Also Available Domains Microgrids
The main objective of this project is to control the grid-tied multiport system with integrated PV and battery storage by using Model Predictive Controller.
In this project, a unified model predictive control (MPC) scheme for the integrated photovoltaic (PV) and battery storage system, where both of them are directly connected to the utility grid with high conversion efficiency through a multi-level neutral-point-clamped (NPC) inverter based multiport interface. In such a system, the individual/unequal input voltage from each DC port raises control challenges, resulting in asymmetric voltage vector distribution and increased modulation complexity in the AC side. In this case, the finite-control-set MPC (FCS-MPC) scheme is proposed to make the power management be liberated from the modulator design thanks to the natural advantage, i.e., the direct control property without using a modulator. The multivariable-based cost function is designed for the AC side to regulate the injected grid current well to meet the IEEE 519-2014 standard. On the other hand, to proceed with the normal DC-side power flow, the capacitor voltage of each port is modeled, predicted, and also regulated through the unified cost function in the MPC framework. As a result, each PV array can work at the individual maximum power point (MPP) and the battery can be automatically charged/discharged to compensate for the power difference. The simulation results can be evaluated by using Matlab/Simulink Software.
Keywords: Battery storage, capacitor voltage, cost function, finite-control-set model predictive control (FCS-MPC), multivariable control, neutral-point-clamped (NPC) inverter, photovoltaic (PV).NOTE: Without the concern of our team, please don't submit to the college. This Abstract varies based on student requirements.
Software Configuration:
Operating System : Windows 7/8/10
Application Software : Matlab/Simulink
Hardware Configuration:
RAM : 8 GB
Processor : I3 / I5(Mostly prefer)