Achieving Optimal Reactive Power Compensation in Distribution Grids by Using Industrial Compensation Systems

Author:

Rauch Johannes1ORCID,Brückl Oliver1

Affiliation:

1. Research Center on Energy Transmission and Storage (FENES), Faculty of Electrical and Information Technology, Ostbayerische Technische Hochschule (OTH) Regensburg, Seybothstraße 2, D-93053 Regensburg, Germany

Abstract

This paper presents a method for integrating industrial consumers owning compensation systems as alternative reactive power sources into grid operating processes. In remuneration, they receive a market-based provision of reactive power. The aim is to analyze the potential of reactive power compensation systems of industrial companies connected to medium-voltage (10 kV–30 kV) AC grids in order to increase the reactive power ability of distribution grids. Measurement methods and reactive power potential results of six industrial companies are presented to characterize the amount and temporal availability of their reactive power potential. The presented approach for using the decentralized reactive power potential is a centralized reactive power control method and is based on optimal power flow (OPF) calculations. An optimization algorithm based on linear programming is used to coordinate a reactive power retrieval tuned to the actual demand. The influencing quantities are the current grid status (voltage and load flow capacity reserves at grid nodes and power lines) and the current reactive power potential of the reactive power sources. The compensation impact of six measured industrial companies on an exemplary medium-voltage grid is shown by an application example.

Funder

Federal Ministry for Economic Affairs and Climate Action

German Bundestag

Ostbayerische Technische Hochschule (OTH) Regensburg

Publisher

MDPI AG

Subject

General Earth and Planetary Sciences,General Environmental Science

Reference46 articles.

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4. 50Hertz Transmission GmbH, Amprion GmbH, Tennet TSO GmbH, and TransnetBW GmbH (2019). Bewertung der Systemstabilität, Begleitdokument zum Netzentwicklungsplan Strom 2030, Version 2019, zweiter Entwurf, TransnetBW GmbH. (In German).

5. The European Parliament and the Council of the European Union (2019). Directive

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