首页> 外文会议>Annual Conference of the IEEE Industrial Electronics Society >Dynamic performance of a back-to-back converter under grid disturbances with a classical DC-bus voltage control loop v.s. a DC-bus voltage control loop with Ni-Cd and Ion-Li batteries
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Dynamic performance of a back-to-back converter under grid disturbances with a classical DC-bus voltage control loop v.s. a DC-bus voltage control loop with Ni-Cd and Ion-Li batteries

机译:具有经典直流电压控制回路V.S的电网干扰下背对背转换器的动态性能。具有Ni-CD和ION-LI电池的直流电压控制环

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The aim of this paper is to present a comparative study between the dynamic response of two back-to-back converter topologies, using grid-connected Voltage Source Converters (VSC's). The first topology consists on a back-to-back converter where the DC-bus voltage is controlled by means of a classical internal DC voltage control loop. In the second topology, the DC-bus voltage is controlled by a bi-directional boost-buck DC/DC converter connected to a battery stack. In this paper both, Ni-Cd and Ion-Li battery technologies were studied. Since both topologies have a linear plant we can apply Field Oriented Control (FOC) to control both, real and reactive power exchanged with the electrical grids, as well as the DC-bus voltage. The back-to-back converter with internal DC-bus control voltage is a very well known topology which allows drive variable speed electrical machines, control electrical machines connected to the grid and decoupled reactive power flows of two different electrical grids. On the other hand, the back-to-back converter with a bi-directional boost-buck DC/DC converter connected to batteries is a more recent topology which allows decuple both, real and reactive power flows when connected to two different electrical grids. The comparison between both topologies and control methods is verified through time simulations in the discrete domain under several grid disturbances as real and reactive power steps and voltage dips. The final goal of this article is to be able to apply hot-swapping control to connect or disconnect batteries according to their State of Charge (SOC).
机译:本文的目的是提出两回到后端转换器拓扑的动态响应之间的比较研究中,使用电网连接的电压源转换器(VSC的)。第一拓扑由上一回到后端转换器,其中所述DC总线电压由经典内部直流电压控制回路来控制。在第二种拓扑中,DC总线电压由连接到电池堆的双向升降压DC / DC转换器的控制。在本文中这两个,镍镉和离子锂电池技术进行了研究。由于两个拓扑结构具有线性植物我们可以应用磁场定向控制(FOC),以控制与电网交换二者,有功和无功功率,以及DC总线电压。背面到后端转换器具有内部直流母线控制电压是一个非常著名的拓扑,其允许驱动变速电机,控制电机连接到电网和解耦的无功功率的两个不同电网的流动。在另一方面,该背到背转换器与连接至电池的双向升降压DC / DC转换器是一个较新的拓扑结构,其允许十倍两者,当连接到两个不同的电网有功和无功功率流动。两种拓扑和控制方法之间的比较是通过时间模拟在离散域中下几个电网扰动作为有功和无功功率的步骤和电压骤降验证。本文的最终目标是能够应用热插拔控制连接或根据其充电状态(SOC)的状态断开电池。

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