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Modular multilevel converters for hvdc power stations

机译:高压直流电站的模块化多电平转换器

摘要

This work was performed in the frame of collaboration between the Laboratory on Plasma and Energy Conversion (LAPLACE), University of Toulouse, and the Second University of Naples (SUN). This work was supported by Rongxin Power Electronic Company (China) and concerns the use of multilevel converters in High Voltage Direct Current (HVDC) transmission. For more than one hundred years, the generation, the transmission, distribution and uses of electrical energy were principally based on AC systems. HVDC systems were considered some 50 years ago for technical and economic reasons. Nowadays, it is well known that HVDC is more convenient than AC for overhead transmission lines from 800 - 1000 km long. This break-even distance decreases up to 50 km for underground or submarine cables. Over the twenty-first century, HVDC transmissions will be a key point in green electric energy development. Due to the limitation in current capability of semiconductors and electrical cables, high power applications require high voltage converters. Thanks to the development of high voltage semiconductor devices, it is now possible to achieve high power converters for AC/DC conversion in the GW power range. For several years, multilevel voltage source converters allow working at high voltage level and draw a quasi-sinusoidal voltage waveform. Classical multilevel topologies such as NPC and Flying Capacitor VSIs were introduced twenty years ago and are nowadays widely used in Medium Power applications such as traction drives. In the scope of High Voltage AC/DC converters, the Modular Multilevel Converter (MMC), proposed ten years ago by Professor R. Marquardt from the University of Munich (Germany), appeared particularly interesting for HVDC transmissions. On the base of the MMC principle, this thesis considers different topologies of elementary cells which make the High Voltage AC/DC converter more flexible and easy suitable respect to different voltage and current levels. The document is organized as follow. Firstly, HVDC power systems are introduced. Conventional configurations of Current Source Converters (CSCs) and Voltage Source Converters (VSCs) are shown. The most attractive topologies for VSC-HVDC systems are analyzed. The operating principle of the MMC is presented and the sizing of reactive devices is developed by considering an open loop and a closed loop control. Different topologies of elementary cells offer various properties in current or voltage reversibility on the DC side. To compare the different topologies, an analytical approach on the power losses evaluation is achieved which made the calculation very fast and direct. A HVDC link to connect an off-shore wind farm platform is considered as a case study. The nominal power level is 100 MW with a DC voltage of 160 kV. The MMC is rated considering press-packed IGBT and IGCT devices. Simulations validate the calculations and also allow analyzing fault conditions. The study is carried out by considering a classical PWM control with an interleaving of the cells. In order to validate calculation and the simulation results, a 10kW three-phase prototype was built. It includes 18 commutation cells and its control system is based on a DSP-FGPA platform.
机译:这项工作是在图卢兹大学和那不勒斯第二大学(SUN)的等离子体和能量转换实验室(LAPLACE)之间进行的。这项工作得到了荣信电力电子公司(中国)的支持,涉及在高压直流(HVDC)传输中使用多电平转换器。一百多年来,电能的产生,传输,分配和使用主要基于交流系统。出于技术和经济原因,大约50年前就考虑使用HVDC系统。如今,众所周知,对于800至1000公里长的架空输电线路,HVDC比AC更方便。对于地下电缆或海底电缆,此收支平衡距离最多可减少50 km。在二十一世纪,高压直流输电将成为绿色电能发展的关键点。由于半导体和电缆的电流容量的限制,大功率应用需要高压转换器。由于高压半导体器件的发展,现在可以在GW功率范围内实现用于AC / DC转换的高功率转换器。多年来,多电平电压源转换器允许在高电压电平下工作并绘制准正弦电压波形。 NPC和Flying Capacitor VSI等经典的多级拓扑是20年前推出的,如今已广泛用于中功率应用(如牵引驱动器)中。在高压AC / DC转换器的范围内,十年前由德国慕尼黑大学的R. Marquardt教授提出的模块化多电平转换器(MMC)对于HVDC传输显得特别有趣。基于MMC原理,本文考虑了基本单元的不同拓扑,这使得高压AC / DC转换器相对于不同的电压和电流水平更加灵活且易于适应。该文件的组织如下。首先,介绍了高压直流输电系统。显示了电流源转换器(CSC)和电压源转换器(VSC)的常规配置。分析了VSC-HVDC系统最吸引人的拓扑。提出了MMC的工作原理,并通过考虑开环和闭环控制来开发无功装置的尺寸。基本单元的不同拓扑在直流侧提供电流或电压可逆性的各种属性。为了比较不同的拓扑,实现了一种关于功率损耗评估的分析方法,该方法使计算变得非常快速和直接。案例研究以高压直流输电连接海上风电场平台为例。额定功率为100 MW,直流电压为160 kV。 MMC的额定值考虑了压装式IGBT和IGCT器件。仿真可以验证计算结果,还可以分析故障情况。该研究是通过考虑具有单元交错的经典PWM控制来进行的。为了验证计算和仿真结果,构建了一个10kW的三相原型。它包括18个换向单元,其控制系统基于DSP-FGPA平台。

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    Serbia Nicola;

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  • 年度 2014
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