Nearest State Discontinuous PWM Strategy for Entire Modulation Index With Interleaved Carriers in Three-Parallel Operationopen access
- Authors
- Kim, Dongmin; Kim, Jeonghyeok; Kim, Hojun; Joo, Chanhee; Oh, Jeongjun; Jung, Hyun-Sam
- Issue Date
- May-2026
- Publisher
- IEEE
- Keywords
- DC-AC power converters; interleaved carriers; parallel operation; parallel operation; pulsewidth modulation converters; pulsewidth modulation converters; pulsewidth modulation converters
- Citation
- IEEE Transactions on Power Electronics, v.41, no.5, pp 8460 - 8473
- Pages
- 14
- Indexed
- SCIE
SCOPUS
- Journal Title
- IEEE Transactions on Power Electronics
- Volume
- 41
- Number
- 5
- Start Page
- 8460
- End Page
- 8473
- URI
- https://scholarworks.dongguk.edu/handle/sw.dongguk/64013
- DOI
- 10.1109/TPEL.2025.3635600
- ISSN
- 0885-8993
1941-0107
- Abstract
- This article proposes a nearest-state interleaved discontinuous PWM (NSIDPWM) strategy for three-parallel interleaved three-phase converters. Prior work in parallel systems has largely targeted reductions of zero-sequence circulating current (ZSCC) and common-mode voltage-often in two-parallel settings and via modified carrier schemes. In contrast, NSIDPWM retains fixed interleaved triangular carriers and applies subsector-dependent dynamic offset voltages to realize nearest-three-vector (NTV) synthesis. A positive-, negative-, and zero-sequence (PNZ) filter is employed to suppress ZSCC, allowing the modulation to prioritize output-current harmonic quality and switching efficiency. The method is evaluated through simulation and experiments against ILPWM, 60DPWM, and EPDPWM. Performance is assessed using a total cost index that combines switching loss, total harmonic distortion (THD), and first-sideband magnitude. Results show that NSIDPWM reduces sideband/THD relative to ILPWM and 60DPWM, while avoiding the high switching activity associated with EPDPWM. Although ZSCC may increase modestly, it remains at a few-ampere level and is effectively handled by the PNZ path, whereas output-side harmonics dominate filter sizing. Overall, NSIDPWM achieves a favorable balance between harmonic performance and efficiency without carrier modification, supporting simple, scalable implementation in multiparallel converter systems.
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Collections - College of Engineering > Department of Electronics and Electrical Engineering > 1. Journal Articles

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