Abstract
The voltage imbalance and the open-circuit (OC) switch fault present significant issues for a single-phase cascaded H-bridge multilevel converter (CHBMC), leading to negative effects such as unbalanced DC voltages, overshoot current, and high current harmonics. To address these challenges, this paper presents a novel technique for OC switch fault diagnosis and DC voltage balancing control using the space vector modulation (SVM) concept. Initially, the paper provides an analysis of the SVM technique, which efficiently controls the dwelling time of the vector to generate driving signals. Leveraging the advantages of SVM, a voltage residual is employed as a detection variable. Subsequently, an active vector transition scheme is devised to identify the OC switch in a power cell-by-power cell manner. Furthermore, a pre-fault selection principle for redundant vectors is implemented to achieve power cell voltage balancing, considering voltage differences, and ensuring smooth voltage level transitions to minimize switching losses and voltage stress. Additionally, by optimizing the vector arrangement based on the reduced vector range in the post-fault condition, the proposed technique optimizes current harmonics and maximizes voltage output capability while maintaining smooth switching transitions. Finally, the effectiveness of the proposed technique is verified through the simulation and experimental results. © 2023 IEEE
| Original language | English |
|---|---|
| Pages (from-to) | 677-692 |
| Journal | IEEE Transactions on Power Electronics |
| Volume | 39 |
| Issue number | 1 |
| Online published | 25 Sept 2023 |
| DOIs | |
| Publication status | Published - Jan 2024 |
Research Keywords
- Circuit faults
- current harmonics
- DC voltage balancing
- fault diagnosis
- Fault diagnosis
- Harmonic analysis
- Power harmonic filters
- Single-phase cascaded H-bridge multilevel converter (CHBMC)
- smooth voltage level transition
- Support vector machines
- Switches
- Voltage control
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