Feasibility Study of Ground Source Heat Pump System Considering Underground Thermal Properties

: A typical ground source heat pump (GSHP) system in South Korea has a ground heat exchanger (GHX) with a length of 100–150 m, which utilizes annually stable underground temperature to meet the loads of cooling, heating and hot water in buildings. However, most GSHP systems have been intro...

Full description

Bibliographic Details
Main Authors: Sang Mu Bae, Yujin Nam, Byoung Ohan Shim
Format: Article
Language:English
Published: MDPI AG 2018-07-01
Series:Energies
Subjects:
Online Access:http://www.mdpi.com/1996-1073/11/7/1786
id doaj-75d267ba05d340969179124ab34de97a
record_format Article
spelling doaj-75d267ba05d340969179124ab34de97a2020-11-24T23:18:12ZengMDPI AGEnergies1996-10732018-07-01117178610.3390/en11071786en11071786Feasibility Study of Ground Source Heat Pump System Considering Underground Thermal PropertiesSang Mu Bae0Yujin Nam1Byoung Ohan Shim2Department of Architectural Engineering, Pusan National University, 2 Busandaehak-ro 63, Geomjeong-gu, Busan 46241, KoreaDepartment of Architectural Engineering, Pusan National University, 2 Busandaehak-ro 63, Geomjeong-gu, Busan 46241, KoreaKIGAM, Gwahang-no 124, Yuseong-gu, Daejeon 305-350, Korea: A typical ground source heat pump (GSHP) system in South Korea has a ground heat exchanger (GHX) with a length of 100–150 m, which utilizes annually stable underground temperature to meet the loads of cooling, heating and hot water in buildings. However, most GSHP systems have been introduced in heating dominated areas because the system performance advantage is larger compared with air source heat pump system than that in cooling dominated areas. To effectively provide geothermal energy to the building in the limited urban area, it is necessary to install deep GHXs. Despite its large capacity, there are few studies on GSHP system with deep GHX over 300 m. In this study, to estimate the performance of the GSHP system with deep GHX and evaluate its feasibility, numerical simulation was conducted. To quantitatively analyze heat transfer between soil and GHX, the coupled model with GHX model and ground heat and groundwater transfer model was used. Furthermore, the heat exchange rate and the source temperature were calculated according to the operation modes, the length of GHX, and soil conditions such as geothermal gradient and thermal conductivity. As a result, the total heat exchange rate of GHX with a length of 300 m heat exchanger was 12.62 kW, 173% that of a length of 150 m. Finally, it was found that the GSHP system with deep GHX has realistic possibility in good condition of geothermal gradient.http://www.mdpi.com/1996-1073/11/7/1786ground source heat pump (GSHP) systemground heat exchanger (GHX)numerical simulationgeothermal gradientheat exchange rate (HER)
collection DOAJ
language English
format Article
sources DOAJ
author Sang Mu Bae
Yujin Nam
Byoung Ohan Shim
spellingShingle Sang Mu Bae
Yujin Nam
Byoung Ohan Shim
Feasibility Study of Ground Source Heat Pump System Considering Underground Thermal Properties
Energies
ground source heat pump (GSHP) system
ground heat exchanger (GHX)
numerical simulation
geothermal gradient
heat exchange rate (HER)
author_facet Sang Mu Bae
Yujin Nam
Byoung Ohan Shim
author_sort Sang Mu Bae
title Feasibility Study of Ground Source Heat Pump System Considering Underground Thermal Properties
title_short Feasibility Study of Ground Source Heat Pump System Considering Underground Thermal Properties
title_full Feasibility Study of Ground Source Heat Pump System Considering Underground Thermal Properties
title_fullStr Feasibility Study of Ground Source Heat Pump System Considering Underground Thermal Properties
title_full_unstemmed Feasibility Study of Ground Source Heat Pump System Considering Underground Thermal Properties
title_sort feasibility study of ground source heat pump system considering underground thermal properties
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2018-07-01
description : A typical ground source heat pump (GSHP) system in South Korea has a ground heat exchanger (GHX) with a length of 100–150 m, which utilizes annually stable underground temperature to meet the loads of cooling, heating and hot water in buildings. However, most GSHP systems have been introduced in heating dominated areas because the system performance advantage is larger compared with air source heat pump system than that in cooling dominated areas. To effectively provide geothermal energy to the building in the limited urban area, it is necessary to install deep GHXs. Despite its large capacity, there are few studies on GSHP system with deep GHX over 300 m. In this study, to estimate the performance of the GSHP system with deep GHX and evaluate its feasibility, numerical simulation was conducted. To quantitatively analyze heat transfer between soil and GHX, the coupled model with GHX model and ground heat and groundwater transfer model was used. Furthermore, the heat exchange rate and the source temperature were calculated according to the operation modes, the length of GHX, and soil conditions such as geothermal gradient and thermal conductivity. As a result, the total heat exchange rate of GHX with a length of 300 m heat exchanger was 12.62 kW, 173% that of a length of 150 m. Finally, it was found that the GSHP system with deep GHX has realistic possibility in good condition of geothermal gradient.
topic ground source heat pump (GSHP) system
ground heat exchanger (GHX)
numerical simulation
geothermal gradient
heat exchange rate (HER)
url http://www.mdpi.com/1996-1073/11/7/1786
work_keys_str_mv AT sangmubae feasibilitystudyofgroundsourceheatpumpsystemconsideringundergroundthermalproperties
AT yujinnam feasibilitystudyofgroundsourceheatpumpsystemconsideringundergroundthermalproperties
AT byoungohanshim feasibilitystudyofgroundsourceheatpumpsystemconsideringundergroundthermalproperties
_version_ 1725581460381892608