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Vertical and torsional vibrations of a rigid circular disc on a transversely isotropic and layered half-space with imperfect interfaces

机译:界面不完全的横向各向同性分层半空间上的刚性圆盘的垂直和扭转振动

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Rigid disc vibration over a layered half-space is essential to understand soil-structure interaction (SSI) between a foundation and the structure over it. In this article, we present a novel semi-analytical and very efficient method to calculate the SSI coefficients on the layered foundation due to both vertical and torsional vibrations. The material properties in each layer are transversely isotropic to take care of the possible different Young's moduli in different directions (vertical vs. horizontal). Furthermore, the interface between the layers is assumed to be general so that possible loose bonding between the layers (where the displacements and/or tractions are discontinuous across the interface) can be considered. The semi-analytical solution is based on the recently developed forward solution of the layered structure with imperfect interface under time-harmonic loadings within the circle on the surface. Since the present SSI problem is a mixed boundary-value problem, the method of superposition in terms of the powerful cylindrical system of vector functions combining with the integral least-square approach is proposed. To take care of multiple layers, the dual variable and position (DVP) is further introduced. The cylindrical system of vector functions has the advantage of separating the torsional vibration from the vertical vibration and yet expressing the two types of solutions uniformly. After validating the proposed semi-analytical method, numerical examples are presented to demonstrate the effect of material layering, interface imperfection, elastic anisotropy, and input frequency on the SSI coefficients, and on the surface displacement and stress variation. These new results should be also good benchmarks for future numerical methods.
机译:分层半空间上的刚性圆盘振动对于理解基础和基础结构之间的土壤结构相互作用(SSI)至关重要。在本文中,我们提出了一种新颖的半解析方法,可以非常有效地计算由于竖向和扭转振动引起的层状基础上的SSI系数。每层的材料特性是横向各向同性的,以照顾不同方向(垂直与水平)上可能不同的杨氏模量。此外,假定各层之间的界面是一般的,从而可以考虑各层之间可能的松散结合(其中位移和/或牵引力在整个界面上是不连续的)。半解析解决方案基于最近开发的具有不完美界面的层状结构在表面圆上的时间谐波载荷下的正解。由于当前的SSI问题是混合边值问题,因此提出了一种结合矢量函数的强大圆柱系统和积分最小二乘法的叠加方法。为了照顾多层,进一步引入了双重变量和位置(DVP)。向量函数的圆柱系统的优点是将扭转振动与垂直振动分开,并且可以均匀地表示两种类型的解。在验证了所提出的半分析方法之后,给出了数值示例,以证明材料分层,界面缺陷,弹性各向异性和输入频率对SSI系数以及表面位移和应力变化的影响。这些新结果也应成为将来数值方法的良好基准。

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