P2P Electricity Trading Considering User Preferences for Renewable Energy and Demand-Side Shifts
Author:
Sagawa Daishi1, Tanaka Kenji1ORCID, Ishida Fumiaki2, Saito Hideya2, Takenaga Naoya3, Saegusa Kosuke3
Affiliation:
1. School of Engineering, The University of Tokyo, Tokyo 113-8656, Japan 2. The Kansai Electric Power Co., Inc., Osaka 530-8270, Japan 3. BIPROGY Inc., Tokyo 135-8560, Japan
Abstract
In the global trend towards decarbonization, peer-to-peer (P2P) energy trading is garnering increasing attention. Furthermore, energy management on the demand side plays a crucial role in decarbonization efforts. The authors have previously developed an automated bidding agent that considers user preferences for renewable energy (RE), assuming users own electric vehicles (EVs). In this study, we expand upon this work by considering users who own not only EVs but also heat pump water heaters, and we develop an automated bidding agent that takes into account their preferences for RE. We propose a method to control the start time and presence of daytime operation shifts for heat pump water heaters, leveraging their daytime operation shift function. Demonstration experiments were conducted to effectively control devices such as EVs and heat pumps using the agent. The results of the experiments revealed that by controlling the daytime operation of heat pumps with our method, the RE utilization rate can be improved compared to scenarios without daytime operation shifts. Furthermore, we developed a simulator to verify the outcomes under different scenarios of demand-side resource ownership rates, demonstrating that higher ownership rates of EVs and heat pumps enable more effective utilization of renewable energy, and that this effect is further enhanced through P2P trading. Based on these findings, we recommend promoting the adoption of demand-side resources such as EVs and heat pumps and encouraging P2P energy trading to maximize the utilization of renewable energy in future energy systems.
Funder
Japan Society for the Promotion of Science
Subject
Energy (miscellaneous),Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment,Electrical and Electronic Engineering,Control and Optimization,Engineering (miscellaneous),Building and Construction
Reference33 articles.
1. Pörtner, H.-O., Roberts, D.C., Poloczanska, E.S., Mintenbeck, K., Tignor, M., Alegría, A., Craig, M., Langsdorf, S., Löschke, S., and Möller, V. (2022). Climate Change 2022: Impacts, Adaptation, and Vulnerability. Contribution of Working Group II to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change, Cambridge University Press. in press. 2. Intraday Residential Demand Response Scheme Based on Peer-to-Peer Energy Trading;Liu;IEEE Trans. Ind. Inform.,2020 3. Blockchain-Based Fully Peer-to-Peer Energy Trading Strategies for Residential Energy Systems;AlSkaif;IEEE Trans. Ind. Inform.,2022 4. Tanaka, K., Abe, R., Nguyen-Van, T., Yamazaki, Y., Kamitamari, T., Sako, K., and Koide, T. (2018). Transdisciplinary Engineering Methods for Social Innovation of Industry 4.0, IOS Press. 5. Citizen utilities: The emerging power paradigm;Green;Energy Policy,2017
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