Title :
A Charge-Nonlinear-Carrier-Controlled Reduced-Part Single-Stage Integrated Power Electronics Interface for Automotive Applications
Author :
Dusmez, Serkan ; Khaligh, Alireza
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Maryland, College Park, MD, USA
Abstract :
The current research trend to increase the power density of power electronics interfaces in automotive applications is the cost-effective integration of power converters. This paper proposes a reduced-part integrated power electronics interface that is capable of charging the battery and adjusting the voltage levels of a battery and a dc link during propulsion and regenerative braking. In the proposed topology, one inductor is shared between a dc/dc converter and a charger, eliminating the need for an additional magnetic component for the charging stage. A charge nonlinear-carrier control (NLC) method, which reduces the feedback circuitry, is adopted, and different nonlinear reference voltage waveforms are generated for each half-cycle of the grid to ensure a unity power factor and stable operation. To verify the concept, a 750-W prototype has been built and tested for each operation mode.
Keywords :
DC-DC power convertors; automotive electronics; battery chargers; power electronics; automotive applications; battery charging; charge nonlinear carrier control; dc link; dc/dc converter; feedback circuitry; inductor; nonlinear reference voltage waveforms; power 750 W; propulsion; reduced-part single-stage integrated power electronics; regenerative braking; unity power factor; Batteries; DC-DC power converters; Inductors; Inverters; Propulsion; Windings; Alternating-current/direct-current (ac/dc) rectifier; integrated charger; nonlinear-carrier control (NLC); plug-in electric vehicles (PEVs); power electronics; power factor correction (PFC);
Journal_Title :
Vehicular Technology, IEEE Transactions on
DOI :
10.1109/TVT.2013.2284592