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首页> 外文期刊>Journal of structural engineering >Development and Application of Spring Hinge Models to Simulate Reinforced Ductile Concrete Structural Components under Cyclic Loading
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Development and Application of Spring Hinge Models to Simulate Reinforced Ductile Concrete Structural Components under Cyclic Loading

机译:弹簧铰链模型在循环载荷下模拟增强韧带混凝土结构部件的开发与应用

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摘要

Ductile concrete materials with randomly oriented fibers have been studied to improve the strength, displacement capacity, and damage tolerance of reinforced concrete structural components in seismic applications. Performance-based earthquake engineering requires numerically efficient models that are capable of estimating the hysteretic behavior, including the strength, stiffness, cyclic degradation behavior, and failure criteria. This paper discusses the development of an experimental database and its use in the calibration of a phenomenological model to simulate the nonlinear behavior of reinforced ductile concrete components under cyclic loading. The modeling parameters are calibrated to predict the initial stiffness, lateral strength, deformation capacity, and cyclic and in-cycle degradation. Backbone parameters were selected using a mechanics-based approach combined with a calibration of hysteretic parameters to match an energy-based damage index. A large-scale experimental database with a variability in material properties, geometry, testing configurations, and fiber types was used for calibration purposes. A forward stepwise regression analysis was conducted to develop an empirical equation for a stiffness reduction factor and a cyclic strength degradation parameter as functions of material behavior and geometry. The modeling strategy is validated by comparing an experimental and simulated cyclic response across a range of metrics. The spring-hinge models are then applied to evaluate the collapse risk of the archetype frame structures using ductile concrete material in the potential plastic hinge region of the beams. The collapse performance is evaluated through an incremental dynamic analysis in which the results of reinforced concrete structures with and without ductile concrete material are compared in terms of the median collapse capacity, fragility curve, mean annual frequency, and sequence of hinge formation in the collapse mechanism. The outcome of this research provides much needed insight into how ductile concrete materials can influence structural system-level seismic performance. (C) 2020 American Society of Civil Engineers.
机译:已经研究了随机取向纤维的延性混凝土材料,以提高地震应用中钢筋混凝土结构部件的强度,位移能力和损伤容差。基于性能的地震工程需要具有能够估计滞后行为的数值有效的模型,包括强度,刚度,循环降解行为和故障标准。本文讨论了实验数据库的开发及其在校准现象学模型中,以模拟环状载荷下加筋延性混凝土组分的非线性行为。校准建模参数以预测初始刚度,横向强度,变形容量和循环和循环劣化。使用基于机械的方法选择骨干参数,结合滞后参数的校准以匹配基于能量的损伤指数。用于材料特性,几何,测试配置和光纤类型的具有可变性的大型实验数据库用于校准目的。进行前向逐步回归分析,以开发刚度减小因子的经验方程和循环强度降解参数作为材料行为和几何形状的函数。通过比较各种度量的实验和模拟循环响应来验证建模策略。然后应用弹簧铰链模型来评估原型框架结构的塌陷风险在梁的电位塑料铰链区域中使用延性混凝土材料。通过增量动态分析来评估崩溃性能,其中在折叠机构中的中值塌陷能力,脆弱曲线,平均年频率和铰接机构铰链形成序列的方面比较了钢筋混凝土结构的钢筋混凝土结构的结果。本研究的结果提供了很需要的洞察力,延展性混凝土材料如何影响结构系统级地震性能。 (c)2020年美国土木工程师协会。

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