Choosing the Right Battery Model for Data Center Simulations

Fuente: arXiv
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Main Authors: Kilian, Paul, Wiesner, Philipp, Kao, Odej
Format: Preprint
Published: 2025
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author Kilian, Paul
Wiesner, Philipp
Kao, Odej
author_facet Kilian, Paul
Wiesner, Philipp
Kao, Odej
contents As demand for computing resources continues to rise, the increasing cost of electricity and anticipated regulations on carbon emissions are prompting changes in data center power systems. Many providers are now operating compute nodes in microgrids, close to renewable power generators and energy storage, to maintain full control over the cost and origin of consumed electricity. Recently, new co-simulation testbeds have emerged that integrate domain-specific simulators to support research, development, and testing of such systems in a controlled environment. Yet, choosing an appropriate battery model for data center simulations remains challenging, as it requires balancing simulation speed, realism, and ease of configuration. In this paper, we implement four different battery models for data center scenarios within the co-simulation framework Vessim and analyze their behavior. The results show that linear models, which consider inefficiencies and power limits, closely match the behavior of complex physics-based models in short-term experiments while offering faster execution, and not requiring knowledge on electrochemical reactions and circuit-level dynamics. In contrast, simple, lossless models fail to accurately represent complex behavior and provide no further runtime advantage.
format Preprint
id arxiv_https___arxiv_org_abs_2506_17739
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Choosing the Right Battery Model for Data Center Simulations
Kilian, Paul
Wiesner, Philipp
Kao, Odej
Distributed, Parallel, and Cluster Computing
As demand for computing resources continues to rise, the increasing cost of electricity and anticipated regulations on carbon emissions are prompting changes in data center power systems. Many providers are now operating compute nodes in microgrids, close to renewable power generators and energy storage, to maintain full control over the cost and origin of consumed electricity. Recently, new co-simulation testbeds have emerged that integrate domain-specific simulators to support research, development, and testing of such systems in a controlled environment. Yet, choosing an appropriate battery model for data center simulations remains challenging, as it requires balancing simulation speed, realism, and ease of configuration. In this paper, we implement four different battery models for data center scenarios within the co-simulation framework Vessim and analyze their behavior. The results show that linear models, which consider inefficiencies and power limits, closely match the behavior of complex physics-based models in short-term experiments while offering faster execution, and not requiring knowledge on electrochemical reactions and circuit-level dynamics. In contrast, simple, lossless models fail to accurately represent complex behavior and provide no further runtime advantage.
title Choosing the Right Battery Model for Data Center Simulations
topic Distributed, Parallel, and Cluster Computing
url https://arxiv.org/abs/2506.17739