4.6 Article

A Quasi-Z-Source-Based Inductive Power Transfer System for Constant Current/Constant Voltage Charging Applications

期刊

ELECTRONICS
卷 10, 期 23, 页码 -

出版社

MDPI
DOI: 10.3390/electronics10232900

关键词

battery charging; constant current; constant voltage (CC; CV) charging; Inductive Power Transfer (IPT); quasi-Z-Source (qZS)

资金

  1. PON R&I 2015-2020 Propulsione e Sistemi Ibridi per velivoli ad ala fissa e rotante-PROSIB [B66C18000290005]
  2. H2020-ECSEL-2017-1-IA-two-stage
  3. first and european sic eightinches pilot line-REACTION
  4. Prin 2017-Settore/Ambito di intervento: PE7 linea C-Advanced power-trains and -systems for full electric aircrafts
  5. PON R&I 2014-2020-AIM (Attraction and International Mobility) [AIM1851228-1]

向作者/读者索取更多资源

This article proposes a quasi-Z-source-based Inductive Power Transfer system for Electric Vehicles charging applications. The system achieves DC/DC regulation and DC/AC conversion through a single-stage conversion, reducing cost and complexity while improving reliability. The battery efficient charging and long service life are ensured through the constant current/constant voltage method.
This article proposes a quasi-Z-source (qZS)-based Inductive Power Transfer (IPT) system for Electric Vehicles (EVs) charging applications. The IPT systems use the magnetic field to transfer power between two coils wirelessly, achieving improved reliability, safety and less environmental impact. Compared to the conventional IPT system, the proposed qZS-IPT system simultaneously achieves DC/DC regulation and DC/AC conversion through a single-stage conversion, thus lowering the cost and complexity of the system. Moreover, the reliability of the system is improved thanks to the qZS network shoot-though immunity and the reduced number of switches. To ensure the battery efficient charging and long service life, the constant current/constant voltage (CC/CV) method is considered. With the proposed innovative modulation scheme, the qZS can easily change between buck and boost modes, respectively, lowering or increasing the secondary side current. A theoretical analysis is presented for system design. Simulation results based on a 25 kW (200 V/135 A) low duty EV charger are presented to verify the effectiveness of the proposed scheme. Experimental tests are performed on a 150 W scale-down prototype to validate the analysis and demonstrate the effectiveness of the proposed qZS-IPT system for CC/CV chargers.

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