English

OptiQU: Coordinated Multi-Level Voltage and Reactive Power Control for Enhanced Voltage Quality and Secure Grid Operation

Systems and Control 2026-05-25 v1 Systems and Control

Abstract

Modern low-voltage (LV) distribution grids face rising shares of photovoltaic generation and high-power loads such as heat pumps and electric vehicle charging stations. Due to high simultaneity, voltage constraints often become binding before thermal limits, triggering costly conventional grid reinforcement measures. Existing voltage and reactive power control in LV grids - e.g., fixed cos(ϕ\phi) or Q(V) control of distributed generators, on-load tap-changing distribution transformers, and line voltage regulators - is typically applied locally and independently, leaving reactive power flexibility potential unused. This paper presents OptiQU, a coordinated voltage and reactive power control concept for medium-voltage (MV) and LV distribution grids, combining centralised optimisation with decentralised local control and fallback strategies. The approach coordinates operational targets and setpoints across MV and LV (e.g., DER reactive power and substation equipment) to mitigate voltage violations and curtailment and to increase hosting capacity, while enabling robust operation under limited communication. The concepts are being evaluated using representative MV/LV models in simulation and lab environments and will be validated in field tests with two German DSOs. Based on existing research, the coordinated approach is expected to increase the exploitable flexibility for upstream voltage and reactive power control. The planned evaluation will quantify this potential and investigate trade-offs between performance, communication effort, and resilience.

Keywords

Cite

@article{arxiv.2605.23505,
  title  = {OptiQU: Coordinated Multi-Level Voltage and Reactive Power Control for Enhanced Voltage Quality and Secure Grid Operation},
  author = {Irene Hammermeister and Eric Tönges and Nils Bornhorst and Johannes Heid and Gabriela Fritzler and Timo Rehwald and Andrea Schoen and Ronald Halbauer and Jan Meschede and Michael Kramer and Julia Holl and Sina Straußberger and Andrey Luzhbin and Maximilian Niedhammer and Mischa Geiger and Aaron Eicker and Maurice Raetsch and Alfio Spina and Johannes Dieplinger and Christian Mayer and Josef Bayer and Thorsten Reske and Dominik Hilbrich},
  journal= {arXiv preprint arXiv:2605.23505},
  year   = {2026}
}

Comments

This paper is a preprint of a paper accepted by the CIRED 2026 Brussels Workshop and is subject to Institution of Engineering and Technology Copyright. When the final version is published, the copy of record will be available at IET Digital Library

R2 v1 2026-07-22T07:28:05.195Z