Numerical Simulations on the Application of a Closed-Loop Lake Water Heat Pump System in the Lake Soyang, Korea

A lake is one of the geothermal energy sources to meet increasing demands for renewable energy use. In this study, a series of numerical modeling was performed to evaluate the applicability of a close-loop lake water heat pump (LWHP) system in Lake Soyang, Korea. A non-isothermal pipe flow model was...

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Main Authors: Dong Kyu Park, Youngmin Lee
Format: Article
Language:English
Published: MDPI AG 2020-02-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/13/3/762
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spelling doaj-2328ad3744a344a980c7eb8626538d6a2020-11-25T02:33:37ZengMDPI AGEnergies1996-10732020-02-0113376210.3390/en13030762en13030762Numerical Simulations on the Application of a Closed-Loop Lake Water Heat Pump System in the Lake Soyang, KoreaDong Kyu Park0Youngmin Lee1Korea Institute of Geoscience and Mineral Resources, Daejeon 34142, KoreaKorea Institute of Geoscience and Mineral Resources, Daejeon 34142, KoreaA lake is one of the geothermal energy sources to meet increasing demands for renewable energy use. In this study, a series of numerical modeling was performed to evaluate the applicability of a close-loop lake water heat pump (LWHP) system in Lake Soyang, Korea. A non-isothermal pipe flow model was used to simulate the flow and heat transfer processes occurring in the LWHP system with the main pipe and several helical tubes for heat exchange. Based on the temperature data measured in the Lake Soyang for 4 years, the installation depth and the number of helical tubes were determined sequentially, and the sensitivities of additional installation and operation factors on the system performance were analyzed. Assuming a mild current in the lake, the installation and operation conditions for the efficient operation of the system were suggested as follows: The installation of 16 helical tubes at 50 m deep, the circulation rates of heat-carrier fluid of 189.3 L/min, the inner diameter of tubes of 32 mm, and the wall thickness and thermal conductivity of 2.9 mm and 0.4 W/mK, respectively. Considering many lakes and reservoirs in Korea, the closed-loop LWHP system would be a viable renewable energy application.https://www.mdpi.com/1996-1073/13/3/762lake water heat pump systemlwhpclosed-looplake soyanggeothermal energy
collection DOAJ
language English
format Article
sources DOAJ
author Dong Kyu Park
Youngmin Lee
spellingShingle Dong Kyu Park
Youngmin Lee
Numerical Simulations on the Application of a Closed-Loop Lake Water Heat Pump System in the Lake Soyang, Korea
Energies
lake water heat pump system
lwhp
closed-loop
lake soyang
geothermal energy
author_facet Dong Kyu Park
Youngmin Lee
author_sort Dong Kyu Park
title Numerical Simulations on the Application of a Closed-Loop Lake Water Heat Pump System in the Lake Soyang, Korea
title_short Numerical Simulations on the Application of a Closed-Loop Lake Water Heat Pump System in the Lake Soyang, Korea
title_full Numerical Simulations on the Application of a Closed-Loop Lake Water Heat Pump System in the Lake Soyang, Korea
title_fullStr Numerical Simulations on the Application of a Closed-Loop Lake Water Heat Pump System in the Lake Soyang, Korea
title_full_unstemmed Numerical Simulations on the Application of a Closed-Loop Lake Water Heat Pump System in the Lake Soyang, Korea
title_sort numerical simulations on the application of a closed-loop lake water heat pump system in the lake soyang, korea
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2020-02-01
description A lake is one of the geothermal energy sources to meet increasing demands for renewable energy use. In this study, a series of numerical modeling was performed to evaluate the applicability of a close-loop lake water heat pump (LWHP) system in Lake Soyang, Korea. A non-isothermal pipe flow model was used to simulate the flow and heat transfer processes occurring in the LWHP system with the main pipe and several helical tubes for heat exchange. Based on the temperature data measured in the Lake Soyang for 4 years, the installation depth and the number of helical tubes were determined sequentially, and the sensitivities of additional installation and operation factors on the system performance were analyzed. Assuming a mild current in the lake, the installation and operation conditions for the efficient operation of the system were suggested as follows: The installation of 16 helical tubes at 50 m deep, the circulation rates of heat-carrier fluid of 189.3 L/min, the inner diameter of tubes of 32 mm, and the wall thickness and thermal conductivity of 2.9 mm and 0.4 W/mK, respectively. Considering many lakes and reservoirs in Korea, the closed-loop LWHP system would be a viable renewable energy application.
topic lake water heat pump system
lwhp
closed-loop
lake soyang
geothermal energy
url https://www.mdpi.com/1996-1073/13/3/762
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