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首页> 外文期刊>Journal of Constructional Steel Research >Numerical simulation of steel I-shaped beams using a fiber-based damage accumulation model
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Numerical simulation of steel I-shaped beams using a fiber-based damage accumulation model

机译:基于纤维损伤累积模型的工字型钢梁数值模拟

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摘要

This study proposes a fiber-based hinge damage accumulation model that is able to replicate the nonlinear response of I-shaped beams of steel moment resisting frames. The model is developed in OpenSees and consists of a beam with hinges element with fiber cross-section discretization within the plastic hinge zone. Among various plastic hinge integration methods, the modified Gauss-Radau integration scheme was selected. The proposed model incorporates strength and stiffness deterioration caused by flange local buckling of I-shaped beams which is simulated by assigning a calibrated low-cycle fatigue material model to flange fibers. In this formulation, fatigue material uses a modified rainflow cycle counting algorithm to accumulate damage based on Miner's rule. The values of fatigue material coefficients were calibrated against 16 experimental test results selected from the literature. An equation able to predict the fatigue ductility coefficient that follows a linear variation along the flange width is proposed based on regression analysis. In addition, a global damage index, DI5, defined as the ratio between the number of fibers that reach fatigue and the number of fibers within the top and bottom flanges of I-shaped cross-section, is developed and a global damage index value associated with the onset of beam failure, labelled DIs(80%)prop is proposed. An application comprising a single-storey, one-bay steel MRF is carried out in OpenSees, which validates the proposed beam model as computationally effective under cyclic quasi static and dynamic loading. (C) 2017 Elsevier Ltd. All rights reserved.
机译:这项研究提出了一种基于纤维的铰链损伤累积模型,该模型能够复制I型钢抗弯框架梁的非线性响应。该模型是在OpenSees中开发的,由带有铰链元素的梁和在塑料铰链区域内纤维横截面离散的梁组成。在各种塑料铰链集成方法中,选择了改进的Gauss-Radau集成方案。所提出的模型包含了由I型梁的法兰局部屈曲引起的强度和刚度降低,这是通过将校准的低周疲劳材料模型分配给法兰纤维来模拟的。在此公式中,疲劳材料根据Miner规则使用改进的雨流循环计数算法来累积损伤。根据从文献中选择的16个实验测试结果对疲劳材料系数的值进行了校准。在回归分析的基础上,提出了能够预测沿凸缘宽度线性变化的疲劳延性系数的方程。此外,制定了总体破坏指数DI5,定义为达到疲劳的纤维数量与I形横截面的上,下凸缘中的纤维数量之比,并关联了总体破坏指数值随着光束失效的发生,提出了标记为DIs(80%)prop的建议。在OpenSees中进行了一个包含单层,单托架钢MRF的应用程序,该应用程序验证了所提出的梁模型在循环准静态和动态载荷下在计算上是有效的。 (C)2017 Elsevier Ltd.保留所有权利。

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