Experimental Study on Heat Transfer Process Optimization of Heat Storage Wall of the Heat Pump in Tunnel Surrounding Rock in the Cold Region

For tunnels in cold or serious cold areas, the problem of leaking in the spring thawing period is very frequent, which will cause various tunnel diseases due to freezing. By using the surrounding rock geothermal energy in the tunnel project, especially the tunnel project below the permafrost layer,...

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Published in:Geofluids
Main Authors: Yafei Li, Dianwei Qi, Hongchao Yan, Jiaqi Zhang
Format: Article in Journal/Newspaper
Language:English
Published: Hindawi-Wiley 2022
Subjects:
Online Access:https://doi.org/10.1155/2022/5224154
https://doaj.org/article/c72daeef8d7643b79153f298e6351c22
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spelling ftdoajarticles:oai:doaj.org/article:c72daeef8d7643b79153f298e6351c22 2023-05-15T17:58:02+02:00 Experimental Study on Heat Transfer Process Optimization of Heat Storage Wall of the Heat Pump in Tunnel Surrounding Rock in the Cold Region Yafei Li Dianwei Qi Hongchao Yan Jiaqi Zhang 2022-01-01T00:00:00Z https://doi.org/10.1155/2022/5224154 https://doaj.org/article/c72daeef8d7643b79153f298e6351c22 EN eng Hindawi-Wiley http://dx.doi.org/10.1155/2022/5224154 https://doaj.org/toc/1468-8123 1468-8123 doi:10.1155/2022/5224154 https://doaj.org/article/c72daeef8d7643b79153f298e6351c22 Geofluids, Vol 2022 (2022) Geology QE1-996.5 article 2022 ftdoajarticles https://doi.org/10.1155/2022/5224154 2022-12-30T21:22:16Z For tunnels in cold or serious cold areas, the problem of leaking in the spring thawing period is very frequent, which will cause various tunnel diseases due to freezing. By using the surrounding rock geothermal energy in the tunnel project, especially the tunnel project below the permafrost layer, the cold area tunnel heat pump system is able to improve the overall heating energy efficiency as the side temperature regarding the heat pump evaporation increases, that furtherly serves the surrounding supporting building facilities. Inspired by this system and the active and passive coupling building technology, a heat recovery type of heat storage wall model is proposed in this research. By describing the heat transfer process regarding the heat recovery type of heat storage wall and carrying out the experimental research, its feasibility and effectiveness are verified. The results show that when the outdoor ambient temperature in Urumqi is −7~−15°C and the instantaneous total solar radiation reaches the range of 0~1108 W/m2, this kind of wall can create hot wall-near air whose temperature is 11.89°C higher than the ambient temperature for providing a high-quality air heat source for the air source heat pump when the temperature is low, thereby significantly improving the air source heat pump heating system efficiency. Without the photovoltaic and photothermal equipment, the heat recovery type of heat storage wall can make the utilization rate of solar energy reach 13% to 20%, even up to 36%. Article in Journal/Newspaper permafrost Directory of Open Access Journals: DOAJ Articles Geofluids 2022 1 11
institution Open Polar
collection Directory of Open Access Journals: DOAJ Articles
op_collection_id ftdoajarticles
language English
topic Geology
QE1-996.5
spellingShingle Geology
QE1-996.5
Yafei Li
Dianwei Qi
Hongchao Yan
Jiaqi Zhang
Experimental Study on Heat Transfer Process Optimization of Heat Storage Wall of the Heat Pump in Tunnel Surrounding Rock in the Cold Region
topic_facet Geology
QE1-996.5
description For tunnels in cold or serious cold areas, the problem of leaking in the spring thawing period is very frequent, which will cause various tunnel diseases due to freezing. By using the surrounding rock geothermal energy in the tunnel project, especially the tunnel project below the permafrost layer, the cold area tunnel heat pump system is able to improve the overall heating energy efficiency as the side temperature regarding the heat pump evaporation increases, that furtherly serves the surrounding supporting building facilities. Inspired by this system and the active and passive coupling building technology, a heat recovery type of heat storage wall model is proposed in this research. By describing the heat transfer process regarding the heat recovery type of heat storage wall and carrying out the experimental research, its feasibility and effectiveness are verified. The results show that when the outdoor ambient temperature in Urumqi is −7~−15°C and the instantaneous total solar radiation reaches the range of 0~1108 W/m2, this kind of wall can create hot wall-near air whose temperature is 11.89°C higher than the ambient temperature for providing a high-quality air heat source for the air source heat pump when the temperature is low, thereby significantly improving the air source heat pump heating system efficiency. Without the photovoltaic and photothermal equipment, the heat recovery type of heat storage wall can make the utilization rate of solar energy reach 13% to 20%, even up to 36%.
format Article in Journal/Newspaper
author Yafei Li
Dianwei Qi
Hongchao Yan
Jiaqi Zhang
author_facet Yafei Li
Dianwei Qi
Hongchao Yan
Jiaqi Zhang
author_sort Yafei Li
title Experimental Study on Heat Transfer Process Optimization of Heat Storage Wall of the Heat Pump in Tunnel Surrounding Rock in the Cold Region
title_short Experimental Study on Heat Transfer Process Optimization of Heat Storage Wall of the Heat Pump in Tunnel Surrounding Rock in the Cold Region
title_full Experimental Study on Heat Transfer Process Optimization of Heat Storage Wall of the Heat Pump in Tunnel Surrounding Rock in the Cold Region
title_fullStr Experimental Study on Heat Transfer Process Optimization of Heat Storage Wall of the Heat Pump in Tunnel Surrounding Rock in the Cold Region
title_full_unstemmed Experimental Study on Heat Transfer Process Optimization of Heat Storage Wall of the Heat Pump in Tunnel Surrounding Rock in the Cold Region
title_sort experimental study on heat transfer process optimization of heat storage wall of the heat pump in tunnel surrounding rock in the cold region
publisher Hindawi-Wiley
publishDate 2022
url https://doi.org/10.1155/2022/5224154
https://doaj.org/article/c72daeef8d7643b79153f298e6351c22
genre permafrost
genre_facet permafrost
op_source Geofluids, Vol 2022 (2022)
op_relation http://dx.doi.org/10.1155/2022/5224154
https://doaj.org/toc/1468-8123
1468-8123
doi:10.1155/2022/5224154
https://doaj.org/article/c72daeef8d7643b79153f298e6351c22
op_doi https://doi.org/10.1155/2022/5224154
container_title Geofluids
container_volume 2022
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