Power Distribution Grid Enhancement via Online Feedback Optimization
Jonas G. Matt, Lukas Ortmann, Saverio Bolognani, Florian D\"orfler

TL;DR
This paper demonstrates that Online Feedback Optimization (OFO) significantly improves power distribution grid capacity by coordinating reactive power, outperforming traditional droop control methods through simulations and real-world experiments.
Contribution
The paper introduces and validates OFO as an effective method for grid enhancement, showing its superiority over droop control in both simulation and real-world testing.
Findings
OFO can enable approximately 9-10.5% more active power injections.
Droop control underutilizes reactive power resources.
OFO requires minimal measurements and communication for implementation.
Abstract
The rise in residential photovoltaics and other distributed energy sources poses unprecedented challenges for the operation of power distribution grids. When high amounts of active power are injected into the grid by such power sources, the overall power flow is often limited because of voltages reaching their upper acceptable limits. Volt/VAr control aims to raise this power flow limit by controlling the voltage using reactive power. This way, more active power can be transmitted safely without physically reinforcing the grid. In this paper, we use real consumption and generation data on a low-voltage CIGR\'E grid model and an experiment on a real distribution grid feeder to analyze how different Volt/VAr methods can enhance grid capacity, i.e., by how much they can improve the grid's capability to transmit active power without building new lines. We show that droop control enhances…
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Taxonomy
TopicsSmart Grid Energy Management · Optimal Power Flow Distribution · Microgrid Control and Optimization
MethodsTest
