Isogeometric modeling and vibro-acoustic analysis of flow-excited irregular cavity-plate-exterior space coupled system

•Isogeometric modeling of the flow-excited cavity-plate-exterior space coupled system.•Transferring pressure data from CFD into the isogeometric vibro-acoustic model.•Natural frequencies of the cavity-plate-exterior space coupled system.•Cavities with irregular geometries such as convex or concave s...

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Veröffentlicht in:Journal of sound and vibration 2025-01, Vol.595, p.118712, Article 118712
Hauptverfasser: Song, Xiaoji, Jin, Guoyong, Zhong, Saifeng, Ye, Tiangui, Chen, Yukun
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Sprache:eng
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Zusammenfassung:•Isogeometric modeling of the flow-excited cavity-plate-exterior space coupled system.•Transferring pressure data from CFD into the isogeometric vibro-acoustic model.•Natural frequencies of the cavity-plate-exterior space coupled system.•Cavities with irregular geometries such as convex or concave shapes. The flow-induced noise has become an important noise source in marine sonar self-noise, which can adversely affect the normal operation of sonar. The marine sonar cabin is simplified as a cavity-plate-exterior space coupled system whose flow-induced vibro-acoustic characteristics are investigated in this paper. An isogeometric vibro-acoustic formulation is proposed in which the cavity with an irregular geometry is precisely described by adjusting the control points and corresponding weights. The flow-induced vibro-acoustic response is obtained by transferring the turbulent pressure data from computational fluid dynamics into the isogeometric vibro-acoustic model. Imposing turbulent pressure into the isogeometric control points is proposed to achieve this objective using a node-based interpolation method. The vibro-acoustic modeling is validated and compared with previous experimental results. These comparisons demonstrate that the developed formulation accurately predicts the vibro-acoustic characteristics of the fluid-excited coupled system. The influences of flow speed, acoustic medium, and cavity shape on flow-excited vibration and sound radiation are discussed. Results show a decrease in radiated acoustic power and radiation efficiency in the exterior space, and a shift in the plate-exterior space coupling modal frequency to lower frequencies when the cavity changes from convex to concave.
ISSN:0022-460X
DOI:10.1016/j.jsv.2024.118712