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Robustness evaluation of CSMM based finite element for simulation of shear critical hollow RC bridge piers

机译:基于CSMM的有限元抗剪空心RC桥墩仿真的鲁棒性评估。

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Purpose The purpose of this study is to evaluate the effectiveness of two-dimensional (2D) cyclic softened membrane model (CSMM)-based non-linear finite element (NLFE) model in predicting the complete non-linear response of shear critical bridge piers (with walls having aspect ratios greater than 2.5) under combined axial and reversed cyclic uniaxial bending loads. The effectiveness of the 2D CSMM-based NLFE model has been compared with the widely used one-dimensional (1D) fiber-based NLFE models. Design/methodology/approach Three reinforced concrete (RC) hollow rectangular bridge piers tested under reversed cyclic uniaxial bending and sustained axial loads at the National Centre for Research on Earthquake Engineering (NCREE) Taiwan have been simulated using both 1D and 2D models in the present study. The non-linear behavior of the bridge piers has been studied through various parameters such as hysteretic loops, energy dissipation, residual drift, yield load and corresponding drift, peak load and corresponding drift, ultimate loads, ductility, specimen stiffness and critical strains in concrete and steel. The results obtained from CSMM-based NLFE model have been critically compared with the test results and results obtained from the 1D fiber-based NLFE models. Findings It has been observed from the analysis results that both 1D and 2D simulation models performed well in predicting the response of flexure critical bridge pier. However, in the case of shear critical bridge piers, predictions from 2D CSMM-based NLFE simulation model are more accurate. It has, thus, been concluded that CSMM-based NLFE model is more accurate and robust to simulate the complete non-linear behavior of shear critical RC hollow rectangular bridge piers. Originality/value In this study, a novel attempt has been made to provide a rational and robust FE model for analyzing shear critical hollow RC bridge piers (with walls having aspect ratios greater than 2.5).
机译:目的本研究的目的是评估基于二维(2D)循环软化膜模型(CSMM)的非线性有限元(NLFE)模型在预测剪力临界桥墩的完整非线性响应中的有效性(墙体的长宽比大于2.5)在组合的轴向和反向循环单轴弯曲载荷作用下。已将基于2D CSMM的NLFE模型的有效性与广泛使用的基于一维(1D)光纤的NLFE模型进行了比较。设计/方法/方法目前,在台湾国家地震工程研究中心(NCREE)进行了三个循环的钢筋混凝土(RC)空心矩形桥墩在反向循环单轴弯曲和持续轴向载荷下的测试,目前使用1D和2D模型进行了模拟。研究。已通过各种参数研究桥墩的非线性行为,例如磁滞回线,能量耗散,残余漂移,屈服载荷和相应的漂移,峰值载荷和相应的漂移,极限载荷,延性,标本刚度和混凝土中的临界应变和钢铁。从基于CSMM的NLFE模型获得的结果已与测试结果以及从基于1D光纤的NLFE模型获得的结果进行了严格比较。结果从分析结果可以看出,一维和二维仿真模型在预测挠性临界桥墩的响应方面均表现良好。但是,在临界剪力桥墩的情况下,基于2D CSMM的NLFE仿真模型的预测更为准确。因此,可以得出结论,基于CSMM的NLFE模型对于模拟剪切临界RC空心矩形桥墩的完整非线性行为更为精确和可靠。独创性/价值在这项研究中,已进行了新颖的尝试,以提供合理而健壮的有限元模型来分析临界剪力空心RC桥墩(墙的纵横比大于2.5)。

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