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Titlebook: Computational Acoustics of Noise Propagation in Fluids - Finite and Boundary Element Methods; Steffen Marburg,Bodo Nolte Book 2008 Springe

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楼主: MOTE
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https://doi.org/10.1007/978-3-319-05272-4tific theory of the generation of noise by aerodynamic flows has been established, most practical aeroacoustic analysis relies upon the so–called Acoustic Analogy, whereby the governing equations of fluid dynamics are rewritten into a wave like equation. The most common and a widely–used formulation
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Rajiv Ranjan Srivastava,Sadia Ilyasudy is associated with an unbounded medium, yet one is interested (or is forced) to solve the problem in a finite computational domain. In this context the artificial boundaries are often called absorbing boundaries, for reasons that will be explained. After discussing the difficulties involved, the
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Sedimentary Rocks and the Oceans,er alternative boundary treatments for such problems. For example, they provide a direct numerical estimate of the solution at all points in the outer domain and by using elements of arbitrary radial order they give an anechoic boundary condition which is accurate to an arbitrary order of approximat
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The Pigeonhole and Multiplicity Boundss rods, beams, plates, and acoustical enclosures. The methodology for predicting the behavior in the subsystems is based on a diffuse energy field approximation that is most appropriate for high frequency analysis where traditional finite element approaches become expensive. Subsystems are coupled t
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Pollard’s Theorem for General Abelian Groupsuestion of using either continuous or discontinuous elements for collocation. Continuous interpolation of the sound pressure has been favored in most applications of boundary element methods for acoustics. Only a few papers are known where discontinuous elements are applied because they guarantee C1
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Robert D. Adams,William C. Wakect solution of the fully populated system of linear equations. Strategies to reduce this complexity are discussed in this paper. The . .) complexity issuing from the direct solution is first reduced to . .) by using iterative solvers. Krylov subspace methods as well as strategies of preconditioning
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