Journal Article FZJ-2022-03219

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Secondary control activation analysed and predicted with explainable AI

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2022
Elsevier Science Amsterdam [u.a.]

Electric power systems research 212, 108489 - () [10.1016/j.epsr.2022.108489]

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Abstract: The transition to a renewable energy system challenges power grid operation and stability. Secondary control is key in restoring the power system to its reference following a disturbance. Underestimating the necessary control capacity may require emergency measures, such that a solid understanding of its predictability and driving factors is needed. Here, we establish an explainable machine learning model for the analysis of secondary control power in Germany. Training gradient boosted trees, we obtain an accurate ex-post description of control activation. Our explainable model demonstrates the strong impact of external drivers such as forecasting errors and the generation mix, while daily patterns in the reserve activation play a minor role. Training a prototypical forecasting model, we identify forecast error estimates as crucial to improve predictability. Generally, input data and model training have to be carefully adapted to serve the different purposes of either ex-post analysis or forecasting and reserve sizing.

Classification:

Contributing Institute(s):
  1. Systemforschung und Technologische Entwicklung (IEK-STE)
Research Program(s):
  1. 1112 - Societally Feasible Transformation Pathways (POF4-111) (POF4-111)
  2. HDS LEE - Helmholtz School for Data Science in Life, Earth and Energy (HDS LEE) (HDS-LEE-20190612) (HDS-LEE-20190612)
  3. Verbundvorhaben CoNDyNet2: Kollektive nichtlineare Dynamik komplexer Stromnetze (03EK3055B) (03EK3055B)

Appears in the scientific report 2022
Database coverage:
OpenAccess ; Clarivate Analytics Master Journal List ; Current Contents - Engineering, Computing and Technology ; Ebsco Academic Search ; Essential Science Indicators ; IF < 5 ; JCR ; SCOPUS ; Science Citation Index Expanded ; Web of Science Core Collection
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Open Access

 Datensatz erzeugt am 2022-09-02, letzte Änderung am 2023-01-23


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