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储能系统技术 储能系统 SiC器件 ★ 5.0

从有源电阻到无损与虚拟电阻:综述、见解及其在能源电网中的广泛应用

From Active Resistor to Lossless and Virtual Resistors: A Review, Insights, and Broader Applications to Energy Grids

作者 Jinli Zhu · Yuan Li · Fang Z. Peng · Brad Lehman · Hao Huang
期刊 IEEE Journal of Emerging and Selected Topics in Power Electronics
出版日期 2024年10月
技术分类 储能系统技术
技术标签 储能系统 SiC器件
相关度评分 ★★★★★ 5.0 / 5.0
关键词 电力系统 功率变换器/逆变器 有源电阻 无损电阻 虚拟电阻
语言:

中文摘要

电力系统,包括多电/全电船舶与飞机及电网,主要由发电、输配电和储能子系统构成,呈现显著的电感与电容特性。为提高效率,实际电路尽量减少物理电阻,但由此引发谐振、不稳定与长时暂态等问题。自1980年代起,电力电子变换器/逆变器被提出作为有源、无损及虚拟电阻,用于抑制上述动态问题。本文系统回顾从有源电阻到虚拟电阻的发展历程,深入分析其理论关联与物理本质,探讨实现约束,并展望其在现代能源电网中的扩展应用与革新潜力。

English Abstract

More-electric and pure-electric ship and aircraft, and electric-grid power systems include three subsystems: generation (generators and inverter-based renewable energy sources), delivery (transmission and distribution lines and cables, transformers, capacitor banks, and inductors), and energy storage. Therefore, power systems are dominantly inductive and capacitive. Resistors are rarely used, and circuits are designed and built with minimal resistance to minimize power loss and maximize efficiency. Due to this nature, however, there have been problematic resonances, instability, and prolonged transients. To solve these problems, power converters/inverters were first presented in the 1980s as active, lossless, and virtual resistors to suppress/damp resonances, instability, and transients. In this article, we provide a comprehensive review of this innovative power converter-/inverter-based technology from the active resistor to lossless and virtual resistors. We present theoretical analysis and insights about their interrelationship and physical meanings; discuss their implementation constraints; and examine broader applications and renewed potentials to revolutionize today’s power/energy grids.
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SunView 深度解读

该虚拟电阻技术对阳光电源储能与逆变器产品具有重要应用价值。在PowerTitan储能系统中,可通过ST系列变流器实现虚拟电阻控制,有效抑制LC滤波器谐振和直流母线振荡,提升系统稳定性。对于构网型GFM控制策略,虚拟电阻可优化暂态响应,减少功率振荡。在SG系列光伏逆变器的1500V高压系统中,该技术能抑制长线缆引起的LC谐振问题,避免物理阻尼电阻带来的功率损耗。结合SiC器件的高频开关特性,可实现更精准的虚拟阻尼控制。该研究为阳光电源多机并联系统的稳定性设计、弱电网适应性提升及iSolarCloud平台的智能阻尼参数优化提供理论支撑,助力提高系统效率与可靠性。