Comparison of heat recovery ventilator frost control techniques in the Canadian Arctic: preheat and recirculation

Air-to-air heat/energy recovery ventilators can effectively reduce the cost associated with ventilating a home. However, high indoor moisture levels, in conjunction with extreme temperature differences between the outdoor and indoor air can cause frost accumulation in the mechanical equipment, leadi...

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Published in:E3S Web of Conferences
Main Authors: Berquist, Justin, Banister, Carsen, Pellissier, Mathieu
Format: Article in Journal/Newspaper
Language:English
Published: EDP Open 2021
Subjects:
Online Access:https://doi.org/10.1051/e3sconf/202124611010
https://nrc-publications.canada.ca/eng/view/ft/?id=96156167-6f60-4f49-b782-dd1e646482be
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spelling ftnrccanada:oai:cisti-icist.nrc-cnrc.ca:cistinparc:96156167-6f60-4f49-b782-dd1e646482be 2023-05-15T15:02:11+02:00 Comparison of heat recovery ventilator frost control techniques in the Canadian Arctic: preheat and recirculation Berquist, Justin Banister, Carsen Pellissier, Mathieu 2021-03-29 text 8 p. https://doi.org/10.1051/e3sconf/202124611010 https://nrc-publications.canada.ca/eng/view/ft/?id=96156167-6f60-4f49-b782-dd1e646482be https://nrc-publications.canada.ca/eng/view/object/?id=96156167-6f60-4f49-b782-dd1e646482be https://nrc-publications.canada.ca/fra/voir/objet/?id=96156167-6f60-4f49-b782-dd1e646482be eng eng EDP Open issn:2267-1242 E3S Web of Conferences, Volume: 246, Publication date: 2021-03-29 doi:10.1051/e3sconf/202124611010 Creative Commons, Attribution 4.0 International (CC BY 4.0) (https://creativecommons.org/licenses/by/4.0/) Creative Commons, Attribution 4.0 International (CC BY 4.0) (https://creativecommons.org/licenses/by/4.0/deed.fr) CC-BY article 2021 ftnrccanada https://doi.org/10.1051/e3sconf/202124611010 2022-10-01T23:01:10Z Air-to-air heat/energy recovery ventilators can effectively reduce the cost associated with ventilating a home. However, high indoor moisture levels, in conjunction with extreme temperature differences between the outdoor and indoor air can cause frost accumulation in the mechanical equipment, leading to performance degradation or failure. In this research, a demonstration house using a heat recovery ventilation system in Iqaluit, Nunavut, Canada was used to compare the performance of two frost control techniques: recirculation and electrical preheat. The advantages and disadvantages of each method are outlined to highlight the need to adapt southern strategies to ensure system functionality in the Arctic. The system was equipped with a heat recovery ventilator (HRV) with built-in recirculation technology to defrost the HRV, as well as two electric preheaters that can be used instead of recirculation and prevent frost formation. Between December 2018 and April 2019 the ventilation system’s performance was monitored for seven weeks while using either recirculation or electrical preheat. The experiments showed the ventilation system equipment consumed more absolute energy with electrical preheat than with recirculation as the frost control technique. However, when using recirculation, the ventilation system experienced more losses throughout the ventilation system, causing the whole building to consume more energy due to an increase in energy consumption by the home’s heating system. Moreover, the quantity of outdoor air that was restricted while using recirculation made electrical preheat the superior option for this ventilation system design. The energy use of the ventilation system with electric preheat enabled was 35% lower on a per volume of outdoor air basis. Contrary to some belief that preheating is a poor approach for frost control in heat/energy recovery ventilators, this research finds that preheating can be a more energy efficient method to provide ventilation if controlled well. Peer reviewed: Yes ... Article in Journal/Newspaper Arctic Iqaluit Nunavut National Research Council Canada: NRC Publications Archive Arctic Canada Nunavut E3S Web of Conferences 246 11010
institution Open Polar
collection National Research Council Canada: NRC Publications Archive
op_collection_id ftnrccanada
language English
description Air-to-air heat/energy recovery ventilators can effectively reduce the cost associated with ventilating a home. However, high indoor moisture levels, in conjunction with extreme temperature differences between the outdoor and indoor air can cause frost accumulation in the mechanical equipment, leading to performance degradation or failure. In this research, a demonstration house using a heat recovery ventilation system in Iqaluit, Nunavut, Canada was used to compare the performance of two frost control techniques: recirculation and electrical preheat. The advantages and disadvantages of each method are outlined to highlight the need to adapt southern strategies to ensure system functionality in the Arctic. The system was equipped with a heat recovery ventilator (HRV) with built-in recirculation technology to defrost the HRV, as well as two electric preheaters that can be used instead of recirculation and prevent frost formation. Between December 2018 and April 2019 the ventilation system’s performance was monitored for seven weeks while using either recirculation or electrical preheat. The experiments showed the ventilation system equipment consumed more absolute energy with electrical preheat than with recirculation as the frost control technique. However, when using recirculation, the ventilation system experienced more losses throughout the ventilation system, causing the whole building to consume more energy due to an increase in energy consumption by the home’s heating system. Moreover, the quantity of outdoor air that was restricted while using recirculation made electrical preheat the superior option for this ventilation system design. The energy use of the ventilation system with electric preheat enabled was 35% lower on a per volume of outdoor air basis. Contrary to some belief that preheating is a poor approach for frost control in heat/energy recovery ventilators, this research finds that preheating can be a more energy efficient method to provide ventilation if controlled well. Peer reviewed: Yes ...
format Article in Journal/Newspaper
author Berquist, Justin
Banister, Carsen
Pellissier, Mathieu
spellingShingle Berquist, Justin
Banister, Carsen
Pellissier, Mathieu
Comparison of heat recovery ventilator frost control techniques in the Canadian Arctic: preheat and recirculation
author_facet Berquist, Justin
Banister, Carsen
Pellissier, Mathieu
author_sort Berquist, Justin
title Comparison of heat recovery ventilator frost control techniques in the Canadian Arctic: preheat and recirculation
title_short Comparison of heat recovery ventilator frost control techniques in the Canadian Arctic: preheat and recirculation
title_full Comparison of heat recovery ventilator frost control techniques in the Canadian Arctic: preheat and recirculation
title_fullStr Comparison of heat recovery ventilator frost control techniques in the Canadian Arctic: preheat and recirculation
title_full_unstemmed Comparison of heat recovery ventilator frost control techniques in the Canadian Arctic: preheat and recirculation
title_sort comparison of heat recovery ventilator frost control techniques in the canadian arctic: preheat and recirculation
publisher EDP Open
publishDate 2021
url https://doi.org/10.1051/e3sconf/202124611010
https://nrc-publications.canada.ca/eng/view/ft/?id=96156167-6f60-4f49-b782-dd1e646482be
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https://nrc-publications.canada.ca/fra/voir/objet/?id=96156167-6f60-4f49-b782-dd1e646482be
geographic Arctic
Canada
Nunavut
geographic_facet Arctic
Canada
Nunavut
genre Arctic
Iqaluit
Nunavut
genre_facet Arctic
Iqaluit
Nunavut
op_relation issn:2267-1242
E3S Web of Conferences, Volume: 246, Publication date: 2021-03-29
doi:10.1051/e3sconf/202124611010
op_rights Creative Commons, Attribution 4.0 International (CC BY 4.0) (https://creativecommons.org/licenses/by/4.0/)
Creative Commons, Attribution 4.0 International (CC BY 4.0) (https://creativecommons.org/licenses/by/4.0/deed.fr)
op_rightsnorm CC-BY
op_doi https://doi.org/10.1051/e3sconf/202124611010
container_title E3S Web of Conferences
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