Dynamic Characteristics of Rotor System with a Slant Crack Based on Fractional Damping

Abstract The traditional modeling method of rotor system with a slant crack considers only integer-order calculus. However, the model of rotor system based on integer-order calculus can merely describe local characteristics, not historical dependent process. The occur of fractional order calculus ju...

Full description

Bibliographic Details
Main Authors: Zhinong Li, Yunlong Li, Dong Wang, Zhike Peng, Haifeng Wang
Format: Article
Language:English
Published: SpringerOpen 2021-02-01
Series:Chinese Journal of Mechanical Engineering
Subjects:
Online Access:https://doi.org/10.1186/s10033-021-00543-w
id doaj-bd07c8f346a84fb09f7a67eee58ac029
record_format Article
spelling doaj-bd07c8f346a84fb09f7a67eee58ac0292021-03-11T11:40:01ZengSpringerOpenChinese Journal of Mechanical Engineering1000-93452192-82582021-02-0134111810.1186/s10033-021-00543-wDynamic Characteristics of Rotor System with a Slant Crack Based on Fractional DampingZhinong Li0Yunlong Li1Dong Wang2Zhike Peng3Haifeng Wang4Key Laboratory of Nondestructive Testing, Ministry of Education, Nanchang Hangkong UniversityKey Laboratory of Nondestructive Testing, Ministry of Education, Nanchang Hangkong UniversityState Key Laboratory of Mechanical Systems and Vibration, Shanghai Jiaotong UniversityState Key Laboratory of Mechanical Systems and Vibration, Shanghai Jiaotong UniversityKey Laboratory of Nondestructive Testing, Ministry of Education, Nanchang Hangkong UniversityAbstract The traditional modeling method of rotor system with a slant crack considers only integer-order calculus. However, the model of rotor system based on integer-order calculus can merely describe local characteristics, not historical dependent process. The occur of fractional order calculus just makes up for the deficiency in integer-order calculus. Therefore, a new dynamic model with a slant crack based on fractional damping is proposed. Here, the stiffness of rotor system with a slant crack is solved by zero stress intensity factor method. The proposed model is simulated by Runge-Kutta method and continued fraction Euler method. The influence of the fractional order, rotating speed, and crack depth on the dynamic characteristics of rotor system is discussed. The simulation results show that the amplitude of torsional excitation frequency increases significantly with the increase of the fractional order. With the increase of the rotating speed, the amplitude of first harmonic component becomes gradually larger, the amplitude of the second harmonic becomes smaller, while the amplitude of the other frequency components is almost invariant. The shaft orbit changes gradually from an internal 8-type shape to an ellipse-type shape without overlapping. With the increase of the slant crack depth, the amplitude of the transverse response frequency in the rotor system with a slant crack increases, and the amplitude in the second harmonic component also increases significantly. In addition, the torsional excitation frequency and other coupling frequency components also occur. The proposed model is further verified by the experiment. The valuable conclusion can provide an important guideline for the fault diagnosis of rotor system with a slant crack.https://doi.org/10.1186/s10033-021-00543-wFractional calculusSlant crackRotor systemDynamic characteristics
collection DOAJ
language English
format Article
sources DOAJ
author Zhinong Li
Yunlong Li
Dong Wang
Zhike Peng
Haifeng Wang
spellingShingle Zhinong Li
Yunlong Li
Dong Wang
Zhike Peng
Haifeng Wang
Dynamic Characteristics of Rotor System with a Slant Crack Based on Fractional Damping
Chinese Journal of Mechanical Engineering
Fractional calculus
Slant crack
Rotor system
Dynamic characteristics
author_facet Zhinong Li
Yunlong Li
Dong Wang
Zhike Peng
Haifeng Wang
author_sort Zhinong Li
title Dynamic Characteristics of Rotor System with a Slant Crack Based on Fractional Damping
title_short Dynamic Characteristics of Rotor System with a Slant Crack Based on Fractional Damping
title_full Dynamic Characteristics of Rotor System with a Slant Crack Based on Fractional Damping
title_fullStr Dynamic Characteristics of Rotor System with a Slant Crack Based on Fractional Damping
title_full_unstemmed Dynamic Characteristics of Rotor System with a Slant Crack Based on Fractional Damping
title_sort dynamic characteristics of rotor system with a slant crack based on fractional damping
publisher SpringerOpen
series Chinese Journal of Mechanical Engineering
issn 1000-9345
2192-8258
publishDate 2021-02-01
description Abstract The traditional modeling method of rotor system with a slant crack considers only integer-order calculus. However, the model of rotor system based on integer-order calculus can merely describe local characteristics, not historical dependent process. The occur of fractional order calculus just makes up for the deficiency in integer-order calculus. Therefore, a new dynamic model with a slant crack based on fractional damping is proposed. Here, the stiffness of rotor system with a slant crack is solved by zero stress intensity factor method. The proposed model is simulated by Runge-Kutta method and continued fraction Euler method. The influence of the fractional order, rotating speed, and crack depth on the dynamic characteristics of rotor system is discussed. The simulation results show that the amplitude of torsional excitation frequency increases significantly with the increase of the fractional order. With the increase of the rotating speed, the amplitude of first harmonic component becomes gradually larger, the amplitude of the second harmonic becomes smaller, while the amplitude of the other frequency components is almost invariant. The shaft orbit changes gradually from an internal 8-type shape to an ellipse-type shape without overlapping. With the increase of the slant crack depth, the amplitude of the transverse response frequency in the rotor system with a slant crack increases, and the amplitude in the second harmonic component also increases significantly. In addition, the torsional excitation frequency and other coupling frequency components also occur. The proposed model is further verified by the experiment. The valuable conclusion can provide an important guideline for the fault diagnosis of rotor system with a slant crack.
topic Fractional calculus
Slant crack
Rotor system
Dynamic characteristics
url https://doi.org/10.1186/s10033-021-00543-w
work_keys_str_mv AT zhinongli dynamiccharacteristicsofrotorsystemwithaslantcrackbasedonfractionaldamping
AT yunlongli dynamiccharacteristicsofrotorsystemwithaslantcrackbasedonfractionaldamping
AT dongwang dynamiccharacteristicsofrotorsystemwithaslantcrackbasedonfractionaldamping
AT zhikepeng dynamiccharacteristicsofrotorsystemwithaslantcrackbasedonfractionaldamping
AT haifengwang dynamiccharacteristicsofrotorsystemwithaslantcrackbasedonfractionaldamping
_version_ 1724225316081106944