Towards understanding, estimating and mitigating higher-mode effects for more resilient tall buildings

Constantin Christopoulos, Chiyun Zhong
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引用次数: 11

Abstract

Rapid urbanization has resulted in increased demand for tall buildings in many large and medium-sized cities around the world. Current code-based standards for seismic design are primarily aimed at minimizing life-safety risks under major earthquakes. While reinforced concrete (RC) high-rise buildings designed following current code requirements are expected to achieve collapse-prevention, the contribution of higher modes of vibrations to the dynamic response of these structures can produce seismic demands significantly larger than those obtained from prescriptive code-based procedures, causing unexpectedly higher structural and non-structural damage to these buildings. These imply considerable costs associated with the loss of residences and business operations as well as the post-earthquake recovery of cities. This paper presents a concise review of the current state-of-the-art and state of research pertaining to the understanding, estimation and mitigation of higher-mode effects on the seismic response of tall and slender RC structures. The paper is organized into four main foci: (1) analytical studies on understanding and quantifying higher-mode effects, (2) available experimental work on this topic, (3) advances in code practices in accounting for higher-mode effects in seismic design of RC tall buildings, and (4) recent developments in innovative systems intended to mitigate higher-mode effects in RC tall buildings. The paper concludes by briefly summarizing future challenges facing the construction of earthquake-resilient RC tall buildings that are essential in building resilient cities of the future.

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为了理解,估计和减轻高模式对更有弹性的高层建筑的影响
快速城市化导致世界各地许多大中型城市对高层建筑的需求增加。目前基于规范的抗震设计标准主要是为了最大限度地降低大地震下的生命安全风险。虽然按照现行规范要求设计的钢筋混凝土(RC)高层建筑有望实现防倒塌,但高振型对这些结构动力响应的贡献可能产生比基于规范程序获得的地震需求大得多的地震需求,对这些建筑造成意想不到的更高的结构和非结构损伤。这意味着住宅和商业运营的损失以及震后城市的恢复需要付出相当大的代价。本文简要回顾了目前有关高模态影响对细长高钢筋混凝土结构地震反应的理解、估计和缓解的研究现状。本文分为四个主要重点:(1)理解和量化高模态效应的分析研究,(2)关于该主题的现有实验工作,(3)考虑RC高层建筑抗震设计中高模态效应的规范实践进展,以及(4)旨在减轻RC高层建筑高模态效应的创新系统的最新发展。本文最后简要总结了抗震钢筋混凝土高层建筑建设面临的未来挑战,这对建设未来的弹性城市至关重要。
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