Influence of thermal zoning and electric radiator control on the energy flexibility potential of Norwegian detached houses
Energy flexibility of buildings can be used to reduce energy use and costs, peak power, CO2eq- emissions or to increase self-consumption of on-site electricity generation. Thermal mass activation proved to have a large potential for energy flexible operation. The indoor temperature is then allowed t...
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doaj-8193833ff854459d9416a22647759b802021-03-02T10:02:21ZengEDP SciencesE3S Web of Conferences2267-12422019-01-011110603010.1051/e3sconf/201911106030e3sconf_clima2019_06030Influence of thermal zoning and electric radiator control on the energy flexibility potential of Norwegian detached housesJohnsen Thea0Taksdal Katrine1Clauß John2Yu Xingji3Georges Laurent4Energy and Process Engineering Department, Norwegian University of Science and Technology (NTNU)Energy and Process Engineering Department, Norwegian University of Science and Technology (NTNU)Energy and Process Engineering Department, Norwegian University of Science and Technology (NTNU)Energy and Process Engineering Department, Norwegian University of Science and Technology (NTNU)Energy and Process Engineering Department, Norwegian University of Science and Technology (NTNU)Energy flexibility of buildings can be used to reduce energy use and costs, peak power, CO2eq- emissions or to increase self-consumption of on-site electricity generation. Thermal mass activation proved to have a large potential for energy flexible operation. The indoor temperature is then allowed to fluctuate between a minimum and maximum value. Many studies investigating thermal mass activation consider electric radiators. Nevertheless, these studies most often assume that radiators modulate their emitted power, while, in reality, they are typically operated using thermostat (on-off) control. Firstly, this article aims at comparing the energy flexibility potential of thermostat and P-controls for Norwegian detached houses using detailed dynamic simulations (here IDA ICE). It is evaluated whether the thermostat converges to a P-control for a large number of identical buildings. As the buildings are getting better insulated, the impact of internal heat gains (IHG) becomes increasingly important. Therefore, the influence of different IHG profiles has been evaluated in the context of energy flexibility. Secondly, most studies about energy flexibility consider a single indoor temperature. This is questionable in residential buildings where people may want different temperature zones. This is critical in Norway where many occupants want cold bedrooms (~16°C) during winter time and open bedroom windows for this purpose. This article answers to these questions for two different building insulation levels and two construction modes (heavy and lightweight).https://www.e3s-conferences.org/articles/e3sconf/pdf/2019/37/e3sconf_clima2019_06030.pdf |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Johnsen Thea Taksdal Katrine Clauß John Yu Xingji Georges Laurent |
spellingShingle |
Johnsen Thea Taksdal Katrine Clauß John Yu Xingji Georges Laurent Influence of thermal zoning and electric radiator control on the energy flexibility potential of Norwegian detached houses E3S Web of Conferences |
author_facet |
Johnsen Thea Taksdal Katrine Clauß John Yu Xingji Georges Laurent |
author_sort |
Johnsen Thea |
title |
Influence of thermal zoning and electric radiator control on the energy flexibility potential of Norwegian detached houses |
title_short |
Influence of thermal zoning and electric radiator control on the energy flexibility potential of Norwegian detached houses |
title_full |
Influence of thermal zoning and electric radiator control on the energy flexibility potential of Norwegian detached houses |
title_fullStr |
Influence of thermal zoning and electric radiator control on the energy flexibility potential of Norwegian detached houses |
title_full_unstemmed |
Influence of thermal zoning and electric radiator control on the energy flexibility potential of Norwegian detached houses |
title_sort |
influence of thermal zoning and electric radiator control on the energy flexibility potential of norwegian detached houses |
publisher |
EDP Sciences |
series |
E3S Web of Conferences |
issn |
2267-1242 |
publishDate |
2019-01-01 |
description |
Energy flexibility of buildings can be used to reduce energy use and costs, peak power, CO2eq- emissions or to increase self-consumption of on-site electricity generation. Thermal mass activation proved to have a large potential for energy flexible operation. The indoor temperature is then allowed to fluctuate between a minimum and maximum value. Many studies investigating thermal mass activation consider electric radiators. Nevertheless, these studies most often assume that radiators modulate their emitted power, while, in reality, they are typically operated using thermostat (on-off) control. Firstly, this article aims at comparing the energy flexibility potential of thermostat and P-controls for Norwegian detached houses using detailed dynamic simulations (here IDA ICE). It is evaluated whether the thermostat converges to a P-control for a large number of identical buildings. As the buildings are getting better insulated, the impact of internal heat gains (IHG) becomes increasingly important. Therefore, the influence of different IHG profiles has been evaluated in the context of energy flexibility. Secondly, most studies about energy flexibility consider a single indoor temperature. This is questionable in residential buildings where people may want different temperature zones. This is critical in Norway where many occupants want cold bedrooms (~16°C) during winter time and open bedroom windows for this purpose. This article answers to these questions for two different building insulation levels and two construction modes (heavy and lightweight). |
url |
https://www.e3s-conferences.org/articles/e3sconf/pdf/2019/37/e3sconf_clima2019_06030.pdf |
work_keys_str_mv |
AT johnsenthea influenceofthermalzoningandelectricradiatorcontrolontheenergyflexibilitypotentialofnorwegiandetachedhouses AT taksdalkatrine influenceofthermalzoningandelectricradiatorcontrolontheenergyflexibilitypotentialofnorwegiandetachedhouses AT claußjohn influenceofthermalzoningandelectricradiatorcontrolontheenergyflexibilitypotentialofnorwegiandetachedhouses AT yuxingji influenceofthermalzoningandelectricradiatorcontrolontheenergyflexibilitypotentialofnorwegiandetachedhouses AT georgeslaurent influenceofthermalzoningandelectricradiatorcontrolontheenergyflexibilitypotentialofnorwegiandetachedhouses |
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