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  • ASME International  (2)
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  • ASME International  (2)
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  • 1
    Online Resource
    Online Resource
    ASME International ; 2013
    In:  Journal of Vibration and Acoustics Vol. 135, No. 3 ( 2013-06-01)
    In: Journal of Vibration and Acoustics, ASME International, Vol. 135, No. 3 ( 2013-06-01)
    Abstract: A general wave approach for the vibration analysis of curved beam structures is presented. The analysis is based on wave propagation, transmission, and reflection, including the effects of both propagating and decaying near-field wave components. A matrix formulation is used that offers a systematic and concise method for tackling free and forced vibrations of complex curved beam structures. To illustrate the effectiveness of the approach, several numerical examples are presented. The predictions made using the wave approach are shown to be in excellent agreement with a conventional finite element analysis, with the advantage of reduced computational costs and good conditioning number of the characteristic equation. The developed wave approach is applied to investigate the free vibration, vibration transmission, and power flow of built-up structures consisting of curved beams, straight beams, and masses, with the aim for designing vibration isolation structure with high attenuation ability. Wave reflection and transmission in the infinite curved beam structure, as well as vibration and energy transmission in coupled finite curved beam structure are investigated. Numerical results show that wave mode conversion takes place for the reflected and transmitted wave propagating through a curved beam, and the power flow in the coupled curved beam structure shows energy attenuation and conversion by curved beam and the discontinuities. The investigation will shed some light on the designing of curved beam structures.
    Type of Medium: Online Resource
    ISSN: 1048-9002 , 1528-8927
    Language: English
    Publisher: ASME International
    Publication Date: 2013
    Location Call Number Limitation Availability
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  • 2
    Online Resource
    Online Resource
    ASME International ; 2012
    In:  Journal of Vibration and Acoustics Vol. 134, No. 1 ( 2012-02-01)
    In: Journal of Vibration and Acoustics, ASME International, Vol. 134, No. 1 ( 2012-02-01)
    Abstract: Numerical simulation of vibration control of a submerged stiffened cylindrical structure with active vibration isolators is presented. Vibration transmission from vibrating machinery to the cylindrical structure through the active vibration isolators is analyzed by a numerical model synthesized from frequency response functions (FRFs) and impedances. The coupled finite element/boundary element (FE/BE) method is employed to study the vibro-acoustic behavior of the fluid-loaded cylindrical structure. Sound pressure in the far-field is calculated in terms of the pressure and normal acceleration of the outer surface of the cylindrical shell. An adaptive multichannel control based on the filtered-x least mean squares (FxLMS) algorithm is used in the active vibration isolation. Simulation results have demonstrated that suppression of vibration of the four elastic foundations attached to the cylindrical shell will reduce the spatial-average mean-square velocity and the instantaneous radiated power of the cylindrical shell. As a result, suppression of vibration of the foundations leads to attenuation of sound radiation in the far-field induced by the radial displacement dominant mode of the shell. Moreover, vibration suppression is greatly influenced by the strong couplings among control channels. According to these results, it can be concluded that the proposed method is effective in the analysis of underwater sound radiation control of cylindrical structures.
    Type of Medium: Online Resource
    ISSN: 1048-9002 , 1528-8927
    Language: English
    Publisher: ASME International
    Publication Date: 2012
    Location Call Number Limitation Availability
    BibTip Others were also interested in ...
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