A Novel Approach for the Analysis of High Frequency Vibrations

Despite much effort in the past few decades, the numerical prediction of high-frequency vibrations remains a challenging task to the engineering and scientific communities due to the numerical instability of existing computational methods. However, such prediction is of crucial importance to certain...

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Main Authors: WEI, G. W., ZHAO, Yibao, XIANG, Y.
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Language:English
Published: Institutional Knowledge at Singapore Management University 2002
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Online Access:https://ink.library.smu.edu.sg/lkcsb_research/932
https://ink.library.smu.edu.sg/context/lkcsb_research/article/1931/viewcontent/Novel_approach_high_freq_2002.pdf
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spelling sg-smu-ink.lkcsb_research-19312018-08-28T07:20:14Z A Novel Approach for the Analysis of High Frequency Vibrations WEI, G. W. ZHAO, Yibao XIANG, Y. Despite much effort in the past few decades, the numerical prediction of high-frequency vibrations remains a challenging task to the engineering and scientific communities due to the numerical instability of existing computational methods. However, such prediction is of crucial importance to certain problems of pressing practical concern, as pointed out by Langley and Bardell (1998 The Aeronautical Journal102, 287-297). This paper introduces the discrete singular convolution (DSC) algorithm for the prediction and analysis of high-frequency vibration of structures. Both a beam and two-span plates are employed as test examples to demonstrate the capability of the DSC algorithm for high-frequency vibration analysis. A completely independent approach, the Levy method, is employed to provide exact solutions for a cross validation of the proposed method. The reliability of the DSC results is also validated by convergence studies. Remarkably, extremely accurate and stable results are obtained in this work, e.g., the relative DSC errors for the first 7100 modes of the beam and the first 4500 modes of the two-span plates are all <1%. No numerical instability is encountered in the present study. 2002-10-01T07:00:00Z text application/pdf https://ink.library.smu.edu.sg/lkcsb_research/932 info:doi/10.1006/jsvi.2002.5055 https://ink.library.smu.edu.sg/context/lkcsb_research/article/1931/viewcontent/Novel_approach_high_freq_2002.pdf http://creativecommons.org/licenses/by-nc-nd/4.0/ Research Collection Lee Kong Chian School Of Business eng Institutional Knowledge at Singapore Management University Physical Sciences and Mathematics
institution Singapore Management University
building SMU Libraries
continent Asia
country Singapore
Singapore
content_provider SMU Libraries
collection InK@SMU
language English
topic Physical Sciences and Mathematics
spellingShingle Physical Sciences and Mathematics
WEI, G. W.
ZHAO, Yibao
XIANG, Y.
A Novel Approach for the Analysis of High Frequency Vibrations
description Despite much effort in the past few decades, the numerical prediction of high-frequency vibrations remains a challenging task to the engineering and scientific communities due to the numerical instability of existing computational methods. However, such prediction is of crucial importance to certain problems of pressing practical concern, as pointed out by Langley and Bardell (1998 The Aeronautical Journal102, 287-297). This paper introduces the discrete singular convolution (DSC) algorithm for the prediction and analysis of high-frequency vibration of structures. Both a beam and two-span plates are employed as test examples to demonstrate the capability of the DSC algorithm for high-frequency vibration analysis. A completely independent approach, the Levy method, is employed to provide exact solutions for a cross validation of the proposed method. The reliability of the DSC results is also validated by convergence studies. Remarkably, extremely accurate and stable results are obtained in this work, e.g., the relative DSC errors for the first 7100 modes of the beam and the first 4500 modes of the two-span plates are all <1%. No numerical instability is encountered in the present study.
format text
author WEI, G. W.
ZHAO, Yibao
XIANG, Y.
author_facet WEI, G. W.
ZHAO, Yibao
XIANG, Y.
author_sort WEI, G. W.
title A Novel Approach for the Analysis of High Frequency Vibrations
title_short A Novel Approach for the Analysis of High Frequency Vibrations
title_full A Novel Approach for the Analysis of High Frequency Vibrations
title_fullStr A Novel Approach for the Analysis of High Frequency Vibrations
title_full_unstemmed A Novel Approach for the Analysis of High Frequency Vibrations
title_sort novel approach for the analysis of high frequency vibrations
publisher Institutional Knowledge at Singapore Management University
publishDate 2002
url https://ink.library.smu.edu.sg/lkcsb_research/932
https://ink.library.smu.edu.sg/context/lkcsb_research/article/1931/viewcontent/Novel_approach_high_freq_2002.pdf
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