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In Control or Being Controlled? Investigating the Control of Space Heating in Smart Homes

Author

Listed:
  • Simon Peter Larsen

    (Department of the Built Environment, Aalborg University, A.C. Meyers Vænge 15, 2450 SV Copenhagen, Denmark)

  • Kirsten Gram-Hanssen

    (Department of the Built Environment, Aalborg University, A.C. Meyers Vænge 15, 2450 SV Copenhagen, Denmark)

  • Line Valdorff Madsen

    (Department of the Built Environment, Aalborg University, A.C. Meyers Vænge 15, 2450 SV Copenhagen, Denmark)

Abstract

Low-carbon scenarios for enabling heat demand flexibility in district heating networks include smart home technology (SHT), which can automate control of heating by responding to utility signals while considering household preferences. This study empirically explores how control of space heating using SHT is performed in heating practices by occupants. The study is based on in-depth interviews and home tours with occupants living in smart homes in Denmark. The results suggest that (1) practical knowledge, (2) notions of being in control, and (3) temporal aspects of everyday life are of specific importance for how occupants perform control of space heating using SHT. Furthermore, results show how occupants act when feeling out of control. The data illustrate that control of space heating using SHT is performed in a variety of different ways, displaying the dynamic relationships between the materiality of the home, the importance of practical knowledge that occupants draw upon, and the meaning they ascribe to ‘homely’ practices. As SHT limits people’s active engagement in controlling space heating by relying on automated features, the findings presented in this paper highlight how control of space heating is more than the ability to control but concerns the dynamics of social practices performed within and outside of the home. Based on the results, the paper recommends four specific design and policy implications for future SHT solutions.

Suggested Citation

  • Simon Peter Larsen & Kirsten Gram-Hanssen & Line Valdorff Madsen, 2023. "In Control or Being Controlled? Investigating the Control of Space Heating in Smart Homes," Sustainability, MDPI, vol. 15(12), pages 1-18, June.
  • Handle: RePEc:gam:jsusta:v:15:y:2023:i:12:p:9489-:d:1170027
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    References listed on IDEAS

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    1. Balta-Ozkan, Nazmiye & Davidson, Rosemary & Bicket, Martha & Whitmarsh, Lorraine, 2013. "Social barriers to the adoption of smart homes," Energy Policy, Elsevier, vol. 63(C), pages 363-374.
    2. Le Dréau, J. & Heiselberg, P., 2016. "Energy flexibility of residential buildings using short term heat storage in the thermal mass," Energy, Elsevier, vol. 111(C), pages 991-1002.
    3. Kensby, Johan & Trüschel, Anders & Dalenbäck, Jan-Olof, 2015. "Potential of residential buildings as thermal energy storage in district heating systems – Results from a pilot test," Applied Energy, Elsevier, vol. 137(C), pages 773-781.
    4. Sovacool, Benjamin K. & Furszyfer Del Rio, Dylan D., 2020. "Smart home technologies in Europe: A critical review of concepts, benefits, risks and policies," Renewable and Sustainable Energy Reviews, Elsevier, vol. 120(C).
    5. Darby, Sarah J., 2020. "Demand response and smart technology in theory and practice: Customer experiences and system actors," Energy Policy, Elsevier, vol. 143(C).
    6. Anders Rhiger Hansen & Daniel Leiria & Hicham Johra & Anna Marszal-Pomianowska, 2022. "Who Produces the Peaks? Household Variation in Peak Energy Demand for Space Heating and Domestic Hot Water," Energies, MDPI, vol. 15(24), pages 1-23, December.
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