Fully coupled flow-induced vibration of structures under small deformation with GMRES method

被引:0
|
作者
Li-xiang Zhang
Ya-kun Guo
Hong-ming Zhang
机构
[1] Kunming University of Science and Technology,Department of Engineering Mechanics
[2] University of Aberdeen,School of Engineering
来源
Applied Mathematics and Mechanics | 2010年 / 31卷
关键词
flow-induced vibration; fluid-structure interaction; generalized variational principle; numerical methods; generalized minimum residual (GMRES) method; O332; 74F10;
D O I
暂无
中图分类号
学科分类号
摘要
Lagrangian-Eulerian formulations based on a generalized variational principle of fluid-solid coupling dynamics are established to describe flow-induced vibration of a structure under small deformation in an incompressible viscous fluid flow. The spatial discretization of the formulations is based on the multi-linear interpolating functions by using the finite element method for both the fluid and solid structures. The generalized trapezoidal rule is used to obtain apparently non-symmetric linear equations in an incremental form for the variables of the flow and vibration. The nonlinear convective term and time factors are contained in the non-symmetric coefficient matrix of the equations. The generalized minimum residual (GMRES) method is used to solve the incremental equations. A new stable algorithm of GMRES-Hughes-Newmark is developed to deal with the flow-induced vibration with dynamical fluid-structure interaction in complex geometries. Good agreement between the simulations and laboratory measurements of the pressure and blade vibration accelerations in a hydro turbine passage was obtained, indicating that the GMRES-Hughes-Newmark algorithm presented in this paper is suitable for dealing with the flow-induced vibration of structures under small deformation.
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页码:87 / 96
页数:9
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