插电式混合动力汽车隔离式集成充电器设计与分析

Rajib Baran Roy, E. Basher, Joshua Mithil Biswas
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引用次数: 2

摘要

混合动力汽车的运行和效率在很大程度上取决于其充电系统。混合动力汽车使用电网为电池充电。牵引电路组件在充电期间通常不参与,因此有可能在充电器电路中使用它们以具有车载集成充电器。大多数充电为非隔离型,充电功率容量低。因此,插电式混合动力汽车需要车载隔离式大功率充电器,以提高电池的充电效率。尺寸和价格是这种集成充电器的重要考虑因素。本文提出了一种具有高充电功率和统一功率因数的集成车载充电器。在本设计中,采用异步电机和双向变换器,使电机在牵引时充当电动机,在充电时充当隔离变压器。双向变换器采用升压变换器拓扑结构,可在牵引时作为逆变器使用。一体化充电器的正常运行在很大程度上取决于变流器和异步电机的电网同步和控制机构。异步电机的数学机电模型采用Park变换。采用感应永磁电机/发电机组的传统控制方案和升压变换器的解耦电流控制方法,设计了一种控制方案。在基于Matlab/Simulink的模型中对整个系统进行了仿真,以验证所提出的充电器的系统运行情况。仿真结果表明,该充电器具有良好的性能,能够保证电机转速稳定、电网同步顺畅。
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Design and analysis of isolated integrated charger for PHEV
The operation and efficiency of HEV (hybrid electrical vehicle) greatly depends on its charging system. The HEV uses grid power to charge the battery. The traction circuit components are not normally engaged during the charging time, so there is a possibility to use them in the charger circuit to have an on-board integrated charger. Most charges are non isolated type having low charging power capacity. Therefore on board isolated high power charger is required for PHEV (plug in hybrid electrical vehicle) which may improve the charging efficiency of the battery. The size and price are important considerations for such integrated charger. In this paper, an integrated on board charger is proposed which provides high charging power and unity power factor operation. In the proposed design, asynchronous machine and bi directional converter are used so that the machine can act as motor during traction and isolated transformer during charging. The boost converter topology is used for the bidirectional converter which can be used as inverter during traction. The proper operation of integrated charger greatly depends on grid synchronization and controlling mechanism of converter and asynchronous machine. The Park transformation is used for mathematical electromechanical model of the asynchronous machine. A controller scheme is designed by using the concepts of conventional controlling scheme of IPM (induction permanent magnet) motor/generator set and decoupled current control method of boost converter. The whole system is simulated in Matlab/Simulink based model in order to verify the system operation of the proposed charger. The simulation results show good performance of the charger leading to machine speed stability and smooth grid synchronization.
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