Seismic behavior of RC frames with Choh-kat openings: a novel strut model approach

IF 3.8 2区 工程技术 Q2 ENGINEERING, GEOLOGICAL
Shujaat Hussain Buch, Javed Ahmad Bhat, Muhammad Dilawar Bhat, Mohammad Iqbal Mirza
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引用次数: 0

Abstract

This study investigates the seismic behavior of Masonry Infill Reinforced Concrete (RC) frames with Choh-kat-framed openings, common in the Kashmir region. It challenges traditional assumptions about infill structures, emphasizing their structural significance and providing new insights into how these infills influence seismic performance. The primary focus is on analyzing the impact of Choh-kat-framed openings on the lateral stiffness of RC frames under seismic loading and developing a novel strut model for predicting seismic response. A Finite Element (FE) approach is employed to simulate the complex interactions between the RC frame and Choh-kat-framed infills. The analysis considers several response parameters, including lateral stiffness, crack propagation patterns, load-bearing capacity, and energy dissipation. The study also examines the effects of different opening sizes, aspect ratios, locations, and multiple openings on structural performance. A key innovation is the introduction of an alteration factor \(\beta _{wc}\) to account for stiffness, alongside a new 4-strut model for Choh-kat-framed openings. The results indicate that Choh-kat-framed openings up to 50% of the infill area contribute to decreased stiffness but delay crack propagation. The optimal opening area ratio for enhancing stiffness is 12%. Choh-kat additions significantly increase stiffness, especially at the top corners of the openings. The proposed strut model, validated by FEMA 356 guidelines, accurately predicts equivalent strut widths for pier and spandrel struts. In summary, this study offers a novel approach to understanding the seismic behavior of Masonry Infill RC frames with Choh-kat openings, providing a framework for improved design and retrofitting strategies.

具有Choh-kat开口的钢筋混凝土框架的抗震性能:一种新的支柱模型方法
本研究调查了砌体填充钢筋混凝土(RC)框架的地震行为与choh - cat框架开口,常见的克什米尔地区。它挑战了关于填充结构的传统假设,强调了它们的结构意义,并为这些填充如何影响地震性能提供了新的见解。主要的重点是分析choh -kat框架开口对地震荷载下RC框架横向刚度的影响,并开发一种新的支撑模型来预测地震反应。本文采用有限元方法模拟钢筋混凝土框架与竹甲框架间复杂的相互作用。分析考虑了几个响应参数,包括横向刚度、裂纹扩展模式、承载能力和能量耗散。研究还考察了不同开口尺寸、纵横比、位置和多个开口对结构性能的影响。一个关键的创新是引入了一个改变因子\(\beta _{wc}\)来考虑刚度,以及一个新的4支柱模型,用于choh -kat框架开口。结果表明,choh -kat框架的开口可达50% of the infill area contribute to decreased stiffness but delay crack propagation. The optimal opening area ratio for enhancing stiffness is 12%. Choh-kat additions significantly increase stiffness, especially at the top corners of the openings. The proposed strut model, validated by FEMA 356 guidelines, accurately predicts equivalent strut widths for pier and spandrel struts. In summary, this study offers a novel approach to understanding the seismic behavior of Masonry Infill RC frames with Choh-kat openings, providing a framework for improved design and retrofitting strategies.
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来源期刊
Bulletin of Earthquake Engineering
Bulletin of Earthquake Engineering 工程技术-地球科学综合
CiteScore
8.90
自引率
19.60%
发文量
263
审稿时长
7.5 months
期刊介绍: Bulletin of Earthquake Engineering presents original, peer-reviewed papers on research related to the broad spectrum of earthquake engineering. The journal offers a forum for presentation and discussion of such matters as European damaging earthquakes, new developments in earthquake regulations, and national policies applied after major seismic events, including strengthening of existing buildings. Coverage includes seismic hazard studies and methods for mitigation of risk; earthquake source mechanism and strong motion characterization and their use for engineering applications; geological and geotechnical site conditions under earthquake excitations; cyclic behavior of soils; analysis and design of earth structures and foundations under seismic conditions; zonation and microzonation methodologies; earthquake scenarios and vulnerability assessments; earthquake codes and improvements, and much more. This is the Official Publication of the European Association for Earthquake Engineering.
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