Design of Multiple-Input Power Converter for Hybrid Vehicles

2005 ◽  
Vol 20 (5) ◽  
pp. 1007-1016 ◽  
Author(s):  
L. Solero ◽  
A. Lidozzi ◽  
J.A. Pomilio
Energies ◽  
2019 ◽  
Vol 12 (21) ◽  
pp. 4091 ◽  
Author(s):  
Alfredo Alvarez-Diazcomas ◽  
Héctor López ◽  
Roberto V. Carrillo-Serrano ◽  
Juvenal Rodríguez-Reséndiz ◽  
Nimrod Vázquez ◽  
...  

Electric Vehicles (EVs) are an alternative to internal combustion engine cars to reduce the environmental impact of transportation. It is common to use several power sources to achieve the requirements of the electric motor. A proper power converter and an accurate control strategy need to be utilized to take advantage of the characteristics of every source. In this paper is presented a novel topology of a multiple-input bidirectional DC-DC power converter to interface two or more sources of energy with different voltage levels. Furthermore, it can be used as a buck or a boost in any of the possible conversion of energy. It is also possible to independently control the extracted power in each source and any combination of the elements of the system can be used as source and destiny for a transfer. Finally, the interaction with the grid is possible. The operation, analysis and design of the converter are presented with different modes of power transfer. Simulation results are shown where the theoretical analysis of the converter is validated.


Energies ◽  
2020 ◽  
Vol 13 (9) ◽  
pp. 2150 ◽  
Author(s):  
Phuoc Sang Huynh ◽  
Deepak Ronanki ◽  
Deepa Vincent ◽  
Sheldon S. Williamson

The acquisition of inductive power transfer (IPT) technology in commercial electric vehicles (EVs) alleviates the inherent burdens of high cost, limited driving range, and long charging time. In EV wireless charging systems using IPT, power electronic converters play a vital role to reduce the size and cost, as well as to maximize the efficiency of the overall system. Over the past years, significant research studies have been conducted by researchers to improve the performance of power conversion systems including the power converter topologies and control schemes. This paper aims to provide an overview of the existing state-of-the-art of power converter topologies for IPT systems in EV charging applications. In this paper, the widely adopted power conversion topologies for IPT systems are selected and their performance is compared in terms of input power factor, input current distortion, current stress, voltage stress, power losses on the converter, and cost. The single-stage matrix converter based IPT systems advantageously adopt the sinusoidal ripple current (SRC) charging technique to remove the intermediate DC-link capacitors, which improves system efficiency, power density and reduces cost. Finally, technical considerations and future opportunities of power converters in EV wireless charging applications are discussed.


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