用于增强海上风电场与中压直流微电网集成的模块化多电平变换器

Lekshmi Babu, Mariamma Chacko
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引用次数: 0

摘要

电源变流器的质量是将可再生能源并入直流微电网的关键,它保证了能量的高效传输、电压的稳定性和系统的整体可靠性,是当前研究的重点。本文介绍了作者提出的增强型模块化多电平变换器(MMC)在将风能转换系统(WECS)集成到中压直流(MVDC)微电网中的应用。该系统架构包括一个风电场模型,通过MMC连接到MVDC电网,并集成了一个储能系统(ESS),以支持电网稳定性和管理能量流。这种配置的关键应用是为重型电动汽车(如电动卡车)供电,使该系统非常适合工业规模的电气化。利用MATLAB/SIMULINK对整个装置进行仿真,分析其性能。仿真结果表明,与传统的MMC排序算法相比,该算法有几个关键的改进。其中包括增强的输出直流电压质量,更快的短路故障清除,更好的跨子模块电容器的电压平衡,更少的总谐波失真(THD)和减少转换器中的开关损耗。这些改进使所提出的系统高效可靠地将现代可再生能源整合到MVDC微电网中,支持向电动重型车辆的过渡,同时保持电网的稳定性和效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modular multilevel converter for enhanced offshore windfarm integration to medium voltage DC microgrid
The quality of power converters is crucial in integrating renewable energy sources into DC microgrids, as it ensures efficient energy transfer, voltage stability, and overall system reliability, making it a key focus of current research. This paper presents an application of enhanced Modular Multilevel Converter (MMC) proposed by the authors for integrating a Wind Energy Conversion System (WECS) into a Medium Voltage Direct Current (MVDC) microgrid. The system architecture involves a wind farm model connected to an MVDC grid via the MMC, with an Energy Storage System (ESS) integrated to support grid stability and manage energy flow. The key application of this configuration is to supply power to heavy-duty electric vehicles, such as electric trucks, making the system well-suited for industrial-scale electrification. The entire setup is simulated using MATLAB/SIMULINK to analyse its performance. The simulation results show several key improvements compared to MMC with conventional sorting algorithm. These include enhanced output DC voltage quality, faster short circuit fault clearing, better voltage balance across submodule capacitors, less Total Harmonic Distortion (THD) and reduced switching losses in the converter. These improvements make the proposed system highly efficient and reliable for modern renewable energy integration into MVDC microgrids, supporting the transition towards electric heavy vehicles while maintaining grid stability and efficiency.
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