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Practical versus theoretical domestic energy consumption for space heating

Author

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  • Audenaert, A.
  • Briffaerts, K.
  • Engels, L.

Abstract

Methods to calculate the theoretical energy consumption consider several things: the number of degree days per year that need to be compensated by heating, the characteristics of the dwelling, the number of occupants and the characteristics of the installation for space heating and sanitary hot water. However, these methods do not take into account consumer behaviour, which may affect the actual consumption. The theoretical calculation methods are based on assumptions and use a number of standardized parameters. The difference between the actual and the theoretical energy consumption, and the impact of the residents' behaviour on energy consumption, is analysed by means of a literature study and a practical research. An energy advice procedure (EAP) audit is executed in five dwellings, as well as a survey regarding the energy related behaviour of the households. The theoretically calculated consumption is compared with the billed actual energy consumption of the families. The results show some problems with the current procedure and give some options to improve it. Some research needs are identified to gain more insights in the influence of different behavioural factors on the actual energy use for heating.

Suggested Citation

  • Audenaert, A. & Briffaerts, K. & Engels, L., 2011. "Practical versus theoretical domestic energy consumption for space heating," Energy Policy, Elsevier, vol. 39(9), pages 5219-5227, September.
  • Handle: RePEc:eee:enepol:v:39:y:2011:i:9:p:5219-5227
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    References listed on IDEAS

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    1. Milne, Geoffrey & Boardman, Brenda, 2000. "Making cold homes warmer: the effect of energy efficiency improvements in low-income homes A report to the Energy Action Grants Agency Charitable Trust," Energy Policy, Elsevier, vol. 28(6-7), pages 411-424, June.
    2. Audenaert, A. & De Cleyn, S.H. & Vankerckhove, B., 2008. "Economic analysis of passive houses and low-energy houses compared with standard houses," Energy Policy, Elsevier, vol. 36(1), pages 47-55, January.
    3. Audenaert, A. & De Boeck, L. & Roelants, K., 2010. "Economic analysis of the profitability of energy-saving architectural measures for the achievement of the EPB-standard," Energy, Elsevier, vol. 35(7), pages 2965-2971.
    4. Schuler, Andreas & Weber, Christoph & Fahl, Ulrich, 2000. "Energy consumption for space heating of West-German households: empirical evidence, scenario projections and policy implications," Energy Policy, Elsevier, vol. 28(12), pages 877-894, October.
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    2. Aleksandra Specjał & Aleksandra Lipczyńska & Maria Hurnik & Małgorzata Król & Agnieszka Palmowska & Zbigniew Popiołek, 2019. "Case Study of Thermal Diagnostics of Single-Family House in Temperate Climate," Energies, MDPI, vol. 12(23), pages 1-20, November.

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