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Hierarchical Control Design of a Modular Integrated OBC for Dual-Motor Electric Vehicle Applications

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Hierarchical Control Design of a Modular Integrated OBC for Dual-Motor Electric Vehicle Applications. / Nasr Esfahani, Fatemeh; Darwish, Ahmed; Alotaibi, Saud et al.
In: IEEE Access, Vol. 12, 31.12.2024, p. 196306-196327.

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Nasr Esfahani F, Darwish A, Alotaibi S, Campean F. Hierarchical Control Design of a Modular Integrated OBC for Dual-Motor Electric Vehicle Applications. IEEE Access. 2024 Dec 31;12:196306-196327. Epub 2024 Dec 23. doi: 10.1109/ACCESS.2024.3521810

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@article{c815f694bd944f6db4d0ab9f166b0467,
title = "Hierarchical Control Design of a Modular Integrated OBC for Dual-Motor Electric Vehicle Applications",
abstract = "This paper presents a novel modular integrated on-board charger (MIOBC) topology and control scheme for dual-motor electric vehicle (EV) applications. Designed for effective power management across various operational states (driving, regenerative braking, and charging), the MIOBC modularises both the battery and converters, improving fault ride-through (FRT) capability, system flexibility, safety, and efficiency. The architecture features a single-stage bidirectional isolated Cuk converter as its submodule (SM), providing inherent power factor correction (PFC), reduced current ripple, and enhanced power quality. The control strategy integrates finite control set model predictive control (FCS-MPC) with classical proportional-integral (PI) controllers in a hierarchical multi-loop framework. The FCS-MPC dynamically predicts and regulates switching states, minimising a defined cost function to achieve real-time current and voltage tracking while also suppressing second-order harmonic components through an innovative capacitor-based energy buffering technique. The paper further explores the impact of the prediction horizon on stability, employing state-space modelling to analyse robustness under parameter variations. Experimental validation is conducted on a 20 kW dual-motor system controlled by a TMS28335fezdsp, demonstrating robust performance under normal and fault conditions, including mode switching and second-order harmonic suppression.",
author = "{Nasr Esfahani}, Fatemeh and Ahmed Darwish and Saud Alotaibi and Felician Campean",
year = "2024",
month = dec,
day = "31",
doi = "10.1109/ACCESS.2024.3521810",
language = "English",
volume = "12",
pages = "196306--196327",
journal = "IEEE Access",
issn = "2169-3536",
publisher = "Institute of Electrical and Electronics Engineers Inc.",

}

RIS

TY - JOUR

T1 - Hierarchical Control Design of a Modular Integrated OBC for Dual-Motor Electric Vehicle Applications

AU - Nasr Esfahani, Fatemeh

AU - Darwish, Ahmed

AU - Alotaibi, Saud

AU - Campean, Felician

PY - 2024/12/31

Y1 - 2024/12/31

N2 - This paper presents a novel modular integrated on-board charger (MIOBC) topology and control scheme for dual-motor electric vehicle (EV) applications. Designed for effective power management across various operational states (driving, regenerative braking, and charging), the MIOBC modularises both the battery and converters, improving fault ride-through (FRT) capability, system flexibility, safety, and efficiency. The architecture features a single-stage bidirectional isolated Cuk converter as its submodule (SM), providing inherent power factor correction (PFC), reduced current ripple, and enhanced power quality. The control strategy integrates finite control set model predictive control (FCS-MPC) with classical proportional-integral (PI) controllers in a hierarchical multi-loop framework. The FCS-MPC dynamically predicts and regulates switching states, minimising a defined cost function to achieve real-time current and voltage tracking while also suppressing second-order harmonic components through an innovative capacitor-based energy buffering technique. The paper further explores the impact of the prediction horizon on stability, employing state-space modelling to analyse robustness under parameter variations. Experimental validation is conducted on a 20 kW dual-motor system controlled by a TMS28335fezdsp, demonstrating robust performance under normal and fault conditions, including mode switching and second-order harmonic suppression.

AB - This paper presents a novel modular integrated on-board charger (MIOBC) topology and control scheme for dual-motor electric vehicle (EV) applications. Designed for effective power management across various operational states (driving, regenerative braking, and charging), the MIOBC modularises both the battery and converters, improving fault ride-through (FRT) capability, system flexibility, safety, and efficiency. The architecture features a single-stage bidirectional isolated Cuk converter as its submodule (SM), providing inherent power factor correction (PFC), reduced current ripple, and enhanced power quality. The control strategy integrates finite control set model predictive control (FCS-MPC) with classical proportional-integral (PI) controllers in a hierarchical multi-loop framework. The FCS-MPC dynamically predicts and regulates switching states, minimising a defined cost function to achieve real-time current and voltage tracking while also suppressing second-order harmonic components through an innovative capacitor-based energy buffering technique. The paper further explores the impact of the prediction horizon on stability, employing state-space modelling to analyse robustness under parameter variations. Experimental validation is conducted on a 20 kW dual-motor system controlled by a TMS28335fezdsp, demonstrating robust performance under normal and fault conditions, including mode switching and second-order harmonic suppression.

U2 - 10.1109/ACCESS.2024.3521810

DO - 10.1109/ACCESS.2024.3521810

M3 - Journal article

VL - 12

SP - 196306

EP - 196327

JO - IEEE Access

JF - IEEE Access

SN - 2169-3536

ER -