinforced concrete special moment-resisting frame was designed using the improved PBPD method and compared with a frame designed using the conventional force-based design approach. Nonlinear Pushover Analysis and Nonlinear Time History Analysis under strong Turkish ground motions were performed to evaluate the seismic performance of both designs. The results indicate that the improved PBPD method significantly enhances the seismic performance of the structure. The maximum considered earthquake level performance point of the PBPD frame lies within the Collapse Prevention range, while its overall drift ratio is 19.82% lower than that of the Force Based Design (FBD) frame. Incremental Dynamic Analysis further shows that only one ground motion exceeded the target drift of 0.02 for the improved PBPD frame. Additionally, fragility analysis demonstrates that the probability of complete failure is reduced to 17.2% for the PBPD frame, indicating superior robustness and reliability compared to the FBD frame.

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来源期刊
Asian Journal of Civil Engineering
Asian Journal of Civil Engineering Engineering-Civil and Structural Engineering
CiteScore
2.70
自引率
0.00%
发文量
121
期刊介绍: The Asian Journal of Civil Engineering (Building and Housing) welcomes articles and research contributions on topics such as:- Structural analysis and design - Earthquake and structural engineering - New building materials and concrete technology - Sustainable building and energy conservation - Housing and planning - Construction management - Optimal design of structuresPlease note that the journal will not accept papers in the area of hydraulic or geotechnical engineering, traffic/transportation or road making engineering, and on materials relevant to non-structural buildings, e.g. materials for road making and asphalt.  Although the journal will publish authoritative papers on theoretical and experimental research works and advanced applications, it may also feature, when appropriate:  a) tutorial survey type papers reviewing some fields of civil engineering; b) short communications and research notes; c) book reviews and conference announcements.
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