研究目的
To propose a new configuration and control strategy for a modular multilevel converter (MMC)-based photovoltaic (PV)-battery energy storage (BES) system to smooth output power, limit power ramp rates, and eliminate power mismatches using embedded BES systems and hybrid strategies.
研究成果
The proposed MMC-based PV-BES system with embedded BES and hybrid control strategy effectively smooths PV power output and eliminates power mismatches with minimal differential currents, ensuring balanced grid injection. Simulations confirm the approach's viability for medium-voltage applications, with potential for improved reliability and power quality in renewable energy integration.
研究不足
The simulations are conducted in a software environment (PSCAD/EMTDC) and may not fully capture real-world dynamics. The use of simplified models for DAB converters and half-bridge converters could limit accuracy. Power ratings and scalability of the system might be constrained by component specifications.
1:Experimental Design and Method Selection:
The study involves designing an MMC-based PV-BES system with embedded BES in each arm, using isolated DAB converters for interfacing. A hybrid power mismatch elimination strategy combines power exchange with BES systems and internal MMC power flow control. Time-domain simulations in PSCAD/EMTDC are used to validate the approach.
2:Sample Selection and Data Sources:
Solar irradiation data is extracted from a reference source for simulation scenarios. PV panels and battery specifications are based on standard models (e.g., Kyocera KU330-8BCA panels, IND27-2V batteries).
3:List of Experimental Equipment and Materials:
Includes PV panels, battery banks, DAB converters, half-bridge converters, MMC components, and simulation software (PSCAD/EMTDC). Specific parameters are listed in Table I of the paper.
4:Experimental Procedures and Operational Workflow:
Simulations are conducted with varying solar irradiation to create power mismatches. The control strategy involves calculating BES power references using simple moving average and power mismatch equations, adjusting for BES limits, and generating differential currents as needed.
5:Data Analysis Methods:
Performance is evaluated through time-domain plots of power, currents, and state of charge, assessing power smoothing and mismatch elimination effectiveness.
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