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Seismic Response Assessment of Base-Isolated Bridges accounting for the Stress-Softening Behaviour of High Damping Natural Rubber Bearings

机译:考虑高阻​​尼天然橡胶轴承应力软化行为的基础隔震桥梁地震响应评估

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In the last few decades, high damping natural rubber (HDNR) bearings have been extensively employed for seismic isolation of bridges and buildings because of their low horizontal stiffness and high damping capacity, which allows shifting the vibration period of the isolated structure away from where the earthquake input has the highest energy content and at the same time controlling the motion of the system. In HDNR material, filler is added to the natural rubber in order to improve its properties such as stiffness and dissipative capacity. The addition of the filler induces also a stress-softening behaviour, known as "Mullins effect". This effect makes the response of HDNR bearings path-history dependent and thus may influence the seismic performance of isolated systems. Published literature has shown that the initial "virgin" properties of the material are recovered. Accordingly, current seismic codes make the assumption that "Mullins effect" is a reversible phenomenon. Thus, they suggest simplified methods based on the use of property modification factors for the bearing model properties to account for this effect in the seismic response evaluation of structures isolated with HDNR bearings. The present paper is a study of the consequences of such strain-history dependent behaviour on the seismic response of structural systems isolated with HDNR bearings. In particular, the bearing behaviour is described by a non-linear process-dependent constitutive model based on one previously developed. This model allows separation of the contribution to the response due to the path-history dependent component from the contribution resulting from the stable (scragged) component. The model properties are calibrated against double-shear tests carried out on HDNR compounds commonly employed for seismic isolators. In particular, the response of a realistic isolated bridge is analyzed under ground motions with different characteristics by considering two different conditions for the bearings, one assuming the virgin (or fully recovered) rubber properties and the other assuming the stable (or fully scragged) rubber properties. The results obtained for the two different conditions are compared to evaluate the influence of the Mullins effect on the bridge performance. This also permits an evaluation of the accuracy of simplified bearing models and relevant property modification factors suggested by the codes for the preliminary design and analysis of bridges isolated with HDNR bearings.
机译:在过去的几十年中,高阻尼天然橡胶(HDNR)轴承因其较低的水平刚度和高阻尼能力而被广泛用于桥梁和建筑物的隔震,这使得隔震结构的振动周期可以从其所在位置移开。地震输入具有最高的能量含量,并同时控制系统的运动。在HDNR材料中,将填料添加到天然橡胶中以改善其性能,例如刚度和耗散能力。填料的加入还引起应力软化行为,称为“穆林效应”。这种效应使HDNR轴承的响应取决于路径历史,因此可能会影响隔离系统的抗震性能。已发表的文献表明,该材料的初始“原始”特性得以恢复。因此,当前的地震法则假定“穆林效应”是可逆的现象。因此,他们建议使用简化的方法,基于对轴承模型特性使用特性修正因子,以在用HDNR轴承隔离的结构的地震响应评估中考虑这种影响。本文研究了这种依赖于应变历史的行为对使用HDNR轴承隔离的结构系统的地震响应的后果。尤其是,轴承行为由基于先前开发的非线性过程相关本构模型来描述。该模型允许将与路径历史相关的分量对响应的贡献与稳定(残缺)分量的贡献分开。针对在地震隔离器常用的HDNR化合物上进行的双剪切测试,对模型属性进行了校准。特别是,通过考虑轴承的两种不同条件来分析具有不同特性的地震动下的真实隔离桥的响应,一种情况假设原始橡胶性能(或完全恢复),另一种情况假设橡胶稳定(或完全变角)属性。比较在两种不同条件下获得的结果,以评估穆林斯效应对桥梁性能的影响。这也允许评估简化的轴承模型的精度以及相关规范建议的相关属性修改因子,这些规范用于对HDNR轴承隔离的桥梁进行初步设计和分析。

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