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Conference paper

Impact of Building Design Parameters on Thermal Energy Flexibility in a Low-Energy Building

From

Technical University of Denmark1

Department of Civil Engineering, Technical University of Denmark2

Section for Indoor Climate and Building Physics, Department of Civil Engineering, Technical University of Denmark3

CITIES - Centre for IT-Intelligent Energy Systems, Centers, Technical University of Denmark4

This work focuses on demand-side management potential for the heating grid in residential buildings. The possibility to increase the flexibility provided to the heat network through specific building design is investigated. The role of different parts of the building structure on thermal flexibility is assessed through a parameter variation on a building model.

Different building designs are subjected to heat cut-offs, and flexibility is evaluated with respect to comfort preservation and heating power peak creation. Under the conditions of this study, the thermal transmittance of the envelope appears to have the largest impact on thermal flexibility. The importance of window design, namely the size, U-value and orientation, is underlined due to its critical influence on solar gains and heat losses.

It is eventually observed that thermal mass has a secondary influence on the evaluated indicators; its variation only affects thermal flexibility if the thermal resistance of the envelope is sufficient.

Language: English
Publisher: IBPSA
Year: 2017
Proceedings: Building Simulation 2017
ISSN: 25222708
Types: Conference paper
DOI: 10.26868/25222708.2017.066
ORCIDs: Foteinaki, Kyriaki , Gianniou, Panagiota and Rode, Carsten

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