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Three-port DC-DC converters to interface renewable energy sources with bi-directional load and energy storage ports.

机译:三端口DC-DC转换器将可再生能源与双向负载和能量存储端口相连接。

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摘要

Power electronic converters are needed to interface multiple renewable energy sources with the load along with energy storage in stand-alone or grid-connected residential, commercial and automobile applications. Recently, multi-port converters have attracted attention for such applications since they use single-stage high frequency ac-link based power conversion as compared to several power conversion stages in conventional dc-link based systems. In this thesis, two high frequency ac-link topologies are proposed, series resonant and current-fed three-port dc-dc converters. A renewable energy source such as fuel-cell or PV array can be connected to one of the ports, batteries or other types of energy storage devices to the second port and the load to the third port.;The series resonant three-port converter has two series-resonant tanks, a three-winding transformer and three active full-bridges with phase-shift control between them. The converter has capabilities of bi-directional power flow in the battery and the load port. Use of series-resonance aids in high switching frequency operation with realizable component values when compared to existing three-port converter with only inductors. Steady-state analysis of the converter is presented to determine the power flow equations, tank currents and soft-switching operation boundary. Dynamic analysis is performed to design a closed-loop controller to regulate the load-side port voltage and source-side port current. Design procedure for the three-port converter is explained and experimental results of a laboratory prototype are presented.;For applications where the load-port is not regenerative, a diode bridge is more economical than an active bridge at the load-side port. For this configuration, to control the output voltage and to share the power between the two sources, two control variables are proposed. One of them is the phase shift between the outputs of the active bridges and the other between two legs in one of the bridges. The latter uses phase-shift modulation to reduce the value of the fundamental of the bridge output. Steady-state analysis is presented to determine the output voltage, input port power and soft-switching operation boundary as a function of the phase shifts. It is observed from the analysis that the power can be made bi-directional in either of the source ports by varying the phase shifts. Design procedure, simulation and experimental results of a prototype converter are presented.;The current-fed bi-directional three-port converter consists of three active full bridges with phase-shift control between them. Their inputs are connected to dc voltage ports through series inductors and hence termed as current-fed. The outputs are connected to three separate transformers whose secondary are configured in delta, with high frequency capacitors in parallel to each transformer secondary. The converter can be used in applications where dc currents at the ports and high step-up voltage ratios are desired. Steady-state analysis to determine power flow equations and dynamic analysis are presented. The output voltage is independent of the load as observed from analysis. Simulation results are presented to verify the analysis.
机译:在独立或并网的住宅,商业和汽车应用中,需要电力电子转换器将多个可再生能源与负载以及能量存储接口。近年来,多端口转换器已吸引了此类应用的关注,因为与传统的基于直流链路的系统中的多个功率转换级相比,多端口转换器使用基于单级高频交流链路的功率转换。本文提出了两种高频交流链路拓扑结构:串联谐振和电流馈送三端口dc-dc转换器。可将可再生能源(例如燃料电池或PV阵列)连接到端口,电池或其他类型的储能设备之一连接到第二端口,将负载连接到第三端口;串联谐振三端口转换器具有两个串联谐振储罐,一个三绕组变压器和三个有源全桥,它们之间具有相移控制。转换器具有在电池和负载端口中双向流动的能力。与仅带电感器的现有三端口转换器相比,使用串联谐振有助于在开关频率较高的情况下实现可实现的元件值。提出了转换器的稳态分析,以确定功率流方程,储能电流和软开关操作边界。进行动态分析以设计一个闭环控制器,以调节负载侧端口电压和源侧端口电流。解释了三端口转换器的设计过程,并给出了实验室原型的实验结果。对于负载端口不具有再生性的应用,二极管桥比负载侧端口的有源桥更经济。对于此配置,为了控制输出电压并在两个电源之间共享功率,提出了两个控制变量。其中之一是有源电桥输出之间的相移,另一个是其中一个电桥的两个支路之间的相移。后者使用相移调制来减小电桥输出的基波值。进行了稳态分析,以根据相移确定输出电压,输入端口功率和软开关操作边界。从分析中可以观察到,通过改变相移,可以在任何一个源端口中使功率双向化。给出了原型变换器的设计程序,仿真和实验结果。电流馈电双向三端口变换器由三个有源全桥组成,它们之间具有相移控制。它们的输入通过串联电感器连接到直流电压端口,因此称为电流馈送。输出连接到三个单独的变压器,它们的次级绕组配置成三角形,每个次级绕组并联有高频电容器。该转换器可用于需要端口直流电流和高升压比的应用中。介绍了确定功率流方程的稳态分析和动态分析。从分析中可以看出,输出电压与负载无关。给出仿真结果以验证分析。

著录项

  • 作者

    Krishnaswami, Hariharan.;

  • 作者单位

    University of Minnesota.;

  • 授予单位 University of Minnesota.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 134 p.
  • 总页数 134
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;
  • 关键词

  • 入库时间 2022-08-17 11:37:40

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