控制重构
变压器
计算机科学
电子工程
容错
转换器
电压
灵活性(工程)
混合动力
拓扑(电路)
光伏系统
混合动力系统
功率(物理)
故障检测与隔离
断层(地质)
调制(音乐)
控制理论(社会学)
工程类
电力电子
电气工程
稳健性(进化)
功率控制
功率半导体器件
作者
Lin Zhu,Qiannan Qu,Chushan Li,Huan Yang,Wuhua Li,Xiangning He
标识
DOI:10.1109/jestpe.2026.3656397
摘要
Solid-state transformers (SSTs) based on three-level converter cells feature fewer semiconductor devices and achieve higher power density, making them attractive for medium-voltage photovoltaic and energy storage systems. This paper proposes a hybrid cascaded SST topology composed of T-type and Vienna three-level cells, which combines the control flexibility of the T-type cell with the cost advantages of the Vienna cell, thereby enabling low-cost operation under non-unity power-factor conditions. However, the high count of switching devices in SSTs increases the risk of faults. To address this, three degrees of freedom for fault tolerance are first identified: (1) output-voltage reconfiguration of faulty submodules; (2) coordinated voltage and power control of the front-end and DC-DC stages; (3) front-end modulation strategies to match reconfigured faulty submodules. Based on these, a unified fault-tolerant method is proposed, enabling the Hybrid SST to maintain fault-tolerant operation under various modes and fault types. Notably, the proposed multi-degree-of-freedom coordination strategy is applicable to the Hybrid SST with arbitrary ratios of the two submodule types. Furthermore, the proposed SST is compared with an SST utilizing only Vienna cells, which proved that the Hybrid SST has enhanced fault-tolerant capability. Experimental results validate fault-tolerant operation under different faults without capacity loss or capacitor-voltage imbalance.
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