← 返回
储能系统技术 储能系统 DC-DC变换器 多电平 ★ 5.0

无变压器模块化多电平直流-直流变换器的调制指数优化与故障阻断能力

Modulation Index Optimization and Fault Blocking Capability of Transformer-less Modular Multilevel DC-DC Converters

语言:

中文摘要

大功率直流 - 直流(DC - DC)变换器对于不同电压等级的高压直流(HVDC)系统互连至关重要。本文介绍了由半桥子模块(HBSM)和全桥子模块(FBSM)组成的无变压器混合模块化多电平直流 - 直流变换器(MMDC)的优化设计与运行。由于桥臂内部直流分量电压和交流分量电压可以自由选择,因此针对不同的电压转换比推导出了使开关视在功率最小的最优调制指数。为了降低变换器成本,还考虑了过调制情况。出于系统安全性和可靠性的考虑,直流故障阻断能力是高压直流应用中直流 - 直流变换器的一个理想特性。得益于采用混合子模块,本文还研究了混合 MMDC 的直流故障阻断能力。通过实时仿真和实验室规模的试验平台验证了混合 MMDC 的性能。

English Abstract

High-power DC-DC Converters are crucial for interconnecting HVDC systems with different voltage levels. This paper presents the optimal design and operation of transformer-less hybrid modular multilevel dc-dc converters (MMDCs) that consist of both the half bridge submodules (HBSMs) and the full bridge submodules (FBSMs). Since the arm internal dc component voltage and ac component voltage can be freely selected, the optimal modulation index that minimizes the kVA of switches is derived for different voltage conversion ratios. Overmodulation is also considered to minimize the cost of the converter. For system security and reliability reasons, the dc fault-blocking capability is a preferred feature of dc-dc converters for HVDC applications. Benefitting from using the hybrid SMs, the dc fault-blocking capability of hybrid MMDCs is also investigated. The performance of the hybrid MMDC is validated by real-time simulation and a lab-scale test bench.
S

SunView 深度解读

该无变压器模块化多电平DC-DC变换器技术对阳光电源PowerTitan储能系统和直流侧产品具有重要应用价值。调制指数优化方案可直接应用于ST系列储能变流器的DC-DC变换环节,提升不同电压等级储能单元间的功率转换效率。故障阻断能力分析为大型储能系统的直流侧保护设计提供理论支撑,增强系统安全性。小信号模型与非线性控制策略可融入阳光电源现有控制算法,优化动态响应性能。该技术对构建高压大容量储能系统、实现多电压等级灵活互联具有实际指导意义,支撑阳光电源在新型电力系统中的直流侧技术布局。