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Computational Acoustics
~
Kaltenbacher, Manfred.
Computational Acoustics
Record Type:
Language materials, printed : Monograph/item
Title/Author:
Computational Acoustics/ edited by Manfred Kaltenbacher.
other author:
Kaltenbacher, Manfred.
Description:
VII, 251 p. 122 illus., 89 illus. in color.online resource. :
Contained By:
Springer Nature eBook
Subject:
Acoustical engineering. -
Online resource:
https://doi.org/10.1007/978-3-319-59038-7
ISBN:
9783319590387
Computational Acoustics
Computational Acoustics
[electronic resource] /edited by Manfred Kaltenbacher. - 1st ed. 2018. - VII, 251 p. 122 illus., 89 illus. in color.online resource. - CISM International Centre for Mechanical Sciences, Courses and Lectures,5790254-1971 ;. - CISM International Centre for Mechanical Sciences, Courses and Lectures,559.
Fundamental equations of acoustics -- Non-conforming finite elements for flexible discretization with applications to aeroacoustics -- Boundary element methods -- Direct aeroacoustic simulations based on high order discontinuous Galerkin schemes -- Algebraic solvers.
The book presents a state-of-art overview of numerical schemes efficiently solving the acoustic conservation equations (unknowns are acoustic pressure and particle velocity) and the acoustic wave equation (pressure of acoustic potential formulation). Thereby, the different equations model both vibrational- and flow-induced sound generation and its propagation. Latest numerical schemes as higher order finite elements, non-conforming grid techniques, discontinuous Galerkin approaches and boundary element methods are discussed. Main applications will be towards aerospace, rail and automotive industry as well as medical engineering. The team of authors are able to address these topics from the engineering as well as numerical points of view.
ISBN: 9783319590387
Standard No.: 10.1007/978-3-319-59038-7doiSubjects--Topical Terms:
563185
Acoustical engineering.
LC Class. No.: TA365-367.5
Dewey Class. No.: 620.2
Computational Acoustics
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The book presents a state-of-art overview of numerical schemes efficiently solving the acoustic conservation equations (unknowns are acoustic pressure and particle velocity) and the acoustic wave equation (pressure of acoustic potential formulation). Thereby, the different equations model both vibrational- and flow-induced sound generation and its propagation. Latest numerical schemes as higher order finite elements, non-conforming grid techniques, discontinuous Galerkin approaches and boundary element methods are discussed. Main applications will be towards aerospace, rail and automotive industry as well as medical engineering. The team of authors are able to address these topics from the engineering as well as numerical points of view.
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