Effects of general structural stress on vibrational power flow

Vibrational power flow contains two types of information, namely, vibration velocity and structural internal force, and is an important parameter for measuring vibration level and transmission. Structures are often under stress because of the working environment. This stress changes the vibration ve...

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Main Authors: Hongdong Wang, Nian Yang, Xiaofeng Liang, Hong Yi
Format: Article
Language:English
Published: SAGE Publishing 2019-03-01
Series:Journal of Low Frequency Noise, Vibration and Active Control
Online Access:https://doi.org/10.1177/1461348418813027
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spelling doaj-4df5c5d773904ea09a1303c878e82d802020-11-25T03:22:47ZengSAGE PublishingJournal of Low Frequency Noise, Vibration and Active Control1461-34842048-40462019-03-013810.1177/1461348418813027Effects of general structural stress on vibrational power flowHongdong WangNian YangXiaofeng LiangHong YiVibrational power flow contains two types of information, namely, vibration velocity and structural internal force, and is an important parameter for measuring vibration level and transmission. Structures are often under stress because of the working environment. This stress changes the vibration velocity and internal force of the structure. As a result, this stress affects the power flow. In practical engineering, structural stress often has a complex distribution. However, earlier studies mainly focused on the overall uniformly distributed stress, which cannot be applied to practical engineering vibration problems. The finite element method can handle this problem, but has several shortcomings, such as the lack of a clear explanation of the essential relationship between structural stress and vibration, the complicated process of applying specific stress, and the large number of calculations. This study considers the effect of general structural stress and determines the dynamic equation of a structure undergoing stress. By utilizing the orthogonality of specific order modes to decouple, we obtain the power flow analytical solution, which can be applied to structures with arbitrary distributed stress. Finally, we calculate and analyze the effect of structural stress on a welding plate. Results show that structural stress has a more significant effect on power flow than velocity and inner force and should be taken into account when considering vibration prediction and reduction in practical engineering.https://doi.org/10.1177/1461348418813027
collection DOAJ
language English
format Article
sources DOAJ
author Hongdong Wang
Nian Yang
Xiaofeng Liang
Hong Yi
spellingShingle Hongdong Wang
Nian Yang
Xiaofeng Liang
Hong Yi
Effects of general structural stress on vibrational power flow
Journal of Low Frequency Noise, Vibration and Active Control
author_facet Hongdong Wang
Nian Yang
Xiaofeng Liang
Hong Yi
author_sort Hongdong Wang
title Effects of general structural stress on vibrational power flow
title_short Effects of general structural stress on vibrational power flow
title_full Effects of general structural stress on vibrational power flow
title_fullStr Effects of general structural stress on vibrational power flow
title_full_unstemmed Effects of general structural stress on vibrational power flow
title_sort effects of general structural stress on vibrational power flow
publisher SAGE Publishing
series Journal of Low Frequency Noise, Vibration and Active Control
issn 1461-3484
2048-4046
publishDate 2019-03-01
description Vibrational power flow contains two types of information, namely, vibration velocity and structural internal force, and is an important parameter for measuring vibration level and transmission. Structures are often under stress because of the working environment. This stress changes the vibration velocity and internal force of the structure. As a result, this stress affects the power flow. In practical engineering, structural stress often has a complex distribution. However, earlier studies mainly focused on the overall uniformly distributed stress, which cannot be applied to practical engineering vibration problems. The finite element method can handle this problem, but has several shortcomings, such as the lack of a clear explanation of the essential relationship between structural stress and vibration, the complicated process of applying specific stress, and the large number of calculations. This study considers the effect of general structural stress and determines the dynamic equation of a structure undergoing stress. By utilizing the orthogonality of specific order modes to decouple, we obtain the power flow analytical solution, which can be applied to structures with arbitrary distributed stress. Finally, we calculate and analyze the effect of structural stress on a welding plate. Results show that structural stress has a more significant effect on power flow than velocity and inner force and should be taken into account when considering vibration prediction and reduction in practical engineering.
url https://doi.org/10.1177/1461348418813027
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AT nianyang effectsofgeneralstructuralstressonvibrationalpowerflow
AT xiaofengliang effectsofgeneralstructuralstressonvibrationalpowerflow
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