Modelling of Inelastic Pentamode-Based Bridge Bearings Using Beam Elements

Olga E. Sapountzaki, A. Kampitsis, N. Lagaros
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Abstract

Metameterials have unique properties, which are mostly attributed to their geometrical configuration. Pentamodes, a subcategory of metamaterials, exhibit an almost zero shear elastic modulus while maintaining high compression stiffness, offering a behavior similar to that of a liquid, suggesting the potential application of pentamodes in seismic isolation. In this paper a real-life bridge bearing, composed of repetitive layers of pentamode unit cells in the horizontal and vertical axes is studied. The lattices are modelled using beam finite elements with an equivalent uniform diameter to ensuring a stiffness equal to that of the bi-cone rod. The importance of the chosen equivalent diameter is shown, as the assumption of an average diameter of the bi-cone may lead to significant discrepancies between the calculated stiffnesses. For small bi-cone diameters difference, and slender formulations, the error could grow up to 15% for the horizontal stiffness and up to 200% for vertical. For thick formulations the average diameter overestimates the horizontal stiffness by 3 times and the vertical by 4. These discrepancies grow exponentially as the bi-cone diameters difference increases. An elastoplastic material is selected. The bearing supporting the superstructure is subjected to a constant vertical weight load and a horizontal shear base load, due to seismic excitation. Under vertical loading plastic hinges are created in all the rods of the cell and bearing. However, under shear loading plastic hinges are rather initially created in the lowest nodes of the cell and the bearing.
基于梁单元的非弹性五模态桥梁支座建模
超材料具有独特的性质,这主要归因于它们的几何结构。五模态材料是超材料的一个子类别,在保持高压缩刚度的同时表现出几乎为零的剪切弹性模量,其行为类似于液体,这表明五模态材料在隔震中的潜在应用。本文研究了一个实际的桥梁支座,该支座在水平轴和垂直轴上由五模单元格重复层组成。网格采用等效均匀直径的梁有限元建模,以确保与双锥杆的刚度相等。所选择的等效直径的重要性显示,作为双锥的平均直径的假设可能导致计算刚度之间的显著差异。对于较小的双锥直径差和细长的配方,水平刚度的误差可能增加到15%,垂直刚度的误差可能增加到200%。对于较厚的配方,平均直径高估水平刚度3倍,高估垂直刚度4倍。随着双锥直径差的增加,这些差异呈指数增长。选择一种弹塑性材料。由于地震激励,支撑上部结构的轴承承受恒定的垂直重量载荷和水平剪切基础载荷。在垂直载荷下,在单元和轴承的所有杆中都创建了塑料铰链。然而,在剪切荷载下,塑性铰最初是在单元和轴承的最低节点上创建的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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