New approach based on operational strain modal analysis to identify dynamical properties of the high-speed reciprocating operation mechanism

A high-speed reciprocating operating mechanism with fast running and frequent stopping produces a certain vibration due to inertia. The inherent vibration of this mechanism becomes a key factor affecting positioning accuracy and time. However, the existing vibration identification method is suitable...

Full description

Bibliographic Details
Main Authors: Xuchu Jiang, Bin Li, Xinyong Mao, Yili Peng, Songping He
Format: Article
Language:English
Published: SAGE Publishing 2019-12-01
Series:Journal of Low Frequency Noise, Vibration and Active Control
Online Access:https://doi.org/10.1177/1461348418821203
id doaj-c8bec6a2d9a64c9e931676fcf371e246
record_format Article
spelling doaj-c8bec6a2d9a64c9e931676fcf371e2462020-11-25T03:17:37ZengSAGE PublishingJournal of Low Frequency Noise, Vibration and Active Control1461-34842048-40462019-12-013810.1177/1461348418821203New approach based on operational strain modal analysis to identify dynamical properties of the high-speed reciprocating operation mechanismXuchu JiangBin LiXinyong MaoYili PengSongping HeA high-speed reciprocating operating mechanism with fast running and frequent stopping produces a certain vibration due to inertia. The inherent vibration of this mechanism becomes a key factor affecting positioning accuracy and time. However, the existing vibration identification method is suitable only for static or low-speed structure operations. Therefore, a method of identification for operational modal parameters based on strain response is proposed. This method combines the strain mode with the operational modal analysis method, both of which are verified under the static and operational states, respectively. First, the theoretical background of the identification method is derived. Next, the proposed approach is used to identify the displacement mode shapes and the strain mode shapes of the beam structure with modal parameters that are obtained by experimental modal analysis. These results show that the beam structure presents different displacement mode shapes and strain mode shapes under different constraints. Finally, the displacement mode shapes of the sorting arm are obtained by the method under operation. The recognition results are compared with the computational modal analysis, and the two mode shapes are found to be highly consistent, which verifies that the method is equally reliable during operation. This method expands the application scope of the classic experimental modal analysis and reduces the error because of the additional mass of the actual sensor.https://doi.org/10.1177/1461348418821203
collection DOAJ
language English
format Article
sources DOAJ
author Xuchu Jiang
Bin Li
Xinyong Mao
Yili Peng
Songping He
spellingShingle Xuchu Jiang
Bin Li
Xinyong Mao
Yili Peng
Songping He
New approach based on operational strain modal analysis to identify dynamical properties of the high-speed reciprocating operation mechanism
Journal of Low Frequency Noise, Vibration and Active Control
author_facet Xuchu Jiang
Bin Li
Xinyong Mao
Yili Peng
Songping He
author_sort Xuchu Jiang
title New approach based on operational strain modal analysis to identify dynamical properties of the high-speed reciprocating operation mechanism
title_short New approach based on operational strain modal analysis to identify dynamical properties of the high-speed reciprocating operation mechanism
title_full New approach based on operational strain modal analysis to identify dynamical properties of the high-speed reciprocating operation mechanism
title_fullStr New approach based on operational strain modal analysis to identify dynamical properties of the high-speed reciprocating operation mechanism
title_full_unstemmed New approach based on operational strain modal analysis to identify dynamical properties of the high-speed reciprocating operation mechanism
title_sort new approach based on operational strain modal analysis to identify dynamical properties of the high-speed reciprocating operation mechanism
publisher SAGE Publishing
series Journal of Low Frequency Noise, Vibration and Active Control
issn 1461-3484
2048-4046
publishDate 2019-12-01
description A high-speed reciprocating operating mechanism with fast running and frequent stopping produces a certain vibration due to inertia. The inherent vibration of this mechanism becomes a key factor affecting positioning accuracy and time. However, the existing vibration identification method is suitable only for static or low-speed structure operations. Therefore, a method of identification for operational modal parameters based on strain response is proposed. This method combines the strain mode with the operational modal analysis method, both of which are verified under the static and operational states, respectively. First, the theoretical background of the identification method is derived. Next, the proposed approach is used to identify the displacement mode shapes and the strain mode shapes of the beam structure with modal parameters that are obtained by experimental modal analysis. These results show that the beam structure presents different displacement mode shapes and strain mode shapes under different constraints. Finally, the displacement mode shapes of the sorting arm are obtained by the method under operation. The recognition results are compared with the computational modal analysis, and the two mode shapes are found to be highly consistent, which verifies that the method is equally reliable during operation. This method expands the application scope of the classic experimental modal analysis and reduces the error because of the additional mass of the actual sensor.
url https://doi.org/10.1177/1461348418821203
work_keys_str_mv AT xuchujiang newapproachbasedonoperationalstrainmodalanalysistoidentifydynamicalpropertiesofthehighspeedreciprocatingoperationmechanism
AT binli newapproachbasedonoperationalstrainmodalanalysistoidentifydynamicalpropertiesofthehighspeedreciprocatingoperationmechanism
AT xinyongmao newapproachbasedonoperationalstrainmodalanalysistoidentifydynamicalpropertiesofthehighspeedreciprocatingoperationmechanism
AT yilipeng newapproachbasedonoperationalstrainmodalanalysistoidentifydynamicalpropertiesofthehighspeedreciprocatingoperationmechanism
AT songpinghe newapproachbasedonoperationalstrainmodalanalysistoidentifydynamicalpropertiesofthehighspeedreciprocatingoperationmechanism
_version_ 1724631074356592640