Synchronization and vibratory synchronization transmission of a weakly damped far-resonance vibrating system.

The self-synchronization of rotors mounted on different vibrating bodies can be easily controlled by adjusting the coupling parameters. To reveal the synchronization characteristics of a weakly damped system with two rotors mounted on different vibrating bodies, we propose a simplified physical mode...

Full description

Bibliographic Details
Main Authors: Bang Chen, Xiao'ou Xia, Xiaobo Wang
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2019-01-01
Series:PLoS ONE
Online Access:https://doi.org/10.1371/journal.pone.0209703
_version_ 1818588299260854272
author Bang Chen
Xiao'ou Xia
Xiaobo Wang
author_facet Bang Chen
Xiao'ou Xia
Xiaobo Wang
author_sort Bang Chen
collection DOAJ
description The self-synchronization of rotors mounted on different vibrating bodies can be easily controlled by adjusting the coupling parameters. To reveal the synchronization characteristics of a weakly damped system with two rotors mounted on different vibrating bodies, we propose a simplified physical model. The topics described in this paper are related to coupling dynamic problems between two vibrating systems. Both synchronization and vibratory synchronization transmission of the system are studied. The coupling mechanism between the two rotors is analyzed to derive the synchronization condition and the stability criterion of the system. The vibration of the system is described by an averaging method that can separate fast motion (high frequency) from slow motion (low frequency). Theoretical research shows that vibration torque is the key factor in balancing the energy distribution between the rotors. Taking the maximum vibration torque (MVT) as a critical parameter, we investigate the synchronization characteristics of the vibrating system in different cases. The curve of the maximum vibration torque (MVT) versus coupling frequency is divided into several parts by the coupling characteristic frequency and the input torque difference between the rotors. Simulations of the system with coupling frequencies from different parts are carried out. For the system with rotational frequencies larger than the natural frequencies, the coupling characteristic frequency or characteristic frequency curve should be considered. When the coupling frequency is close to the characteristic frequency or the vibration state is close to the characteristic frequency curve, self-synchronization of the two rotors can be obtained easily. Under certain conditions when the coupling effect between the rotors is strong enough, the rotors can maintain synchronous rotation even when one of the two motors is shut off after synchronization is achieved, which is called vibratory synchronization transmission. Vibratory synchronization transmission of the system occurs in a new synchronous condition, and the phase difference between the rotors takes on a new value, that is, the system approaches a new synchronization state.
first_indexed 2024-12-16T09:22:33Z
format Article
id doaj.art-e46477d192d3478ea43f14e7848a9b24
institution Directory Open Access Journal
issn 1932-6203
language English
last_indexed 2024-12-16T09:22:33Z
publishDate 2019-01-01
publisher Public Library of Science (PLoS)
record_format Article
series PLoS ONE
spelling doaj.art-e46477d192d3478ea43f14e7848a9b242022-12-21T22:36:44ZengPublic Library of Science (PLoS)PLoS ONE1932-62032019-01-01143e020970310.1371/journal.pone.0209703Synchronization and vibratory synchronization transmission of a weakly damped far-resonance vibrating system.Bang ChenXiao'ou XiaXiaobo WangThe self-synchronization of rotors mounted on different vibrating bodies can be easily controlled by adjusting the coupling parameters. To reveal the synchronization characteristics of a weakly damped system with two rotors mounted on different vibrating bodies, we propose a simplified physical model. The topics described in this paper are related to coupling dynamic problems between two vibrating systems. Both synchronization and vibratory synchronization transmission of the system are studied. The coupling mechanism between the two rotors is analyzed to derive the synchronization condition and the stability criterion of the system. The vibration of the system is described by an averaging method that can separate fast motion (high frequency) from slow motion (low frequency). Theoretical research shows that vibration torque is the key factor in balancing the energy distribution between the rotors. Taking the maximum vibration torque (MVT) as a critical parameter, we investigate the synchronization characteristics of the vibrating system in different cases. The curve of the maximum vibration torque (MVT) versus coupling frequency is divided into several parts by the coupling characteristic frequency and the input torque difference between the rotors. Simulations of the system with coupling frequencies from different parts are carried out. For the system with rotational frequencies larger than the natural frequencies, the coupling characteristic frequency or characteristic frequency curve should be considered. When the coupling frequency is close to the characteristic frequency or the vibration state is close to the characteristic frequency curve, self-synchronization of the two rotors can be obtained easily. Under certain conditions when the coupling effect between the rotors is strong enough, the rotors can maintain synchronous rotation even when one of the two motors is shut off after synchronization is achieved, which is called vibratory synchronization transmission. Vibratory synchronization transmission of the system occurs in a new synchronous condition, and the phase difference between the rotors takes on a new value, that is, the system approaches a new synchronization state.https://doi.org/10.1371/journal.pone.0209703
spellingShingle Bang Chen
Xiao'ou Xia
Xiaobo Wang
Synchronization and vibratory synchronization transmission of a weakly damped far-resonance vibrating system.
PLoS ONE
title Synchronization and vibratory synchronization transmission of a weakly damped far-resonance vibrating system.
title_full Synchronization and vibratory synchronization transmission of a weakly damped far-resonance vibrating system.
title_fullStr Synchronization and vibratory synchronization transmission of a weakly damped far-resonance vibrating system.
title_full_unstemmed Synchronization and vibratory synchronization transmission of a weakly damped far-resonance vibrating system.
title_short Synchronization and vibratory synchronization transmission of a weakly damped far-resonance vibrating system.
title_sort synchronization and vibratory synchronization transmission of a weakly damped far resonance vibrating system
url https://doi.org/10.1371/journal.pone.0209703
work_keys_str_mv AT bangchen synchronizationandvibratorysynchronizationtransmissionofaweaklydampedfarresonancevibratingsystem
AT xiaoouxia synchronizationandvibratorysynchronizationtransmissionofaweaklydampedfarresonancevibratingsystem
AT xiaobowang synchronizationandvibratorysynchronizationtransmissionofaweaklydampedfarresonancevibratingsystem