土-构相互作用运动传递动力学分析与建模

M. Hamidatou, Saad Lebdioui, Nassim Hallal, J. Matos, J. Tinoco
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摘要

本文用有限分量法和极限分量法两种不同的方法定义了运动传递和土-结构动力相互作用的动力分析和几何论证。这种数学过程是求解动态任务的一种有影响的几何方法。在这个项目中,我们使用了非常先进和有效的计算机几何转换方法来研究多方面的困难。引导运动的分数阶差分方程由EM导出并求解。三维空间对运动传递模拟(一维和二维)的影响具有反向吸引效应,取决于不同的有限分量类型(三角形、矩形、高度分量)。还讨论了窒息的几何建模(瑞利检验)。然后用有限分量技术处理由基础振动引起的运动传递模型。记住极限组件技术的能力,并计划通过2D和3D模型找到的结果。许多土-结构(建筑物、隧道)动力相互作用的案例以前是腌过的。本文将讨论这些性质的结果。
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Dynamic Analysis and Modeling Movement Transmission of Soil Construction Interaction
This paper defines the dynamic analysis and geometric demonstration of movement transmission and the dynamic soil-structure interaction using two different approaches: the finite component process and the limit component approach (EM). This mathematical process is an influential geometric approach right for dynamic tasks. In this item, we used very advanced and effective computer geometric converter approaches to study multifaceted difficulties. The fractional difference equation leading the motion is outcoming and resolved by EM. The influence of 3 dimensions on the movement transmission imitation (1D and 2D) has a conversed captivating effect, dependent on the different finite components kinds (triangles, rectangles, tall degree components). Geometric modeling of stifling is too discussed (Rayleigh checking). The finite component technique then treats a model of movement transmission owing to the vibration of a foundation. The limit component technique's capacities are remembered, and outcomes found through 2D and 3D mockups are planned. Numerous cases of dynamic soil-structure interaction (building, tunnel) are formerly pickled. The outcomes of these properties are discussed here.
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