研究目的
Investigating the LCO-FLL control for single-phase utility integrated single-stage photovoltaic (PV) system to increase the utility of the voltage-source converter (VSC), mitigate load harmonics current, and provide reactive power compensation.
研究成果
The LCO-FLL control algorithm demonstrates satisfactory performance in a single-phase utility integrated single-stage PV system. It effectively increases the utility of the VSC, mitigates load harmonics current, and provides reactive power compensation. The system complies with the IEEE-519 standard and shows excellent dynamic response to changes in solar irradiance and load.
研究不足
The study focuses on a single-phase utility integrated single-stage PV system. The applicability and performance in three-phase systems or other configurations are not explored. The experimental setup uses specific equipment and conditions, which may limit generalizability.
1:Experimental Design and Method Selection:
The study employs an LCO-FLL control algorithm for a single-phase utility integrated single-stage PV system. The methodology includes the use of a voltage-source converter (VSC), incremental conductance (INC) maximum power point tracking (MPPT) control technique, and a PI voltage regulator.
2:Sample Selection and Data Sources:
The PV array is a series and parallel combination of PV modules. The system includes a PV array, MPPT algorithm, VSC, non-linear load, an inductor, and an R–C filter.
3:List of Experimental Equipment and Materials:
PV simulator (AMETAKE ETS 600/170), Hall effect sensors, H-bridge IGBTs based VSC (B6C1 750/415–35F SEMIKRONMD), digital signal processor (DSP) (dSPACE-1103), digital storage oscilloscope, and power quality analyser.
4:Experimental Procedures and Operational Workflow:
The VSC input voltage is regulated to reference DC-link voltage using a PI voltage regulator. The dynamic behaviour of the LCO-FLL-based control is improved using a feed-forward loop for the PV power sharing.
5:Data Analysis Methods:
The performance is analyzed in terms of utility grid voltage and current THDs, compliance with the IEEE-519 standard, and dynamic response to changes in solar irradiance and load.
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