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Hauptverfasser: Colon-Reyes, Gabriel E., Dye, Reid, Tomlin, Claire, Callaway, Duncan
Format: Preprint
Veröffentlicht: 2024
Schlagworte:
Online-Zugang:https://arxiv.org/abs/2407.12715
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author Colon-Reyes, Gabriel E.
Dye, Reid
Tomlin, Claire
Callaway, Duncan
author_facet Colon-Reyes, Gabriel E.
Dye, Reid
Tomlin, Claire
Callaway, Duncan
contents Power grids are seeing more devices connected at the load level in the form of power electronics: e.g., data centers, electric vehicle chargers, and battery storage facilities. Therefore it is necessary to perform power system analyses with load models that capture these loads' behavior, which has historically not been done. To this end, we propose ZIP-E loads, a composite load model that has a ZIP load with a dynamic power electronic, or E, load model. We perform small signal and transient analysis of the IEEE WSCC 9 Bus test case with ZIP and ZIP-E load models. For small signals, we conclude that ZIP loads destabalize networks significantly faster than corresponding ZIP-E loads. In stable cases, transient results showed significantly larger oscillations for ZIP loads. Further, we find that a higher network loading condition is correlated with a higher sensitivity to load model choice. These results suggests that the constant power portion of the ZIP load has a large destabilizing effect and can generally overestimate instability, and that attention should be drawn to load model choice if operating near a stability boundary.
format Preprint
id arxiv_https___arxiv_org_abs_2407_12715
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Effects of dynamic power electronic load models on power systems analysis using ZIP-E loads
Colon-Reyes, Gabriel E.
Dye, Reid
Tomlin, Claire
Callaway, Duncan
Systems and Control
Power grids are seeing more devices connected at the load level in the form of power electronics: e.g., data centers, electric vehicle chargers, and battery storage facilities. Therefore it is necessary to perform power system analyses with load models that capture these loads' behavior, which has historically not been done. To this end, we propose ZIP-E loads, a composite load model that has a ZIP load with a dynamic power electronic, or E, load model. We perform small signal and transient analysis of the IEEE WSCC 9 Bus test case with ZIP and ZIP-E load models. For small signals, we conclude that ZIP loads destabalize networks significantly faster than corresponding ZIP-E loads. In stable cases, transient results showed significantly larger oscillations for ZIP loads. Further, we find that a higher network loading condition is correlated with a higher sensitivity to load model choice. These results suggests that the constant power portion of the ZIP load has a large destabilizing effect and can generally overestimate instability, and that attention should be drawn to load model choice if operating near a stability boundary.
title Effects of dynamic power electronic load models on power systems analysis using ZIP-E loads
topic Systems and Control
url https://arxiv.org/abs/2407.12715