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A Decoupled Unified Observation Method of Stochastic Multidimensional Vibration for Wind Tunnel Models

Active vibration control is the most effective method for stochastic multidimensional vibration in wind tunnel tests, in which vibration monitoring is the core foundation. Vibrations are induced by the disturbances of several complex air flow instabilities under extreme test conditions with high att...

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Autores principales: Zhou, Mengde, Liu, Wei, Wang, Qinqin, Liang, Bing, Tang, Linlin, Zhang, Yang, Cui, Xiaochun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7506902/
https://www.ncbi.nlm.nih.gov/pubmed/32825323
http://dx.doi.org/10.3390/s20174694
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author Zhou, Mengde
Liu, Wei
Wang, Qinqin
Liang, Bing
Tang, Linlin
Zhang, Yang
Cui, Xiaochun
author_facet Zhou, Mengde
Liu, Wei
Wang, Qinqin
Liang, Bing
Tang, Linlin
Zhang, Yang
Cui, Xiaochun
author_sort Zhou, Mengde
collection PubMed
description Active vibration control is the most effective method for stochastic multidimensional vibration in wind tunnel tests, in which vibration monitoring is the core foundation. Vibrations are induced by the disturbances of several complex air flow instabilities under extreme test conditions with high attack angles. Here, a decoupled unified observation method is proposed in order to fully monitor stochastic multidimensional vibration. First, stochastic multidimensional vibration is explained using the Cartesian coordinate system. Then, the multidimensional vibration decoupling of the pitch plane and the yaw plane is realized according to the proposed decoupling design principle of the long cantilever sting. A unified observation method is presented, based on inertial force theory, to observe multidimensional vibration due to acceleration in each decoupling plane. Verification experiments were conducted in lab and a transonic wind tunnel, using an established real-time monitoring system. The results of lab experiments indicate that, in the frequency region of 0–120 Hz, three vibration modes of a selected stochastic vibration can be decoupled and observed through the vibration components in pitch plane and yaw plane. In addition, wind tunnel tests were carried out according to the working conditions (α = −4~10° with γ = 45°) at Ma = 0.6 and Ma = 0.7, respectively. The results show that six vibration modes of two selected stochastic vibrations can be decoupled and observed through the vibration components in pitch plane and yaw plane. The experimental results prove that stochastic vibration can be fully monitored in multiple dimensions through the vibration components in pitch plane and yaw plane using the proposed decoupled unified observation method. Therefore, these results lay the foundation for active vibration control.
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spelling pubmed-75069022020-09-30 A Decoupled Unified Observation Method of Stochastic Multidimensional Vibration for Wind Tunnel Models Zhou, Mengde Liu, Wei Wang, Qinqin Liang, Bing Tang, Linlin Zhang, Yang Cui, Xiaochun Sensors (Basel) Article Active vibration control is the most effective method for stochastic multidimensional vibration in wind tunnel tests, in which vibration monitoring is the core foundation. Vibrations are induced by the disturbances of several complex air flow instabilities under extreme test conditions with high attack angles. Here, a decoupled unified observation method is proposed in order to fully monitor stochastic multidimensional vibration. First, stochastic multidimensional vibration is explained using the Cartesian coordinate system. Then, the multidimensional vibration decoupling of the pitch plane and the yaw plane is realized according to the proposed decoupling design principle of the long cantilever sting. A unified observation method is presented, based on inertial force theory, to observe multidimensional vibration due to acceleration in each decoupling plane. Verification experiments were conducted in lab and a transonic wind tunnel, using an established real-time monitoring system. The results of lab experiments indicate that, in the frequency region of 0–120 Hz, three vibration modes of a selected stochastic vibration can be decoupled and observed through the vibration components in pitch plane and yaw plane. In addition, wind tunnel tests were carried out according to the working conditions (α = −4~10° with γ = 45°) at Ma = 0.6 and Ma = 0.7, respectively. The results show that six vibration modes of two selected stochastic vibrations can be decoupled and observed through the vibration components in pitch plane and yaw plane. The experimental results prove that stochastic vibration can be fully monitored in multiple dimensions through the vibration components in pitch plane and yaw plane using the proposed decoupled unified observation method. Therefore, these results lay the foundation for active vibration control. MDPI 2020-08-20 /pmc/articles/PMC7506902/ /pubmed/32825323 http://dx.doi.org/10.3390/s20174694 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Zhou, Mengde
Liu, Wei
Wang, Qinqin
Liang, Bing
Tang, Linlin
Zhang, Yang
Cui, Xiaochun
A Decoupled Unified Observation Method of Stochastic Multidimensional Vibration for Wind Tunnel Models
title A Decoupled Unified Observation Method of Stochastic Multidimensional Vibration for Wind Tunnel Models
title_full A Decoupled Unified Observation Method of Stochastic Multidimensional Vibration for Wind Tunnel Models
title_fullStr A Decoupled Unified Observation Method of Stochastic Multidimensional Vibration for Wind Tunnel Models
title_full_unstemmed A Decoupled Unified Observation Method of Stochastic Multidimensional Vibration for Wind Tunnel Models
title_short A Decoupled Unified Observation Method of Stochastic Multidimensional Vibration for Wind Tunnel Models
title_sort decoupled unified observation method of stochastic multidimensional vibration for wind tunnel models
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7506902/
https://www.ncbi.nlm.nih.gov/pubmed/32825323
http://dx.doi.org/10.3390/s20174694
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