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基于正弦脉宽调制的三电平逆变器中LCL滤波器设计
引用本文:张国荣,於燕青,马 催. 基于正弦脉宽调制的三电平逆变器中LCL滤波器设计[J]. 农业工程学报, 2015, 31(22): 199-206
作者姓名:张国荣  於燕青  马 催
作者单位:合肥工业大学电气与自动化工程学院教育部光伏系统工程研究中心,合肥 230009,合肥工业大学电气与自动化工程学院教育部光伏系统工程研究中心,合肥 230009,合肥工业大学电气与自动化工程学院教育部光伏系统工程研究中心,合肥 230009
基金项目:广东省引进创新科研团队计划资助(2011N015);国家863高技术基金项目(2015AA050104)
摘    要:三电平逆变器并网系统适应于高压大功率场合,宜采用LCL滤波器。相比L滤波器,LCL滤波器采用的滤波电感较小,能有效减小系统体积并降低损耗等。该文首先对基于正弦脉宽调制SPWM(sinusoidal pulse width modulation)的三电平并网逆变器进行了详细的纹波分析。在保持同传统定义的三电平开关函数不变的基础上,将一个调制周期分4个时段,并对4个时段的纹波变化规律做具体分析,在忽略高频分量的开关模型下详细计算出桥臂侧电感与纹波电流幅值之间的关系;然后考虑网侧电感参数和电流衰减率之间的关系以及滤波电容参数的限制范围,计算网侧电感和滤波电容参数值;同时为抑制LCL谐振峰并兼顾系统损耗,采用无源阻尼法对电容串联电阻阻值进行选取。最后,通过仿真和试验证明了该方法的可行性。

关 键 词:滤波器;逆变器;脉宽调制;三电平并网逆变器;纹波电流
收稿时间:2015-05-11
修稿时间:2015-09-21

Design of LCL filter for three-level grid-connected inverter based on sinusoidal pulse width modulation
Zhang Guorong,Yu Yanqing and Ma Cui. Design of LCL filter for three-level grid-connected inverter based on sinusoidal pulse width modulation[J]. Transactions of the Chinese Society of Agricultural Engineering, 2015, 31(22): 199-206
Authors:Zhang Guorong  Yu Yanqing  Ma Cui
Affiliation:Research Center for Photovoltaic System Engineering Ministry of Education, School of Electrical Engineering and Automation, Hefei University of Technology, Hefei 230009, China,Research Center for Photovoltaic System Engineering Ministry of Education, School of Electrical Engineering and Automation, Hefei University of Technology, Hefei 230009, China and Research Center for Photovoltaic System Engineering Ministry of Education, School of Electrical Engineering and Automation, Hefei University of Technology, Hefei 230009, China
Abstract:Abstract: With the increasing penetration of renewable energy in the utility grid and the emerging concept of micro grid system with renewable energy, there is a high demand for the three-level grid-connected power inverter. The grid interface inverter plays a critical role as the energy control center in the renewable energy micro-grid. Compared with L filter, the LCL filter has been concerned for the advantages of smaller filter inductance, effectively reducing the system size and loss. The aim of the paper is to propose a design procedure for an LCL filter in a grid-connected three-level inverter. The main goal is to ensure a reduction of the ripple current at a reasonable cost, and at the same time obtain a high performance rectifier. In this paper a step-by-step procedure for designing an LCL filter is proposed and verified by simulations and experiments. Firstly, the paper provides a detailed analysis of the ripple current based on a three-level inverter with the strategy of SPWM (sinusoidal pulse width modulation). A power frequency cycle is divided into 4 periods to be specifically analyzed and the relationship between inverter-side inductor and ripple current amplitude is calculated based on the switch model that ignores the component of high frequency. Maximum inverter-side current ripple is shown in the figures both around summit and zero of fundamental current. As a result, current ripple wave around summit has mare representative. In this way, the method can be easily extended to three-level inverter topology and SPWM strategy. Then the result is used to narrow range of inverter-side inductance. Considering the higher the inductance, the more the losses, inductance should be smaller in order that it will not affect the filtering. Secondly, the parameter of grid-side inductor is designed considering the effect of the ratio of grid-side inductor to inverter-side inductor on the decay rate of harmonic current. And the parameter of filter capacitor is determined by the power limitation. Then, resistor has been known as a kind of passive damping that is connected with filter capacitor in series. Resistor was once proved to act well at one-third times of the filter capacitive reactance. The Bode diagram is shown on the basis of the formula to see which value of resistor is better. Compared to some other times, 0.3 times is selected to perfectly balance the suppressing of LCL resonance peak and the system loss. According to the adopted SPWM inverter voltage spectrum, the final resonance frequency is calculated to verify whether it can avoid the harmonic frequency spectrum distribution. And the system loss is calculated through a high-frequency model. Then there is an example of LCL filter design at a 30 kW three-level inverter of which the output peak point current is 60 A. Finally, a simulation is performed with the software MATLAB. An experimentation example of LCL-filter design has been reported based on the simulation and, and with the obtained values, the filter has been realized and tested. The ripple current has been well controlled to meet the requirement of the project in the role of the inverter-side inductance. System loss is small according to the simulation and experiment. At the same time a good attenuation of ripple current has been got with the help of filter capacitor and grid-side inductance, leading to a high quality of output current which is displayed in the simulation and experimentation. The simulation and experiment results validate the correctness of ripple current in the paper. Moreover, the good agreement between these results and those obtained in simulation validates the adopted model: the design procedure and the simulation model represent a powerful tool to design an LCL active rectifier without the need for the realization of several prototypes.
Keywords:electric filters   electric inverters   pulse width modulation   three-level grid-connected inverter   ripple current
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