Dynamic response prediction of non-obstructive particle damping using principles of gas-solid flows

Particle damping is a kind of passive and strongly nonlinear damping for energy dissipation. Many researchers have expended huge amounts of effort and time to study internal mechanism of particle damping. However, there is not a systematic and feasible approach for estimating damping performance of...

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Main Authors: Xiaofei Lei, Chengjun Wu
Format: Article
Language:English
Published: JVE International 2016-11-01
Series:Journal of Vibroengineering
Subjects:
Online Access:https://www.jvejournals.com/article/17283
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spelling doaj-3862fb9a127842e8a5ba3383621e7b632020-11-24T21:17:02ZengJVE InternationalJournal of Vibroengineering1392-87162538-84602016-11-011874692470410.21595/jve.2016.1728317283Dynamic response prediction of non-obstructive particle damping using principles of gas-solid flowsXiaofei Lei0Chengjun Wu1School of Mechanical Engineering, Xi’an Jiaotong University, Xi’an, Shaanxi, P. R. ChinaSchool of Mechanical Engineering, Xi’an Jiaotong University, Xi’an, Shaanxi, P. R. ChinaParticle damping is a kind of passive and strongly nonlinear damping for energy dissipation. Many researchers have expended huge amounts of effort and time to study internal mechanism of particle damping. However, there is not a systematic and feasible approach for estimating damping performance of non-obstructive particle damping (NOPD). In this paper, we performed studies to mathematically evaluate the damping effect of particle damping based on principles of gas-solid flows. In consideration of the structural characteristics of NOPD which granular materials should be filled into sealed cavity of vibrating structure and the damping act on lateral and bottom of holes in NOPD technology, the gross damping is divided into lateral damping and bottom damping by Janson's theory of stress change direction. And the damping coefficients are compiled into a plug-in by MATLAB and are invoked in FEM software by enterprise integration kits of COMSOL. Meanwhile the frequency domain and time domain analysis of the experiment are used to verify the prediction accuracy of dynamic vibration response of an aluminium cantilever beam which ONPD is imposed at the free end with different packing rate and granular material, the result indicate that the mathematical model has excellent performance to predict the dynamic vibration response of NOPD. Then, the relationship damping effect with the particle filling ratio, particle density and length-diameter ratio of the hole is also researched using co-simulation, it should be noted that larger packing rate and particle density, smaller length-diameter ratio of the hole can play excellent damping effects in NOPD.https://www.jvejournals.com/article/17283damping distributionnon-obstructive particle dampingacceleration dynamic responseco-simulation technology
collection DOAJ
language English
format Article
sources DOAJ
author Xiaofei Lei
Chengjun Wu
spellingShingle Xiaofei Lei
Chengjun Wu
Dynamic response prediction of non-obstructive particle damping using principles of gas-solid flows
Journal of Vibroengineering
damping distribution
non-obstructive particle damping
acceleration dynamic response
co-simulation technology
author_facet Xiaofei Lei
Chengjun Wu
author_sort Xiaofei Lei
title Dynamic response prediction of non-obstructive particle damping using principles of gas-solid flows
title_short Dynamic response prediction of non-obstructive particle damping using principles of gas-solid flows
title_full Dynamic response prediction of non-obstructive particle damping using principles of gas-solid flows
title_fullStr Dynamic response prediction of non-obstructive particle damping using principles of gas-solid flows
title_full_unstemmed Dynamic response prediction of non-obstructive particle damping using principles of gas-solid flows
title_sort dynamic response prediction of non-obstructive particle damping using principles of gas-solid flows
publisher JVE International
series Journal of Vibroengineering
issn 1392-8716
2538-8460
publishDate 2016-11-01
description Particle damping is a kind of passive and strongly nonlinear damping for energy dissipation. Many researchers have expended huge amounts of effort and time to study internal mechanism of particle damping. However, there is not a systematic and feasible approach for estimating damping performance of non-obstructive particle damping (NOPD). In this paper, we performed studies to mathematically evaluate the damping effect of particle damping based on principles of gas-solid flows. In consideration of the structural characteristics of NOPD which granular materials should be filled into sealed cavity of vibrating structure and the damping act on lateral and bottom of holes in NOPD technology, the gross damping is divided into lateral damping and bottom damping by Janson's theory of stress change direction. And the damping coefficients are compiled into a plug-in by MATLAB and are invoked in FEM software by enterprise integration kits of COMSOL. Meanwhile the frequency domain and time domain analysis of the experiment are used to verify the prediction accuracy of dynamic vibration response of an aluminium cantilever beam which ONPD is imposed at the free end with different packing rate and granular material, the result indicate that the mathematical model has excellent performance to predict the dynamic vibration response of NOPD. Then, the relationship damping effect with the particle filling ratio, particle density and length-diameter ratio of the hole is also researched using co-simulation, it should be noted that larger packing rate and particle density, smaller length-diameter ratio of the hole can play excellent damping effects in NOPD.
topic damping distribution
non-obstructive particle damping
acceleration dynamic response
co-simulation technology
url https://www.jvejournals.com/article/17283
work_keys_str_mv AT xiaofeilei dynamicresponsepredictionofnonobstructiveparticledampingusingprinciplesofgassolidflows
AT chengjunwu dynamicresponsepredictionofnonobstructiveparticledampingusingprinciplesofgassolidflows
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