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The effect of electric vehicles and heat pumps on the market potential of PV + battery systems

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  • Klingler, Anna-Lena

Abstract

Despite the many uncertainties about their profitability, it is apparent in many countries that a market for stationary batteries is developing. In this study, the market potential of PV + battery systems is modelled up to 2040. The focus is on the effect of electric vehicles and heat pumps on the market potential of stationary batteries. The model uses 415 individual household consumption, heat pump and vehicle charging profiles to address differences in consumption behaviour. It was found that the increasing electricity consumption with the installation of heat pumps and electric vehicles generally increases the household's profit from a self-consumption system. Further, the diffusion of electric vehicles can increase the market for stationary batteries by enabling consumers to charge their electric vehicles with self-produced PV power in the evening hours. Particularly so, if the heating loads can be scheduled for hours with PV production. Although the diffusion of electric vehicles and heat pumps significantly affects the market for stationary batteries, the share of households with these technologies remains relatively low in the short to medium term. Moreover, the market potential of PV + battery systems for the purpose of self-consumption stands and falls with electricity and equipment prices.

Suggested Citation

  • Klingler, Anna-Lena, 2018. "The effect of electric vehicles and heat pumps on the market potential of PV + battery systems," Energy, Elsevier, vol. 161(C), pages 1064-1073.
  • Handle: RePEc:eee:energy:v:161:y:2018:i:c:p:1064-1073
    DOI: 10.1016/j.energy.2018.07.210
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    1. Scarpa, Riccardo & Willis, Ken, 2010. "Willingness-to-pay for renewable energy: Primary and discretionary choice of British households' for micro-generation technologies," Energy Economics, Elsevier, vol. 32(1), pages 129-136, January.
    2. Wolf-Peter Schill, Alexander Zerrahn, and Friedrich Kunz, 2017. "Prosumage of solar electricity: pros, cons, and the system perspective," Economics of Energy & Environmental Policy, International Association for Energy Economics, vol. 0(Number 1).
    3. O. Schmidt & A. Hawkes & A. Gambhir & I. Staffell, 2017. "The future cost of electrical energy storage based on experience rates," Nature Energy, Nature, vol. 2(8), pages 1-8, August.
    4. Luthander, Rasmus & Widén, Joakim & Nilsson, Daniel & Palm, Jenny, 2015. "Photovoltaic self-consumption in buildings: A review," Applied Energy, Elsevier, vol. 142(C), pages 80-94.
    5. Strbac, Goran, 2008. "Demand side management: Benefits and challenges," Energy Policy, Elsevier, vol. 36(12), pages 4419-4426, December.
    6. Klingler, Anna-Lena, 2017. "Self-consumption with PV+Battery systems: A market diffusion model considering individual consumer behaviour and preferences," Applied Energy, Elsevier, vol. 205(C), pages 1560-1570.
    7. Gottwalt, Sebastian & Ketter, Wolfgang & Block, Carsten & Collins, John & Weinhardt, Christof, 2011. "Demand side management—A simulation of household behavior under variable prices," Energy Policy, Elsevier, vol. 39(12), pages 8163-8174.
    8. Cao, Sunliang & Sirén, Kai, 2014. "Impact of simulation time-resolution on the matching of PV production and household electric demand," Applied Energy, Elsevier, vol. 128(C), pages 192-208.
    9. Peter, Raja & Ramaseshan, B & Nayar, C.V, 2002. "Conceptual model for marketing solar based technology to developing countries," Renewable Energy, Elsevier, vol. 25(4), pages 511-524.
    10. Jägemann, Cosima & Hagspiel, Simeon & Lindenberger, Dietmar, 2013. "The Economic Inefficiency of Grid Parity: The Case of German Photovoltaics," EWI Working Papers 2013-19, Energiewirtschaftliches Institut an der Universitaet zu Koeln (EWI).
    Full references (including those not matched with items on IDEAS)

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    7. Fabian Scheller & Robert Burkhardt & Robert Schwarzeit & Russell McKenna & Thomas Bruckner, 2020. "Competition between simultaneous demand-side flexibility options: The case of community electricity storage systems," Papers 2011.05809, arXiv.org.
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