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Low Cycle Fatigue Propagation in Steel Moment Frames Subjected to Seismic Loads

机译:低循环疲劳在钢时刻框架经受抗震载荷的框架

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It has been shown in previous full-scale experiments on steel moment frame connections that fracture initiation is typically not associated with an observable loss of moment carrying capacity. Although low cycle fatigue models have been used to predict fracture initiation, most low cycle fatigue models do not capture fracture propagation. To assess the performance of steel seismic force resisting systems, and in particular steel moment resisting frames as subjected to large earthquakes, it is critical to understand fracture propagation. The Damage Plasticity Model is a local approach to model material failures and has been used in limited studies found in the literature. Finite element models are created using the software LS-DYNA that incorporate the Damage Plasticity Model to capture low cycle fatigue fracture initiation and propagation through element removal. Test data from full-scale moment connection tests conducted previously by the authors are used in this study to evaluate the modeling approach. Observations about the locations of fracture initiation, cycle in which fracture initiated and the evolution of fracture propagation is documented and compared to the experimental results.
机译:已经在以前的全尺度实验中显示了钢力矩框架连接,即断裂启动通常与可观察的载体能力损失无关。虽然已经使用低循环疲劳模型来预测骨折开始,但大多数低循环疲劳模型不捕获断裂繁殖。为了评估钢地震力抵抗系统的性能,特别是耐钢力矩抵抗大地震的框架,理解骨折传播至关重要。损伤塑性模型是一种模拟材料故障的局部方法,并且已在文献中发现的有限研究中使用。使用损伤塑性模型的软件LS-DYNA创建有限元模型,以通过元素去除捕获低周疲劳断裂起始和传播。从本研究中使用先前由作者进行的全规模时刻连接测试的测试数据以评估建模方法。关于骨折起始位置的观察,记录了裂缝和裂缝繁殖的进化的循环和裂缝繁殖的进化并与实验结果进行了比较。

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