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首页> 外文期刊>Journal of structural engineering >Innovative Computational Intelligence-Based Model for Vulnerability Assessment of RC Frames Subject to Seismic Sequence
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Innovative Computational Intelligence-Based Model for Vulnerability Assessment of RC Frames Subject to Seismic Sequence

机译:基于创新的计算智能基于RC帧受地震序列的漏洞评估模型

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摘要

Previous earthquakes have shown that for structures that experience a significant ground motion with only minor damage, there is a likelihood of severe damage or complete collapse during the aftershocks. Due to the importance of such seismic sequences in structural engineering investigations, in this study, the vulnerability of RC frames under subsequent earthquakes is evaluated using computational intelligence (CI) in three phases. In the first phase, an optimized fuzzy system (Fuzzy-TLBO) is presented to estimate the used capacity of the story by considering the damage state of beams, columns, joints, and also the drift. The second phase includes two soft computing models to determine the used capacity of the frame under mainshock using indicators of the soil, record, and the structure, simultaneously. The final phase utilizes two soft computing methods with the same goal of the second phase in which the initial vulnerability of the frame concluded from the mainshock is also introduced to the estimators. These three approaches, with high accuracy in their outputs, have several benefits and applications, especially in seismic studies. They can calculate the overall output of an RC frame under loads without needing a nonlinear time-history analysis. Furthermore, they consider the effects of beams, columns, joints, and also the drift in the final output. Therefore, the proposed models in this research are a very comprehensive approach compared to the available methodologies, which only consider drift as the engineering demand parameter. (C) 2020 American Society of Civil Engineers.
机译:以前的地震表明,对于经历显着的地面运动的结构,只有轻微的伤害,可能会在余震期间严重损坏或完全坍塌。由于这种地震序列在结构工程研究中的重要性,在本研究中,在三个阶段使用计算智能(CI)评估随后的地震下RC帧的脆弱性。在第一阶段,通过考虑光束,列,关节以及漂移的损坏状态,提出了优化的模糊系统(Fuzzy-TLBO)以估计故事的使用能力。第二阶段包括两个软计算模型,可以同时使用土壤,记录和结构的指示器确定主轴下框架的使用能力。最终阶段利用两个软计算方法,其第二阶段具有相同目标,其中从主轴得出的帧的初始脆弱性也被引入估算器。这三种方法在其产出中具有高精度,具有若干好处和应用,特别是在地震研究中。它们可以在负载下计算RC帧的总输出而不需要非线性时间历史分析。此外,他们考虑梁,柱,关节以及最终输出中的漂移的影响。因此,与可用的方法相比,该研究中的拟议模型是一种非常全面的方法,只考虑漂移作为工程需求参数。 (c)2020年美国土木工程师协会。

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