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Titlebook: Boundary Elements XIII; C. A. Brebbia,G. S. Gipson Book 1991 Computational Mechanics Publications 1991 Finite-Elemente-Methode.Rotor.Simul

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https://doi.org/10.1007/978-981-287-763-5ure is presented that permits the solution of some types of non-constant coefficients PDEs using the standard Green function used for the Laplace equation. This is achieved coupling BEM and perturbation technique. After stating the procedure two examples of application are numerically solved shoving
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Fast Measurements of Slow Processesprimitive-variable Navier-Stokes boundary element formulation based on the method of Tosaka. Also, explicit forms of singular integrals are derived and presented. In this regard, series expansions of the fundamental solutions, which contain modified Bessel functions, are performed to enable integrat
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Fast Measurements of Slow Processesnsional steady flow of a viscous incompressible fluid past an arbitrary obstacle, at small Reynolds number, is developed here. This method is based on the numerical solution of a system of linear Fredholm’s integral equations of the first kind derived from the representation formula of Green’s type
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Communications and Control Engineeringokes equations for the fluid with the equilibrium equations for the particles. We consider the problem of Jeffery’s orbit in Couette flow. The results from our numerical calculation match those predicted by Jeffery’s theory well. It is shown that both the shape of the particle and the proximity of t
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Interaction between Two, or More Particles,ial flows with one or two free surfaces have been solved using BEM by author as well as the interaction between the flow and structures. In this paper, the flow is considered to be viscous or rotational so that the governing equation becomes biharmonic one. It is shown that the biharmonic equation c
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Low Power Memory Cell Design Technique,Fundamental Green’s functions are developed for a class of heterogeneous materials for Helmholtz and Laplace equations. Although limited to specific heterogeneities, the resulting Green’s functions are particularly simple and may be used directly in standard boundary integral equation methods.
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