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Photovoltaic (PV) energy is gaining traction due to its direct conversion of sunlight to electricity without harming the environment. It is simple to install, adaptable in size, and has low operational costs. The power output of PV modules varies with solar radiation and cell temperature. To optimize system efficiency, it is crucial to track the PV array’s maximum power point. This paper presents a novel fixed-point FPGA design of a nonlinear maximum power point tracking (MPPT) controller based on synergetic control theory for driving autonomously standalone photovoltaic systems. The proposed solution addresses the chattering issue associated with the sliding mode controller by introducing a new strategy that generates a continuous control law rather than a switching term. Because it requires a lower sample rate when switching to the invariant manifold, its controlled switching frequency makes it better suited for digital applications. The suggested algorithm is first emulated to evaluate its performance, robustness, and efficacy under a standard benchmarked MPPT efficiency (
Details
Systems stability;
Field programmable gate arrays;
Digital signal processors;
Energy resources;
Irradiance;
Fuzzy logic;
Photovoltaic cells;
Efficiency;
Control tasks;
Direct conversion;
Speed control;
Fossil fuels;
Neural networks;
Renewable resources;
Effectiveness;
High speed;
Design;
Algorithms;
Sliding mode control;
Alternative energy sources;
Controllers;
Maximum power tracking;
Solar radiation
; Fadhil Rahma Tahir 1
; Viet-Thanh Pham 2 1 Department of Electrical Engineering, University of Basrah, Basrah 61001, Iraq;
2 Faculty of Electronics Technology, Industrial University of Ho Chi Minh City, Ho Chi Minh City 70000, Vietnam