2021
DOI: 10.1007/s40430-021-02975-w
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Electric vehicle battery-ultracapacitor hybrid energy storage system and drivetrain optimization for a real-world urban driving scenario

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Cited by 27 publications
(8 citation statements)
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“…Besides, the study determines the daily operating cost of the car by considering the battery and SC degradation model. Also, Silva et al 137 confirm the validity of Herrera et al by using the same technique to minimize the size of an HESS and improve the driving distance by optimizing the HESS power-sharing management for EVs. The study uses the parameters, including the urban driving cycle, vehicle drivetrain, HESS apparatuses, and their control, respectively, to assess the performance of the multi-objective GA.…”
Section: Optimization Techniquesmentioning
confidence: 75%
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“…Besides, the study determines the daily operating cost of the car by considering the battery and SC degradation model. Also, Silva et al 137 confirm the validity of Herrera et al by using the same technique to minimize the size of an HESS and improve the driving distance by optimizing the HESS power-sharing management for EVs. The study uses the parameters, including the urban driving cycle, vehicle drivetrain, HESS apparatuses, and their control, respectively, to assess the performance of the multi-objective GA.…”
Section: Optimization Techniquesmentioning
confidence: 75%
“…Dynamic programming 118,131,139,140 Provide near optimal control, 3-dimension possible 131 Offline use requires prior knowledge & no practical application 118 Electric vehicles 118,131 Wavelet-transform (Harr) 132,134 Offer effectiveness, simple, ordinary, less computational burden 134 -Plug-in hybrid electric vehicles 134 Fuzzy logic control 133,138 Effective, adaptive, intelligent, merge uncertainties & nonlinearities, incorporate heuristic control 133,138 Low computational efficiency, performance is sensitive to membership functions 133,138,150 SHE bus 138 Electric vehicles 133,150 Power splitting ratio 134 -Determined by the optimizer 134 PHEVs 134 Random forest + DP 140 Provide battery protection, enhance SC utilization, increase systems efficiency, reduce energy loss 140 -Electric vehicles 140 Genetic algorithm 135,137 Provide global optimum solution 135 There is no control tuning 132 -Electric vehicles 132 Light-railway vehicles 135 Pontryagin's minimum principle 144 Provide global optimal solutions, flexible, low computational burden, & Real-time control 144 -PHEVs 144 Convex programming 122 Rapidly & efficiently produce global optimum solutions 122 -Fuel cell/...…”
Section: Advantages Disadvantages Applicationsmentioning
confidence: 99%
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“…The several benefits of HESS over ESS including minimizing the stress, prolonging life cycle, and improving energy efficiency 13 . Lately, various combinations, such as FC‐BT, 14 FC‐SC, 15 SC‐BT, 16 FC‐SC‐BT 17 and BT‐FLW, 18 are evolved. The LIB‐SC‐based HESS (LIB‐SC HESS) received more attention because of prominent features: cost‐effective solution, mature technology, high power and energy densities, long life cycle, and low weight per unit capacity 19,20 …”
Section: Introductionmentioning
confidence: 99%
“…A pesar de las suposiciones utilizadas, este planteo permite calcular un perfil de corriente apto para realizar ensayos preliminares. Para esto se emplean los lineamientos presentados en [182][183] [184], los cuales son directamente aplicados para transformar un perfil de velocidad de un VE en el perfil de potencia eléctrica requerida en el bus de continua del sistema. Para esto se parte de asumir movimiento rectilíneo uniforme para el VE, y calcular la sumatoria de fuerzas aplicadas como:…”
Section: Conversión De Potencia Mecánica Del Ve a Potencia Eléctricaunclassified