TY - JOUR
T1 - Design and Validation of Adaptive Barrier Function Sliding Mode Controller for a Novel Multisource Hybrid Energy Storage System Based Electric Vehicle
AU - Noor, Faiqa
AU - Zeb, Kamran
AU - Ullah, Saif
AU - Ullah, Zahid
AU - Khalid, Muhammad
AU - Al-Durra, Ahmed
N1 - Publisher Copyright:
© 2024 The Authors.
PY - 2024
Y1 - 2024
N2 - Conventional vehicles emit many pollutants and natural gases, such as carbon dioxide and nitrogen oxides, which reduce air quality and global warming. Due to their extensive consumption, another driving force behind the search for alternatives is the fast depletion of fossil fuels, oil, and natural gas. Consequently, Hybrid Electric Vehicles (HEVs) have recently been the subject of substantial research to tackle the dual problems of harmful emissions and resource depletion. This research attempts to develop a novel barrier function-based adaptive sliding mode controller (BFASMC) for a hybrid energy storage system (HESS) of electric Vehicle (EV). The HESS comprises a fuel cell (FC), battery, supercapacitor (SC), and photovoltaic (PV). The FC serves as a primary source, while the others are auxiliary sources. DC converters are employed to couple these sources to a DC bus. The proposed BFASMC stabilizes and regulates the DC bus voltage. The system's global stability has been assured through Lyapunov criteria and verified through phase plane (error and error differential) analysis. The proposed controller is compared with conventional sliding mode controller (SMC), integral SMC (ISMC), and double integral SMC (DISMC). The simulation (MATLAB/Simulink) and hardware in loop results (dSPACE MicroLabBox RTI1202) authenticate robustness, efficacy, resilience, chattering free operation, and superiority of proposed BFASMC compared with conventional SMC variants.
AB - Conventional vehicles emit many pollutants and natural gases, such as carbon dioxide and nitrogen oxides, which reduce air quality and global warming. Due to their extensive consumption, another driving force behind the search for alternatives is the fast depletion of fossil fuels, oil, and natural gas. Consequently, Hybrid Electric Vehicles (HEVs) have recently been the subject of substantial research to tackle the dual problems of harmful emissions and resource depletion. This research attempts to develop a novel barrier function-based adaptive sliding mode controller (BFASMC) for a hybrid energy storage system (HESS) of electric Vehicle (EV). The HESS comprises a fuel cell (FC), battery, supercapacitor (SC), and photovoltaic (PV). The FC serves as a primary source, while the others are auxiliary sources. DC converters are employed to couple these sources to a DC bus. The proposed BFASMC stabilizes and regulates the DC bus voltage. The system's global stability has been assured through Lyapunov criteria and verified through phase plane (error and error differential) analysis. The proposed controller is compared with conventional sliding mode controller (SMC), integral SMC (ISMC), and double integral SMC (DISMC). The simulation (MATLAB/Simulink) and hardware in loop results (dSPACE MicroLabBox RTI1202) authenticate robustness, efficacy, resilience, chattering free operation, and superiority of proposed BFASMC compared with conventional SMC variants.
KW - barrier function (BF)
KW - electric vehicle (EV)
KW - Hybrid energy storage system (HESS)
KW - sliding mode controller (SMC)
KW - steady-state error
UR - http://www.scopus.com/inward/record.url?scp=85205849624&partnerID=8YFLogxK
U2 - 10.1109/ACCESS.2024.3471893
DO - 10.1109/ACCESS.2024.3471893
M3 - Article
AN - SCOPUS:85205849624
SN - 2169-3536
VL - 12
SP - 145270
EP - 145285
JO - IEEE Access
JF - IEEE Access
ER -