Research on prediction of dynamics of impact damper with granular materials (The case of vertical vibration)

The Impact damper with granular materials has a high damping effect for wide frequency range and it is used in many fields. Many researches have been made on the prediction of the damping effect of this damper on one degree of freedom spring-mass system. But it is more useful to be able to predict t...

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Main Authors: Koichi HONKE, Kyoko MASUDA, Kazuki TSUGIHASHI, Akio SUGIMOTO
Format: Article
Language:Japanese
Published: The Japan Society of Mechanical Engineers 2017-11-01
Series:Nihon Kikai Gakkai ronbunshu
Subjects:
Online Access:https://www.jstage.jst.go.jp/article/transjsme/83/855/83_17-00173/_pdf/-char/en
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author Koichi HONKE
Kyoko MASUDA
Kazuki TSUGIHASHI
Akio SUGIMOTO
author_facet Koichi HONKE
Kyoko MASUDA
Kazuki TSUGIHASHI
Akio SUGIMOTO
author_sort Koichi HONKE
collection DOAJ
description The Impact damper with granular materials has a high damping effect for wide frequency range and it is used in many fields. Many researches have been made on the prediction of the damping effect of this damper on one degree of freedom spring-mass system. But it is more useful to be able to predict the damping effect when applied to a real complex structure. For this purpose, numerical modeling of damping effect of an impact damper is important for efficient design of structures set with dampers. In this paper, the granular materials are modeled as one mass point of restitution coefficient of zero that undergo displacement vibration excitation, and the motion of this mass point is theoretically analyzed for the case of vertical vibration and one side collision. From these results, we propose a method for obtaining the macroscopic damping effect of the impact damper with granular materials. This is obtained as a nonlinear equivalent mass ratio and nonlinear damping coefficient with amplitude dependence. Further the excitation experiment which identified the damping characteristic of the damper was carried out. Theoretical solution and experimental result show the good coincidence.
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spelling doaj.art-e98beb357149434788886ca73ba183cf2022-12-22T02:47:22ZjpnThe Japan Society of Mechanical EngineersNihon Kikai Gakkai ronbunshu2187-97612017-11-018385517-0017317-0017310.1299/transjsme.17-00173transjsmeResearch on prediction of dynamics of impact damper with granular materials (The case of vertical vibration)Koichi HONKE0Kyoko MASUDA1Kazuki TSUGIHASHI2Akio SUGIMOTO3Kobe Steel, LTD., Mechanical Engineering Research LaboratoryKobe Steel, LTD., Mechanical Engineering Research LaboratoryKobe Steel, LTD., Mechanical Engineering Research LaboratoryKobe Steel, LTD., Mechanical Engineering Research LaboratoryThe Impact damper with granular materials has a high damping effect for wide frequency range and it is used in many fields. Many researches have been made on the prediction of the damping effect of this damper on one degree of freedom spring-mass system. But it is more useful to be able to predict the damping effect when applied to a real complex structure. For this purpose, numerical modeling of damping effect of an impact damper is important for efficient design of structures set with dampers. In this paper, the granular materials are modeled as one mass point of restitution coefficient of zero that undergo displacement vibration excitation, and the motion of this mass point is theoretically analyzed for the case of vertical vibration and one side collision. From these results, we propose a method for obtaining the macroscopic damping effect of the impact damper with granular materials. This is obtained as a nonlinear equivalent mass ratio and nonlinear damping coefficient with amplitude dependence. Further the excitation experiment which identified the damping characteristic of the damper was carried out. Theoretical solution and experimental result show the good coincidence.https://www.jstage.jst.go.jp/article/transjsme/83/855/83_17-00173/_pdf/-char/enimpact dampergranular materialdamping effectcollision vibrationnumerical model
spellingShingle Koichi HONKE
Kyoko MASUDA
Kazuki TSUGIHASHI
Akio SUGIMOTO
Research on prediction of dynamics of impact damper with granular materials (The case of vertical vibration)
Nihon Kikai Gakkai ronbunshu
impact damper
granular material
damping effect
collision vibration
numerical model
title Research on prediction of dynamics of impact damper with granular materials (The case of vertical vibration)
title_full Research on prediction of dynamics of impact damper with granular materials (The case of vertical vibration)
title_fullStr Research on prediction of dynamics of impact damper with granular materials (The case of vertical vibration)
title_full_unstemmed Research on prediction of dynamics of impact damper with granular materials (The case of vertical vibration)
title_short Research on prediction of dynamics of impact damper with granular materials (The case of vertical vibration)
title_sort research on prediction of dynamics of impact damper with granular materials the case of vertical vibration
topic impact damper
granular material
damping effect
collision vibration
numerical model
url https://www.jstage.jst.go.jp/article/transjsme/83/855/83_17-00173/_pdf/-char/en
work_keys_str_mv AT koichihonke researchonpredictionofdynamicsofimpactdamperwithgranularmaterialsthecaseofverticalvibration
AT kyokomasuda researchonpredictionofdynamicsofimpactdamperwithgranularmaterialsthecaseofverticalvibration
AT kazukitsugihashi researchonpredictionofdynamicsofimpactdamperwithgranularmaterialsthecaseofverticalvibration
AT akiosugimoto researchonpredictionofdynamicsofimpactdamperwithgranularmaterialsthecaseofverticalvibration