Energies | 卷:14 |
Energetic Performances Booster for Electric Vehicle Applications Using Transient Power Control and Supercapacitors-Batteries/Fuel Cell | |
Mamadou Baïlo Camara1  Cheikh Tidiane Sarr1  Jean-Yves Parédé1  Ismail Oukkacha1  Brayima Dakyo1  | |
[1] GREAH Laboratory, University of Le Havre Normandie, 75 Rue Bellot, 76600 Le Havre, France; | |
关键词: bidirectional DC-DC converter; interleaved boost converter; LiFePO4 batteries; electric vehicle (EV); supercapacitors characterization; load demand sharing; | |
DOI : 10.3390/en14082251 | |
来源: DOAJ |
【 摘 要 】
In this paper, a hybrid electric power supply system for an electric vehicle (EV) is investigated. The study aims to reduce electric stress on the main energy source (fuel cell) and boost energetic performances using energy sources with high specific power (supercapacitors, batteries) for rapid traction chain solicitations such as accelerations, decelerations, and braking operations. The multisource EV power supply system contains a fuel cell stack, a lithium batteries module, and a supercapacitors (Sc) pack. In order to emulate the EV energy demand (wheels, weight, external forces, etc.), a bidirectional load based on a reversible current DC-DC converter was used. Fuel cell (Fc) stack was interfaced by an interleaved boost converter. Batteries and the Sc pack were coupled to the DC point of coupling via buck/boost converters. Paper contribution was firstly concentrated on the distribution of energy and power between onboard energy sources in consonance with their dynamic characteristics (time response). Second contribution was based on a new Sc model, which takes into consideration the temperature and the DC current ripples frequency until 1000 Hz. Energy management strategy (EMS) was evaluated by simulations and reduced scale experimental tests. The used driving cycle was the US Federal Test Procedure known as FTP-75.
【 授权许可】
Unknown