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Experimental and numerical investigations on seismic responses of reinforced concrete structures considering strain rate effect

机译:考虑应变率效应的钢筋混凝土结构地震响应的试验与数值研究

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The strain rate effect can inevitably impact the seismic responses of reinforced concrete (RC) structures because the dynamic properties of RC materials under earthquakes change significantly with the time varying loading rates. This paper carries out systematic experimental tests and numerical simulations to investigate the effects of strain rates on the seismic responses of RC structures. The dynamic properties of micro-concrete and iron wire used in the shaking table specimen are firstly tested under seismic loading rates and the corresponding dynamic increase factors (DIFs) are estimated based on the test data. The shaking table test of a 1/5 scaled RC structure is performed to realistically reproduce the dynamic responses of RC structures with strain rate effect. Moreover, a three-dimensional rate-dependent fiber beam-column element is developed in the ABAQUS platform to establish the finite element (FE) model of the shaking table specimen, in which the estimated DIFs for the key parameters of micro-concrete and iron wire are employed to consider the strain rate effect. Besides, the rate-independent structural FE model is also developed using the traditional beam-column element with the static RC material constitutive models. The numerical results demonstrate that the seismic responses of RC structures are overestimated when the strain rate effect is neglected. As validated by the experimental data of the shaking table test, the FE model developed using the proposed rate-dependent fiber beam-column element can yield better structural seismic response predictions in comparison with the rate-independent model. (C) 2018 Elsevier Ltd. All rights reserved.
机译:应变率效应不可避免地会影响钢筋混凝土(RC)结构的地震响应,因为地震条件下RC材料的动态特性会随着加载速率的变化而发生显着变化。本文进行了系统的实验测试和数值模拟,以研究应变率对钢筋混凝土结构地震响应的影响。首先在地震荷载作用下对振动台试样中使用的微混凝土和铁丝的动力特性进行了测试,并根据测试数据估算了相应的动态增加因子(DIF)。进行1/5比例RC结构的振动台测试,以真实再现具有应变率效应的RC结构的动态响应。此外,在ABAQUS平台上开发了一种基于三维速率的纤维束柱单元,以建立振动台试样的有限元模型,其中,微混凝土和铁的关键参数的估计DIF估计为导线被用来考虑应变率效应。此外,还使用传统的梁柱单元和静态RC材料本构模型,开发了与速率无关的结构有限元模型。数值结果表明,当忽略应变率效应时,钢筋混凝土结构的地震反应被高估了。经振动台试验的实验数据验证,与速率独立模型相比,使用所提出的速率独立纤维梁柱单元开发的有限元模型可以提供更好的结构地震响应预测。 (C)2018 Elsevier Ltd.保留所有权利。

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