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Technical and economic impact of residential electricity storage at local and grid level for Portugal

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  • Santos, João M.
  • Moura, Pedro S.
  • Almeida, Aníbal T. de

Abstract

The development of the Smart Grids will enable a more interactive and intelligent behaviour of the houses that are connected to the grid. This modification of behaviour of the house must rely on a conjugation of technologies (on-site generation, demand-side management, demand response, etc.) but, in general, the literature mentions storage as the ultimate response to conjugate generation, demand and grid interaction. In this context, the impact of in-house energy storage capacity deserves to be properly analysed. This work focuses on the analysis of electricity storage inside the house and its influence on the grid interaction, ensuring the demand satisfaction. First the typical demand and generation profiles are analysed to characterise the need for storage. Different roles for the storage utilisation are analysed with the objective of optimising self-consumption and mitigating the peak power flows from and to the grid. For the given storage roles, the benefits are evaluated from a local and grid global perspective. The analysis is done using data from real profiles of demand and generation, as well as by simulating the existence of storage. The simulated storage capacity in this analysis has resulted in significant improvements in the residential energy management. Furthermore, the effect of the simulated storage capacity is strongly influenced by the sizing and operating strategy.

Suggested Citation

  • Santos, João M. & Moura, Pedro S. & Almeida, Aníbal T. de, 2014. "Technical and economic impact of residential electricity storage at local and grid level for Portugal," Applied Energy, Elsevier, vol. 128(C), pages 254-264.
  • Handle: RePEc:eee:appene:v:128:y:2014:i:c:p:254-264
    DOI: 10.1016/j.apenergy.2014.04.054
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    1. Matallanas, E. & Castillo-Cagigal, M. & Gutiérrez, A. & Monasterio-Huelin, F. & Caamaño-Martín, E. & Masa, D. & Jiménez-Leube, J., 2012. "Neural network controller for Active Demand-Side Management with PV energy in the residential sector," Applied Energy, Elsevier, vol. 91(1), pages 90-97.
    2. Mulder, Grietus & Six, Daan & Claessens, Bert & Broes, Thijs & Omar, Noshin & Mierlo, Joeri Van, 2013. "The dimensioning of PV-battery systems depending on the incentive and selling price conditions," Applied Energy, Elsevier, vol. 111(C), pages 1126-1135.
    3. McKenna, Eoghan & McManus, Marcelle & Cooper, Sam & Thomson, Murray, 2013. "Economic and environmental impact of lead-acid batteries in grid-connected domestic PV systems," Applied Energy, Elsevier, vol. 104(C), pages 239-249.
    4. Clastres, C. & Ha Pham, T.T. & Wurtz, F. & Bacha, S., 2010. "Ancillary services and optimal household energy management with photovoltaic production," Energy, Elsevier, vol. 35(1), pages 55-64.
    5. Denholm, Paul & Hand, Maureen, 2011. "Grid flexibility and storage required to achieve very high penetration of variable renewable electricity," Energy Policy, Elsevier, vol. 39(3), pages 1817-1830, March.
    6. Zhao, Jiayun & Kucuksari, Sadik & Mazhari, Esfandyar & Son, Young-Jun, 2013. "Integrated analysis of high-penetration PV and PHEV with energy storage and demand response," Applied Energy, Elsevier, vol. 112(C), pages 35-51.
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