Generating Electricity Price Forecasting Scenarios to Analyze Whether Price Uncertainty Impacts Tariff Performance

Niels Goedegebure, Roman Hennig

Research output: Chapter in Book/Conference proceedings/Edited volumeConference contributionScientificpeer-review

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Abstract

A higher share of renewables and electric vehicles increase the risk of congestion in electricity distribution systems. New distribution tariff designs have been proposed to prevent congestion. However, most modeling of tariff performance assumes deterministic price information. This paper proposes a method to assess the impact of price uncertainty for network tariffs, using price forecasting scenarios in a simulation model. Electricity price forecasting scenarios are generated by analyzing autoregressive forecasting errors and recursively generating time-series. The scenarios are used as price forecasting inputs in a model case study of tariff performance in a Dutch context. Results show a reduction in congestion frequency and charging costs using forecasts in this model setup, likely by enabling longer time horizons. Highest peaks however are larger when using forecasts for the fixed and capacity-based tariffs. Overall, this method provides insight into performance of new tariffs in electricity grids, incorporating the impact of price uncertainty.
Original languageEnglish
Title of host publication2022 17th International Conference on Probabilistic Methods Applied to Power Systems, PMAPS 2022
PublisherIEEE
Pages1-6
Number of pages6
ISBN (Electronic)978-1-6654-1211-7
ISBN (Print)978-1-6654-1212-4
DOIs
Publication statusPublished - 2022
EventPMAPS 2022: The 17th International Conference on Probabilistic Methods Applied to Power Systems - Online at Manchester, United Kingdom
Duration: 12 Jun 202215 Jun 2022
Conference number: 17th

Publication series

Name2022 17th International Conference on Probabilistic Methods Applied to Power Systems, PMAPS 2022

Conference

ConferencePMAPS 2022
Country/TerritoryUnited Kingdom
CityOnline at Manchester
Period12/06/2215/06/22

Keywords

  • Network tariffs
  • distribution networks
  • demand response
  • e, electricity price forecasting
  • electric vehicles

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