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Numerical study on the response of steel-laminated elastomeric bearings subjected to variable axial loads and development of local tensile stresses

机译:叠层钢弹性轴承在轴向载荷变化和局部拉应力发展中的响应数值研究

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摘要

Steel-laminated elastomeric bearings are isolation devices which are used extensively in buildings, bridges, nuclear power plants and other structures. Accurate modelling of the behaviour of these devices is of great importance, as the integrity of isolated structures relies heavily on their response. For many years, steel-laminated bearings were designed based on the assumption that they are subjected to compressive and shear loads, as a result of the dead and the horizontal loads, i.e. wind and seismic loads, acting on the structure. It is only very recently that tensile stresses in bearings were studied, as it was observed that local and global tensile stresses might be developed in bearings under seismic excitations. Most importantly, tension within the elastomer might cause local cracks or, in extreme cases, rupture of the elastomer, which might lead to the loss of support of isolated structures. Yet only a few studies exist in the international literature with regard to response of these devices under combined axial and shear loads. The aforementioned gap in the knowledge and the identified rupture of the elastomer of bearings under tensile loads during recent earthquakes comprised the motivation for this research. In this context, this paper examines the response of steel-laminated elastomeric bearings under cyclic shear and variable axial loads and aims to better understand their behaviour with emphasis placed on the tensile stresses within the elastomer, their stiffness and dissipation capacity. Extensive numerical research was conducted with ABAQUS and the Ogden hyperelastic model was used for modelling the elastomeric material. The analyses showed that steel-laminated elastomeric bearings exhibit local tensile stresses, which alter significantly their stiffness and damping ratio. Most importantly, significant tensile stresses within the elastomer were observed locally, even when the bearings were subjected to a combination of shearing and compression.
机译:钢层压弹性轴承是一种隔离装置,广泛用于建筑物,桥梁,核电站和其他结构中。这些设备的行为的准确建模非常重要,因为隔离结构的完整性很大程度上取决于它们的响应。多年来,钢叠层轴承的设计基于以下假设:由于静载荷和水平载荷(即风和地震载荷)作用在结构上而承受压缩和剪切载荷。直到最近,才对轴承中的拉应力进行了研究,因为观察到在地震激励下轴承中可能会产生局部和整体拉应力。最重要的是,弹性体内部的张力可能会导致局部裂缝,或者在极端情况下,弹性体会破裂,这可能会导致失去对孤立结构的支撑。然而,在国际文献中,关于这些装置在轴向和剪切组合载荷下的响应的研究很少。前面提到的知识上的空白以及在最近的地震中确定的轴承弹性体在拉伸载荷下的破裂构成了这项研究的动机。在这种情况下,本文研究了钢层压弹性轴承在循环剪切和可变轴向载荷下的响应,旨在更好地了解其性能,重点放在弹性体内部的拉应力,刚度和耗散能力上。使用ABAQUS进行了广泛的数值研究,并使用Ogden超弹性模型对弹性体材料进行建模。分析表明,钢层压弹性轴承表现出局部拉伸应力,从而显着改变其刚度和阻尼比。最重要的是,即使在轴承承受剪切和压缩作用的情况下,也可以局部观察到弹性体内部明显的拉伸应力。

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