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首页> 外文期刊>Journal of Engineering Mechanics >Timoshenko Beam Theory-Based Dynamic Analysis of Laterally Loaded Piles in Multilayered Viscoelastic Soil
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Timoshenko Beam Theory-Based Dynamic Analysis of Laterally Loaded Piles in Multilayered Viscoelastic Soil

机译:基于Timoshenko光束理论的多层粘弹性横向装载桩的动态分析

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A semianalytical method is developed to obtain the dynamic response of laterally loaded piles in a multilayered soil. In the analysis, the soil is modeled as a three-dimensional viscoelastic continuum with frequency-independent hysteretic material damping and the pile as a circular elastic Timoshenko beam. Unlike the Euler-Bernoulli beam that is conventionally used to model laterally loaded piles in various analytical, semianalytical, and numerical studies, the Timoshenko beam theory accounts for the effect of shear deformation and rotatory inertia within the pile cross-section that might be important for modeling short stubby piles with solid or hollow cross-sections and piles subjected to high frequency of loading. In the analysis, the soil displacements in the horizontal direction are expressed as products of separable functions, and the extended Hamilton's principle in conjunction with the calculus of variations is used to obtain two sets of coupled differential equations governing pile and soil motions along with the relevant boundary conditions. The coupled equations are solved analytically and numerically following an iterative algorithm. The differential equation and boundary conditions governing pile motion are progressively reduced to model the pile as a Rayleigh beam and a Euler-Bernoulli beam; thus, a unified framework incorporating various beam theories for the dynamic soil-structure interaction of laterally loaded piles in a multilayered soil is developed. The accuracy of the present analysis is verified against the results of several analytical and numerical solutions available in the literature. It is shown from the solved example problems that rotatory inertia has practically no effect on the dynamic response of piles, whereas there is some effect of shear deformation on the response of piles with hollow cross-sections.
机译:开发了一种半角质方法以获得多层土壤中横向装载桩的动态响应。在分析中,土壤被建模为具有频率无关的滞后材料阻尼的三维粘弹性连续体,作为圆形弹性Timoshenko梁。与通常用于在各种分析,半角质和数值研究中建模横向加载桩的欧拉-Bernoulli光束不同,TIMOSHENKO光束理论占剪切变形和旋转惯性在可能是重要的剪切变形和旋转惯性的影响使用高负荷频率的固体或中空横截面和桩造型的短螺杆桩。在分析中,水平方向上的土壤位移被表示为可分离功能的产品,并且延伸的汉密尔顿的原理与变化的微积分一起用于获得两组耦合的差分方程,控制桩和土壤运动的耦合差分方程以及相关的边界条件。耦合方程在迭代算法之后分析地和数值求解。控制桩运动的微分方程和边界条件逐渐减少,以将桩为瑞利梁和欧拉伯努利梁模拟;因此,开发了一种统一的框架,其具有用于多层土壤中横向装载桩的动态土壤结构相互作用的各种光束理论的统一框架。本分析的准确性验证了文献中可用的几种分析和数值解决方案的结果。从解决的示例问题中显示出旋转惯性几乎没有对桩的动态响应产生影响,而剪切变形对桩与中空横截面的响应作用。

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