Investigation of Regenerative Braking Performance of Brushless Direct Current Machine Drive System

The brushless direct current (BLDC) machines which are preferred in light electric vehicles (LEVs) come forward as high regenerative braking capability machines due to their permanent magnet excitation and relatively simple operation. In this paper, the regenerative braking capability limits of BLDC...

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Main Authors: Omer Cihan Kivanc, Ozgur Ustun
Format: Article
Language:English
Published: MDPI AG 2021-01-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/11/3/1029
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spelling doaj-dfb1b5886d104a4b96e6d21aa598e20c2021-01-25T00:00:17ZengMDPI AGApplied Sciences2076-34172021-01-01111029102910.3390/app11031029Investigation of Regenerative Braking Performance of Brushless Direct Current Machine Drive SystemOmer Cihan Kivanc0Ozgur Ustun1Department of Electrical and Electronics Engineering, Istanbul Okan University, Istanbul 34959, TurkeyMekatro Mechatronics Systems R&D Co., ITU Ari Teknokent, ARI-2/B, Istanbul 34469, TurkeyThe brushless direct current (BLDC) machines which are preferred in light electric vehicles (LEVs) come forward as high regenerative braking capability machines due to their permanent magnet excitation and relatively simple operation. In this paper, the regenerative braking capability limits of BLDC machines and their drive circuits are examined by taking into account nonlinear circuit parameters and battery internal resistance variation. During energy recovery from mechanical port to electrical port, the inverter of BLDC machine is operated as a boost converter which enables power flow to a battery. However, the regeneration performance is also heavily dependant on the battery condition, particularly the temperature. By means of the developed detailed circuit model including the non-ideal effects of the boosting converter and the increase of the internal resistance variation which is caused by the temperature variation of the battery and ambient temperature, the specific duty cycle can be determined. The specific duty ratio is then applied in a proposed approach for various operation scenarios. The experimental tests are implemented by a 400 W BLDC machine drive system controlled via a TMS320F28335 digital signal processor. The experimental results show that the proposed comprehensive model presents a proper performance estimation of regenerative braking system under varying battery temperature.https://www.mdpi.com/2076-3417/11/3/1029regenerative brakingbrushless direct current machineparameter variationlight electric vehicle
collection DOAJ
language English
format Article
sources DOAJ
author Omer Cihan Kivanc
Ozgur Ustun
spellingShingle Omer Cihan Kivanc
Ozgur Ustun
Investigation of Regenerative Braking Performance of Brushless Direct Current Machine Drive System
Applied Sciences
regenerative braking
brushless direct current machine
parameter variation
light electric vehicle
author_facet Omer Cihan Kivanc
Ozgur Ustun
author_sort Omer Cihan Kivanc
title Investigation of Regenerative Braking Performance of Brushless Direct Current Machine Drive System
title_short Investigation of Regenerative Braking Performance of Brushless Direct Current Machine Drive System
title_full Investigation of Regenerative Braking Performance of Brushless Direct Current Machine Drive System
title_fullStr Investigation of Regenerative Braking Performance of Brushless Direct Current Machine Drive System
title_full_unstemmed Investigation of Regenerative Braking Performance of Brushless Direct Current Machine Drive System
title_sort investigation of regenerative braking performance of brushless direct current machine drive system
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2021-01-01
description The brushless direct current (BLDC) machines which are preferred in light electric vehicles (LEVs) come forward as high regenerative braking capability machines due to their permanent magnet excitation and relatively simple operation. In this paper, the regenerative braking capability limits of BLDC machines and their drive circuits are examined by taking into account nonlinear circuit parameters and battery internal resistance variation. During energy recovery from mechanical port to electrical port, the inverter of BLDC machine is operated as a boost converter which enables power flow to a battery. However, the regeneration performance is also heavily dependant on the battery condition, particularly the temperature. By means of the developed detailed circuit model including the non-ideal effects of the boosting converter and the increase of the internal resistance variation which is caused by the temperature variation of the battery and ambient temperature, the specific duty cycle can be determined. The specific duty ratio is then applied in a proposed approach for various operation scenarios. The experimental tests are implemented by a 400 W BLDC machine drive system controlled via a TMS320F28335 digital signal processor. The experimental results show that the proposed comprehensive model presents a proper performance estimation of regenerative braking system under varying battery temperature.
topic regenerative braking
brushless direct current machine
parameter variation
light electric vehicle
url https://www.mdpi.com/2076-3417/11/3/1029
work_keys_str_mv AT omercihankivanc investigationofregenerativebrakingperformanceofbrushlessdirectcurrentmachinedrivesystem
AT ozgurustun investigationofregenerativebrakingperformanceofbrushlessdirectcurrentmachinedrivesystem
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