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High-order finite element model of bridge rubber bearings for the prediction of buckling and shear failure

机译:桥梁橡胶轴承高阶有限元模型,用于预测屈曲和剪切失效

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摘要

Performance-based design is becoming the main design method for highway bridge seismic design. This design method requires a good knowledge of the damage mechanisms of each component of the bridge. Rubber bearings and isolators represent a key component of the earthquake-resistance system of bridges that can experience large lateral displacements while supporting high axial loads. Rubber bearings and isolators can thus experience lateral instabilities under seismic loading, resulting in ultimate limit states by buckling or by shear failure depending on the geometry of the bearing. This paper investigates the development of a general numerical 3D finite element model for layered elastomeric bridge bearings and isolators that is able to accurately predict both limit states under shear-compression loadings at very large deformations. Such a model is aimed at subsequent utilization in large numerical and parametrical studies to develop practical and accurate design guidelines for the limit states of bridge rubber isolators. In this study, the accuracy of several rubber finite element formula tions has been studied, including the often used low-order and easy-to-calibrate Mooney-Rivlin and Neo-Hookean models and the two high-order Arruda-Boyce and 6-parameter Ogden models. For the latter model, a calibration procedure is proposed based on three simple standard characterization tests of the material that circumvents the much higher difficulty of calibration of the Ogden model compared to the others. The calibration results for the four considered models show that the 6-parameter Ogden model surpasses the ability of the three other models to accurately represent the material behavior in the different deformation modes experienced by rubber bearings under shear compression at large deformations. The four models are then compared for their ability to predict the force-displacement curves of some experimentally tested isolators. The Ogden model showed again higher accuracy compared to the other models that are mostly used in literature. The finite element model based on the Ogden formulation is finally completely validated by using extensive experimental results obtained from tests performed on real-scale rubber bearings and isolators of various shape factors and slenderness values. Finally, for nonslender bearings that experience shear failure at large deformation, a numerical material failure criterion is proposed and validated by comparing the critical displacement predictions of the model to the available experimental results.
机译:基于性能的设计成为公路桥梁地震设计的主要设计方法。这种设计方法需要良好地了解桥的每个部件的损坏机制。橡胶轴承和隔离器代表了桥梁的突出系统的关键部件,可以在支撑高轴向载荷的同时体验大的横向位移。因此,橡胶轴承和隔离器可以在地震加载下体验横向稳定性,从而通过屈曲或根据轴承的几何形状来弯曲或通过剪切失效导致最终的极限状态。本文研究了层状弹性桥轴承和隔离器的通用数值3D有限元模型的开发,能够在非常大的变形下精确地预测剪切压缩负载下的极限状态。这种模型旨在随后在大型数值和参数研究中使用,以开发桥梁橡胶隔离器极限状态的实用和准确的设计指南。在这项研究中,研究了几种橡胶有限元方程式的准确性,包括经常使用的低阶且易于校准的Mooney-rivlin和新妓女模型以及两个高阶Aruda-Boyce和6-参数ogden型号。对于后一种型号,基于三个简单的标准表征测试提出了一种校准程序,这些标准表征测试避免了与其他模型相比校准校准的更高难度。四个考虑模型的校准结果表明,6参数OGDEN模型超越了三种其他模型在大变形下剪切压缩下橡胶轴承经历的不同变形模式中的材料行为的能力。然后将四种模型进行比较,以预测一些实验测试的隔离器的力位移曲线的能力。与主要用于文献中主要用于文献的其他模型相比,OGDDEN模型再次显示更高的准确性。最终通过使用从实际橡胶轴承和各种形状因子和细长值的隔离器获得的测试获得的大量实验结果,基于OGDEN制剂的基于OGDDEN制剂的有限元模型完全验证。最后,对于经历大变形的剪切失效的非线性轴承,通过将模型的临界位移预测与可用的实验结果进行比较来提出和验证数值材料故障标准。

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