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Development of an AI model utilizing buildings’ thermal mass to optimize heating energy and indoor temperature in a historical building cocated in a cold climate

Akander, Jan (author)
Högskolan i Gävle,Energisystem och byggnadsteknik
Khosravi Bakhtiari, Hossein, 1982- (author)
Högskolan i Gävle,Energisystem och byggnadsteknik
Ghadirzadeh, Ali (author)
KTH Royal Institute of Technology
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Mattsson, Magnus (author)
Högskolan i Gävle,Energisystem och byggnadsteknik
Hayati, Abolfazl (author)
Högskolan i Gävle,Energisystem och byggnadsteknik
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 (creator_code:org_t)
MDPI, 2024
2024
English.
In: Buildings. - : MDPI. - 2075-5309. ; 14:7
  • Journal article (peer-reviewed)
Abstract Subject headings
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  • Historical buildings account for a significant portion of the energy use of today’s building stock, and there are usually limited energy saving measures that can be applied due to antiquarian and esthetic restrictions. The purpose of this case study is to evaluate the use of the building structure of a historical stone building as a heating battery, i.e., to periodically store thermal energy in the building’s structures without physically changing them. The stored heat is later utilized at times of, e.g., high heat demand, to reduce peaking as well as overall heat supply. With the help of Artificial Intelligence and Convolutional Neural Network Deep Learning Modelling, heat supply to the building is controlled by weather forecasting and a binary calendarization of occupancy for the optimization of energy use and power demand under sustained comfortable indoor temperatures. The study performed indicates substantial savings in total (by approximately 30%) and in peaking energy (by approximately 20% based on daily peak powers) in the studied building and suggests that the method can be applied to other, similar cases.

Subject headings

TEKNIK OCH TEKNOLOGIER  -- Naturresursteknik -- Energisystem (hsv//swe)
ENGINEERING AND TECHNOLOGY  -- Environmental Engineering -- Energy Systems (hsv//eng)

Keyword

artificial intelligence (AI); deep learning; district heating; energy storage; historical building; peak shaving

Publication and Content Type

ref (subject category)
art (subject category)

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By the author/editor
Akander, Jan
Khosravi Bakhtia ...
Ghadirzadeh, Ali
Mattsson, Magnus
Hayati, Abolfazl
About the subject
ENGINEERING AND TECHNOLOGY
ENGINEERING AND ...
and Environmental En ...
and Energy Systems
Articles in the publication
Buildings
By the university
University of Gävle

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