Research on the Damping Effect Mechanism and Optimization of Super-High-Speed Electric Air Compressors for Fuel Cell Vehicles Under the Stiffness Softening Effect

As a typical electromechanically coupled system, the super-high-speed permanent magnet synchronous motor (PMSM)-driven compressor always exhibits complex dynamic behavior, affecting the comprehensive performance of the fuel cell system. Based on this, this paper takes electromagnetic and load excita...

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Main Authors: Donghai Hu, Jing Wang, Leli Hu, Jiaming Zhou, Jie Liu
Format: Article
Language:English
Published: IEEE 2020-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9164968/
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spelling doaj-0a48e0818de2462e90d5c49e5fe1b7122021-03-30T04:11:17ZengIEEEIEEE Access2169-35362020-01-01817978917979710.1109/ACCESS.2020.30158509164968Research on the Damping Effect Mechanism and Optimization of Super-High-Speed Electric Air Compressors for Fuel Cell Vehicles Under the Stiffness Softening EffectDonghai Hu0https://orcid.org/0000-0002-5382-3102Jing Wang1Leli Hu2Jiaming Zhou3https://orcid.org/0000-0002-0517-5999Jie Liu4School of Automotive and Traffic Engineering, Jiangsu University, Zhenjiang, ChinaSchool of Automotive and Traffic Engineering, Jiangsu University, Zhenjiang, ChinaSchool of Automotive and Traffic Engineering, Jiangsu University, Zhenjiang, ChinaSchool of Mechanical Engineering, Beijing Institute of Technology, Beijing, ChinaSchool of Automotive Engineering, Shandong Jiaotong University, Jinan, ChinaAs a typical electromechanically coupled system, the super-high-speed permanent magnet synchronous motor (PMSM)-driven compressor always exhibits complex dynamic behavior, affecting the comprehensive performance of the fuel cell system. Based on this, this paper takes electromagnetic and load excitations into account and establishes a mathematical model of the super-high-speed PMSM-driven compressor. Then, the corresponding simulation is carried out, revealing that according to different causes and manifestations, the system gradually exhibits amplitude instability and frequency instability. Considering the stiffness softening effect, the effect of the torsional stiffness and damping coefficient on the dynamic characteristics under different forms of instability is obtained. Using the Routh-Hurwitz criterion and Melnikov theory, a damping optimization methodology is given. The results show that under the condition of amplitude instability, damping reduction and stiffness softening lead to a greater resonant amplitude and a wider resonance region. Under the condition of frequency instability, the system becomes chaotic via periodic-doubling bifurcation with the decrease of damping, and the decrease of torsional stiffness increases the damping required to maintain the stability.https://ieeexplore.ieee.org/document/9164968/Super-high-speed permanent magnet synchronous motorfuel cell systemstiffness softeningdamping Optimization
collection DOAJ
language English
format Article
sources DOAJ
author Donghai Hu
Jing Wang
Leli Hu
Jiaming Zhou
Jie Liu
spellingShingle Donghai Hu
Jing Wang
Leli Hu
Jiaming Zhou
Jie Liu
Research on the Damping Effect Mechanism and Optimization of Super-High-Speed Electric Air Compressors for Fuel Cell Vehicles Under the Stiffness Softening Effect
IEEE Access
Super-high-speed permanent magnet synchronous motor
fuel cell system
stiffness softening
damping Optimization
author_facet Donghai Hu
Jing Wang
Leli Hu
Jiaming Zhou
Jie Liu
author_sort Donghai Hu
title Research on the Damping Effect Mechanism and Optimization of Super-High-Speed Electric Air Compressors for Fuel Cell Vehicles Under the Stiffness Softening Effect
title_short Research on the Damping Effect Mechanism and Optimization of Super-High-Speed Electric Air Compressors for Fuel Cell Vehicles Under the Stiffness Softening Effect
title_full Research on the Damping Effect Mechanism and Optimization of Super-High-Speed Electric Air Compressors for Fuel Cell Vehicles Under the Stiffness Softening Effect
title_fullStr Research on the Damping Effect Mechanism and Optimization of Super-High-Speed Electric Air Compressors for Fuel Cell Vehicles Under the Stiffness Softening Effect
title_full_unstemmed Research on the Damping Effect Mechanism and Optimization of Super-High-Speed Electric Air Compressors for Fuel Cell Vehicles Under the Stiffness Softening Effect
title_sort research on the damping effect mechanism and optimization of super-high-speed electric air compressors for fuel cell vehicles under the stiffness softening effect
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2020-01-01
description As a typical electromechanically coupled system, the super-high-speed permanent magnet synchronous motor (PMSM)-driven compressor always exhibits complex dynamic behavior, affecting the comprehensive performance of the fuel cell system. Based on this, this paper takes electromagnetic and load excitations into account and establishes a mathematical model of the super-high-speed PMSM-driven compressor. Then, the corresponding simulation is carried out, revealing that according to different causes and manifestations, the system gradually exhibits amplitude instability and frequency instability. Considering the stiffness softening effect, the effect of the torsional stiffness and damping coefficient on the dynamic characteristics under different forms of instability is obtained. Using the Routh-Hurwitz criterion and Melnikov theory, a damping optimization methodology is given. The results show that under the condition of amplitude instability, damping reduction and stiffness softening lead to a greater resonant amplitude and a wider resonance region. Under the condition of frequency instability, the system becomes chaotic via periodic-doubling bifurcation with the decrease of damping, and the decrease of torsional stiffness increases the damping required to maintain the stability.
topic Super-high-speed permanent magnet synchronous motor
fuel cell system
stiffness softening
damping Optimization
url https://ieeexplore.ieee.org/document/9164968/
work_keys_str_mv AT donghaihu researchonthedampingeffectmechanismandoptimizationofsuperhighspeedelectricaircompressorsforfuelcellvehiclesunderthestiffnesssofteningeffect
AT jingwang researchonthedampingeffectmechanismandoptimizationofsuperhighspeedelectricaircompressorsforfuelcellvehiclesunderthestiffnesssofteningeffect
AT lelihu researchonthedampingeffectmechanismandoptimizationofsuperhighspeedelectricaircompressorsforfuelcellvehiclesunderthestiffnesssofteningeffect
AT jiamingzhou researchonthedampingeffectmechanismandoptimizationofsuperhighspeedelectricaircompressorsforfuelcellvehiclesunderthestiffnesssofteningeffect
AT jieliu researchonthedampingeffectmechanismandoptimizationofsuperhighspeedelectricaircompressorsforfuelcellvehiclesunderthestiffnesssofteningeffect
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