Analyzing Vibration Mechanism of Angular Contact Ball Bearing with Compound Faults on Inner and Outer Rings

This paper investigates a method to dynamically model compound faults on the inner and outer rings of an angular contact ball bearing as well as their effects on its dynamic behavior. Gupta’s dynamic modeling method is used to consider changes in the deformation and direction of the contact load whe...

Full description

Saved in:
Bibliographic Details
Main Authors: Lihai Chen, Ma Fang, Ming Qiu, Yanfang Dong, Xiaoxu Pang, Junxing Li, Chuanmeng Yang
Format: Article
Language:English
Published: Wiley 2021-01-01
Series:Shock and Vibration
Online Access:http://dx.doi.org/10.1155/2021/9951110
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1832556371589988352
author Lihai Chen
Ma Fang
Ming Qiu
Yanfang Dong
Xiaoxu Pang
Junxing Li
Chuanmeng Yang
author_facet Lihai Chen
Ma Fang
Ming Qiu
Yanfang Dong
Xiaoxu Pang
Junxing Li
Chuanmeng Yang
author_sort Lihai Chen
collection DOAJ
description This paper investigates a method to dynamically model compound faults on the inner and outer rings of an angular contact ball bearing as well as their effects on its dynamic behavior. Gupta’s dynamic modeling method is used to consider changes in the deformation and direction of the contact load when the ball passes through the damaged area and to develop a dynamic model of compound faults in the angular contact ball bearing. The step-changing fourth-order Runge–Kutta method is used to solve the dynamic compound fault model. The time-domain signal of vibration responses in the case of a single fault in the inner and outer rings exhibited a certain periodicity, and the frequency of faults in the envelope spectrum was clear. By comparison, the periodicity of compound faults was not clear. The signals of compound faults were decomposed by the dual-tree complex wavelet transform to identify their characteristic frequency. Errors occurred between the characteristic frequency of the theoretical fault and its simulated value. They increased with the rotational speed and decreased with an increase in axial load, whereas the influence of radial load on them was minor. For compound faults on the inner and outer rings of an angular contact ball bearing, this study provides a modeling method that can describe changes in the deformation and direction of the contact load when the ball passes through the damaged area of the inner and outer rings. The work here can provide an important foundation for fault identification in angular contact ball bearings.
format Article
id doaj-art-ebb5f422556742a9a4d9c03dd5675489
institution Kabale University
issn 1875-9203
language English
publishDate 2021-01-01
publisher Wiley
record_format Article
series Shock and Vibration
spelling doaj-art-ebb5f422556742a9a4d9c03dd56754892025-02-03T05:45:37ZengWileyShock and Vibration1875-92032021-01-01202110.1155/2021/9951110Analyzing Vibration Mechanism of Angular Contact Ball Bearing with Compound Faults on Inner and Outer RingsLihai Chen0Ma Fang1Ming Qiu2Yanfang Dong3Xiaoxu Pang4Junxing Li5Chuanmeng Yang6School of Mechatronics EngineeringAECC Harbin Bearing Co.,Ltd.School of Mechatronics EngineeringSchool of Mechatronics EngineeringSchool of Mechatronics EngineeringSchool of Mechatronics EngineeringSchool of Mechatronics EngineeringThis paper investigates a method to dynamically model compound faults on the inner and outer rings of an angular contact ball bearing as well as their effects on its dynamic behavior. Gupta’s dynamic modeling method is used to consider changes in the deformation and direction of the contact load when the ball passes through the damaged area and to develop a dynamic model of compound faults in the angular contact ball bearing. The step-changing fourth-order Runge–Kutta method is used to solve the dynamic compound fault model. The time-domain signal of vibration responses in the case of a single fault in the inner and outer rings exhibited a certain periodicity, and the frequency of faults in the envelope spectrum was clear. By comparison, the periodicity of compound faults was not clear. The signals of compound faults were decomposed by the dual-tree complex wavelet transform to identify their characteristic frequency. Errors occurred between the characteristic frequency of the theoretical fault and its simulated value. They increased with the rotational speed and decreased with an increase in axial load, whereas the influence of radial load on them was minor. For compound faults on the inner and outer rings of an angular contact ball bearing, this study provides a modeling method that can describe changes in the deformation and direction of the contact load when the ball passes through the damaged area of the inner and outer rings. The work here can provide an important foundation for fault identification in angular contact ball bearings.http://dx.doi.org/10.1155/2021/9951110
spellingShingle Lihai Chen
Ma Fang
Ming Qiu
Yanfang Dong
Xiaoxu Pang
Junxing Li
Chuanmeng Yang
Analyzing Vibration Mechanism of Angular Contact Ball Bearing with Compound Faults on Inner and Outer Rings
Shock and Vibration
title Analyzing Vibration Mechanism of Angular Contact Ball Bearing with Compound Faults on Inner and Outer Rings
title_full Analyzing Vibration Mechanism of Angular Contact Ball Bearing with Compound Faults on Inner and Outer Rings
title_fullStr Analyzing Vibration Mechanism of Angular Contact Ball Bearing with Compound Faults on Inner and Outer Rings
title_full_unstemmed Analyzing Vibration Mechanism of Angular Contact Ball Bearing with Compound Faults on Inner and Outer Rings
title_short Analyzing Vibration Mechanism of Angular Contact Ball Bearing with Compound Faults on Inner and Outer Rings
title_sort analyzing vibration mechanism of angular contact ball bearing with compound faults on inner and outer rings
url http://dx.doi.org/10.1155/2021/9951110
work_keys_str_mv AT lihaichen analyzingvibrationmechanismofangularcontactballbearingwithcompoundfaultsoninnerandouterrings
AT mafang analyzingvibrationmechanismofangularcontactballbearingwithcompoundfaultsoninnerandouterrings
AT mingqiu analyzingvibrationmechanismofangularcontactballbearingwithcompoundfaultsoninnerandouterrings
AT yanfangdong analyzingvibrationmechanismofangularcontactballbearingwithcompoundfaultsoninnerandouterrings
AT xiaoxupang analyzingvibrationmechanismofangularcontactballbearingwithcompoundfaultsoninnerandouterrings
AT junxingli analyzingvibrationmechanismofangularcontactballbearingwithcompoundfaultsoninnerandouterrings
AT chuanmengyang analyzingvibrationmechanismofangularcontactballbearingwithcompoundfaultsoninnerandouterrings