학술논문

Topology and Hybrid Modulation of Six-Level Switched-Capacitor HC Converter With Improved DC-Link Capacitor Voltage Balancing
Document Type
Periodical
Source
IEEE Transactions on Power Electronics IEEE Trans. Power Electron. Power Electronics, IEEE Transactions on. 39(4):4325-4349 Apr, 2024
Subject
Power, Energy and Industry Applications
Aerospace
Communication, Networking and Broadcast Technologies
Components, Circuits, Devices and Systems
Computing and Processing
Engineered Materials, Dielectrics and Plasmas
Fields, Waves and Electromagnetics
General Topics for Engineers
Nuclear Engineering
Signal Processing and Analysis
Transportation
Capacitors
Voltage control
Switches
Modulation
Topology
Reactive power
Stress
Capacitor voltage balancing
carrier-based clamped converter
neutral point (NP) voltage balancing
switched capacitor (SC)
zero-sequence voltage (ZSV)
Language
ISSN
0885-8993
1941-0107
Abstract
Neutral point (NP) voltage imbalance blocks the deployment of carrier-based clamped converters for specific scenarios due to the limited adjustment capability of NP current by zero-sequence voltage (ZSV) injection. Therefore, a novel six-level switched-capacitor (SC) hybrid clamped (6L-SCHC) converter is proposed, which has compromised voltage stress, and utilizes the discrete voltage boost and capacitor voltage self-balancing features of the SC circuit to simplify control complexity. On this basis, a carrier-based hybrid modulation is developed, which simplifies the complexity of SC voltage control, and ensures the voltage natural balance of SC and dc-link center capacitor to minimize voltage ripples. Furthermore, a reasonable functional relationship between average NP current and reference modulation voltage is explored. As the result, the proposed 6L-SCHC converter has extremely powerful NP voltage balancing capability compared with other carrier-based clamped converters in theory, especially at high modulation indexes and low power factors. Capacitor voltage ripple models are also derived to achieve voltage independent controls of all capacitors. Comparative simulations and experiments demonstrate that the proposed topology and modulation greatly reduce the low-frequency voltage ripples of dc-link upper and lower capacitors, and provide excellent NP voltage balancing performance over a wide range of modulation indexes and power factors.