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A multi-mode adaptive pushover analysis procedure for estimating the seismic demands of RC moment-resisting frames

机译:一种多模式自适应推进分析程序,用于估算RC力矩抵抗框架的地震要求

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The main contribution of this paper is to develop a new multi-mode adaptive pushover analysis procedure for estimating the seismic demands of RC moment-resisting frames. The proposed procedure enhances the seismic demands of conventional pushover analysis methods by combining the advantages of 'multi-modal' and `adaptive' pushover procedures. The presented method, which has been named the multi-mode adaptive displacement-based pushover (MADP) analysis procedure, estimates the seismic demands of buildings by using several multi-stage modal pushover analyses. Each multi-stage pushover analysis begins with the lateral load pattern proportional to the elastic mode-shape. The pushover analysis is then continued with a new lateral load pattern, constructed based on the story displacements obtained from the previous stage. The lateral force distribution is changed whenever a new plastic hinge is formed in the inelastic structural model. The 'first-mode' inelastic mode-shape of the structure is also used by the MADP method to accurately estimate the value of the target-displacement. The final structural responses are determined by combining the seismic demands obtained by the multi-stage modal pushover analyses using an appropriate modal combination rule. The accuracy and efficiency of the MADP procedure is verified using the analysis of four special RC moment-resisting frames with 4-, 8-, 12-, and 20-stories. The structural responses are estimated for two different seismic hazards (intensities). A comparison is then carried out between the estimates from the MADP method with those given by the exact nonlinear response history analysis (RHA). The results from two advanced pushover analysis procedures including the modal pushover analysis (MPA) and consecutive modal pushover (CMP) methods are also presented for the purpose of comparison. The results show that the MADP method is able to satisfactorily estimate the critical seismic demands such as interstory drift ratio and the plastic rotation of the hinges for the example buildings, and to provide an advanced nonlinear static procedure for the seismic performance assessment of RC moment-resisting frames.
机译:本文的主要贡献是开发一种新的多模式自适应推进分析程序,用于估算RC力矩抵抗框架的地震要求。所提出的程序通过结合“多模态”和“自适应”推动程序的优势来增强常规推动分析方法的地震要求。已经命名为基于多模式自适应位移的推送程序(MADP)分析程序的呈现方法估计了通过使用多级多级模态推进分析来估计建筑物的抗震要求。每个多级推进分析开始于与弹性模式形状成比例的横向载荷图案。然后继续使用新的横向载荷图案,基于从前一级获得的故事位移构建的新的横向载荷图案。每当在非弹性结构模型中形成新的塑料铰链时,横向力分布变化。 MADP方法还使用该结构的“第一模式”非弹性模式形状,以精确估计目标位移的值。通过使用适当的模态组合规则组合通过多阶段模态推进分析所获得的地震要求来确定最终的结构响应。使用具有4个,8个,12-和20层的四个特殊RC矩脉冲框架来验证MADP程序的准确性和效率。估计结构响应估计两个不同的地震危害(强度)。然后在MADP方法与由精确的非线性响应历史分析(RHA)给出的那些的估计之间进行比较。两个先进的推送分析程序的结果,包括模态推动分析(MPa)和连续模态推送(CMP)方法的目的是为了比较。结果表明,MADP方法能够令人满意地估计诸如恒星漂移比和铰链的旋转旋转的临界地震要求,并为示例性建筑提供抗震性能评估的先进的非线性静态程序 - 抵抗框架。

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