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DC/DC Converter Design for Supercapacitor and Battery Power Management in Hybrid Vehicle Applications—Polynomial Control Strategy

机译:混合动力汽车应用中用于超级电容器和电池电源管理的DC / DC转换器设计—多项式控制策略

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This paper presents supercapacitor (SCAP) and battery modeling with an original energy management strategy in a hybrid storage technology. The studied dc power supply is composed of SCAPs and batteries. SCAPs are dimensioned for peak power requirement, and batteries provide the power in steady state. A bidirectional dc/dc converter is used between SCAPs and the dc bus. Batteries are directly connected to the dc bus. The originality of this study is focused on SCAP behavior modeling and energy management strategy. The proposed strategy is based on a polynomial (RST) controller. For reasons of cost and existing components (not optimized) such as batteries and semiconductors, the experimental test benches are designed in reduced scale. The characterized packs of SCAPs include two modules of ten cells in series for each one and present a maximum voltage of 27 V. The proposed strategy is implemented on a PIC18F4431 microcontroller for two dc/dc converter topology controls. Experimental and simulation results obtained from the polynomial control strategy are presented, analyzed, and compared with that of classical proportional–integral control.
机译:本文介绍了混合存储技术中具有原始能量管理策略的超级电容器(SCAP)和电池建模。所研究的直流电源由SCAP和电池组成。 SCAP的尺寸可满足峰值功率需求,电池可提供稳定状态下的功率。 SCAP和直流总线之间使用双向dc / dc转换器。电池直接连接到直流总线。这项研究的独创性集中在SCAP行为建模和能源管理策略上。所提出的策略基于多项式(RST)控制器。出于成本和现有组件(未优化)(例如电池和半导体)的原因,实验测试台的设计尺寸有所减小。具有特征的SCAP包包括两个模块,每个模块串联10个电池,最大电压为27V。所建议的策略在PIC18F4431微控制器上实现,用于两个dc / dc转换器拓扑控制。从多项式控制策略获得的实验和仿真结果进行了介绍,分析,并与经典比例-积分控制进行了比较。

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