Agent-based modelling of charging behaviour of electric vehicle drivers
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Publication date
2019
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Abstract
The combination of electric vehicles (EVs) and intermittent renewable energy sources has received increasing attention over the last few years. Not only does charging electric vehicles with renewable energy realize their true potential as a clean mode of transport, charging electric vehicles at times of peaks in renewable energy production can help large scale integration of renewable energy in the existing energy infrastructure. We present an agent-based model that investigates the potential contribution of this combination. More specifically, we investigate the potential effects of different kinds of policy interventions on aggregate EV charging patterns. The policy interventions include financial incentives, automated smart charging, information campaigns and social charging. We investigate howwell the resulting charging patterns are aligned with renewable energy production and how much they affect user satisfaction of EV drivers. Where possible, we integrate empirical data in our model, to ensure realistic scenarios. We use recent theory from environmental psychology to determine agent behaviour, contrary to earlier simulation models, which have focused only on technical and financial considerations. Based on our simulation results, we articulate some policy recommendations. Furthermore, we point to future research directions for environmental psychology scholars and modelers who want to use theory to inform simulation models of energy systems.
Keywords
Agent-Based Model, Electric Vehicles, Environmental Self-Identity, Intermittent Renewables, Range Anxiety, Smart Charging, Computer Science (miscellaneous), General Social Sciences, SDG 7 - Affordable and Clean Energy
Citation
Van Der Kam, M, Peters, A, Van Sark, W & Alkemade, F 2019, 'Agent-based modelling of charging behaviour of electric vehicle drivers', JASSS, vol. 22, no. 4, 7. https://doi.org/10.18564/jasss.4133