研究目的
To propose and compare three cascaded multilevel inverter topologies for grid-connected photovoltaic systems with distributed maximum power point tracking to improve power quality and efficiency.
研究成果
The three proposed cascaded multilevel inverter topologies effectively improve grid power quality with distributed MPPT, achieving unity power factor and acceptable THD. Configuration B (VSI with inductors) shows higher efficiency, while configuration C (VSI with coupled transformers) has the lowest THD but worst efficiency due to transformer losses. Both simulation and experimental results validate the topologies' reliability and effectiveness for grid-connected PV systems.
研究不足
The study is limited to specific inverter topologies and control schemes; scalability to larger systems may increase complexity and cost. Experimental setups use reduced numbers of modules for simplicity, which may not fully represent large-scale applications. The efficiency and THD improvements are context-dependent on the chosen parameters and conditions.
1:Experimental Design and Method Selection:
The study involves designing and simulating three multilevel inverter topologies (cascaded H-bridge, VSI with inductors, VSI with coupled transformers) using SIMULINK, followed by experimental implementation. Distributed MPPT using perturbation and observation algorithm is applied, with each PV module connected to an isolated ?uk converter for optimal performance.
2:Sample Selection and Data Sources:
Eighteen PV modules are used for simulation, with parameters specified in Table
3:Experimental setups use fewer modules (six for configuration A, three for B and C) due to simplicity. Data is sourced from simulation outputs and experimental measurements. List of Experimental Equipment and Materials:
PV modules, DC-DC isolated ?uk converters, IGBTs, inductors, coupled transformers, capacitors, grid interface inductors, MicroLabBox data acquisition system (DS1202 model by dSPACE), Hall-Effect current sensors (LTS 25-NP model), and oscilloscopes.
4:Experimental Procedures and Operational Workflow:
Simulations are conducted in SIMULINK to generate switching pulses and analyze performance. Experiments involve building the topologies, connecting to the grid via interface inductors, using MicroLabBox for control and data acquisition, and measuring voltages and currents with sensors and oscilloscopes.
5:Data Analysis Methods:
Data is analyzed for THD of voltages and currents, efficiency comparisons, harmonic spectra using FFT, and power factor verification through phase alignment.
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