Economical and Ecological Impact of Sector Coupling Applied to Computing Clusters

Abstract The rising share of abundant renewable energy inevitably increases volatility in the electricity production. The concept of sector coupling means that the volatility of electricity production to a large degree can be absorbed by dispatching electricity consumption whenever excess renewable energy is available. A system that is dynamically operated based on this principle can lower its total environmental impact. In addition, operational costs might be reducible as electricity prizes strongly depend on the residual load of the energy system. High-performance computing clusters in the field of science represent an ideal testing ground for such dynamic operation. Short-term delays in computing results due to electricity production being associated with high costs or carbon emissions are often negligible, provided that an overall computing target remains constant over long time periods. This study simulates the simplified operation of computing clusters using publicly available data on electricity production in Germany. The optimal utilisation along with associated carbon emission and cost reductions are determined separately. Hardware acquisition costs and embedded emissions are taken into account. The stability of a fixed computing target given the determined utilisation optima is evaluated in two validation periods. Additional simulations with modified parameters are carried out to estimate potential conditions under which dynamic operation of a computing cluster would continue to enable savings in the future.

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Publication Details

Journal
EPJ Research Infrastructures
Published
2026-09-15
DOI
https://doi.org/10.1007/s41781-026-00183-6
Primary Topic
Cloud Computing and Resource Management
Type
article
Field-Weighted Citation Impact
0.00

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article

Economical and Ecological Impact of Sector Coupling Applied to Computing Clusters

M. Geffers, M. Giffels, S. Krieg, S. Matberg et al.
EPJ Research Infrastructures
Cloud Computing and Resource Management
article

Economical and Ecological Impact of Sector Coupling Applied to Computing Clusters

M. Geffers, M. Giffels, S. Krieg, S. Matberg, M. Hübner, M. Schnepf, P. Bechtle, O. Freyermuth, J. Kreutz, F. Kirfel
article en

Abstract

Abstract The rising share of abundant renewable energy inevitably increases volatility in the electricity production. The concept of sector coupling means that the volatility of electricity production to a large degree can be absorbed by dispatching electricity consumption whenever excess renewable energy is available. A system that is dynamically operated based on this principle can lower its total environmental impact. In addition, operational costs might be reducible as electricity prizes strongly depend on the residual load of the energy system. High-performance computing clusters in the field of science represent an ideal testing ground for such dynamic operation. Short-term delays in computing results due to electricity production being associated with high costs or carbon emissions are often negligible, provided that an overall computing target remains constant over long time periods. This study simulates the simplified operation of computing clusters using publicly available data on electricity production in Germany. The optimal utilisation along with associated carbon emission and cost reductions are determined separately. Hardware acquisition costs and embedded emissions are taken into account. The stability of a fixed computing target given the determined utilisation optima is evaluated in two validation periods. Additional simulations with modified parameters are carried out to estimate potential conditions under which dynamic operation of a computing cluster would continue to enable savings in the future.

EPJ Research InfrastructuresVol. 10(1)
Karlsruhe Institute of Technology (DE), University of Bonn (DE), Forschungszentrum Jülich (DE), Heidelberg University (DE)
Deutsche Forschungsgemeinschaft, Bundesministerium für Bildung und Forschung, Rheinische Friedrich-Wilhelms-Universität Bonn
Affordable and clean energy
Openalex Percentile: Top 59%
Cloud Computing and Resource Management
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