Mathematical Modelling and Operational Analysis of Combined Vertical–Horizontal Heat Exchanger for Shallow Geothermal Energy Application in Cooling Mode

Geothermal heat exchangers (GHEs) represent a buried pipe system, which can be utilised to harness renewable thermal energy stored in the ground to improve the efficiency of heating and cooling systems. Two basic arrangements of GHEs have been widely used: vertical and horizontal. Vertical GHEs gene...

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Main Authors: Sarwo Edhy Sofyan, Eric Hu, Andrei Kotousov, Teuku Meurah Indra Riayatsyah, Razali Thaib
Format: Article
Language:English
Published: MDPI AG 2020-12-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/13/24/6598
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spelling doaj-f98292cd7ca74565bb29795ce7adce412020-12-15T00:04:12ZengMDPI AGEnergies1996-10732020-12-01136598659810.3390/en13246598Mathematical Modelling and Operational Analysis of Combined Vertical–Horizontal Heat Exchanger for Shallow Geothermal Energy Application in Cooling ModeSarwo Edhy Sofyan0Eric Hu1Andrei Kotousov2Teuku Meurah Indra Riayatsyah3Razali Thaib4Department of Mechanical Engineering, Universitas Syiah Kuala, Banda Aceh 23111, IndonesiaSchool of Mechanical Engineering, The University of Adelaide, Adelaide, SA 5005, AustraliaSchool of Mechanical Engineering, The University of Adelaide, Adelaide, SA 5005, AustraliaDepartment of Mechanical Engineering, Universitas Syiah Kuala, Banda Aceh 23111, IndonesiaDepartment of Mechanical Engineering, Universitas Syiah Kuala, Banda Aceh 23111, IndonesiaGeothermal heat exchangers (GHEs) represent a buried pipe system, which can be utilised to harness renewable thermal energy stored in the ground to improve the efficiency of heating and cooling systems. Two basic arrangements of GHEs have been widely used: vertical and horizontal. Vertical GHEs generally have a better performance in comparison with the horizontal arrangement, and these systems are particularly suitable for confined spaces. Nevertheless, the main technical challenge associated with GHEs, for either the vertical or the horizontal arrangement, is the performance deterioration associated with an increase in the operation times during summer or winter seasons. In this paper, a combined horizontal-vertical GHE arrangement is proposed to address the current challenges. The combined GHE arrangement can be operated in five different modes, corresponding to different thermal loading conditions. These five operation modes of the combined GHE are analysed based on the transient finite difference models previously developed for the horizontal and vertical arrangements. The simulation results reveal that for the single operation mode (horizontal or vertical only), the vertical GHE performs better than the horizontal GHE due to relatively stable ground temperature deep down. While, for the combined operation mode, the series operations (horizontal to vertical or vertical to horizontal) of the GHE are superior to the split mode. It is found that the effect of the fluid mass flow rate ratio is trivial on the heat dissipation of the split mode GHE. The highest heat transfer rate in the split flow operational mode is rendered by the ratio of the mass flow rate of 40% horizontal and 60% vertical. In addition, the climate condition has more effect on GHE’s performance and the increase of the fluid flow rate it can enhance the amount of energy released by the GHE.https://www.mdpi.com/1996-1073/13/24/6598geothermal heat exchangerscombined arrangementoperation analysis
collection DOAJ
language English
format Article
sources DOAJ
author Sarwo Edhy Sofyan
Eric Hu
Andrei Kotousov
Teuku Meurah Indra Riayatsyah
Razali Thaib
spellingShingle Sarwo Edhy Sofyan
Eric Hu
Andrei Kotousov
Teuku Meurah Indra Riayatsyah
Razali Thaib
Mathematical Modelling and Operational Analysis of Combined Vertical–Horizontal Heat Exchanger for Shallow Geothermal Energy Application in Cooling Mode
Energies
geothermal heat exchangers
combined arrangement
operation analysis
author_facet Sarwo Edhy Sofyan
Eric Hu
Andrei Kotousov
Teuku Meurah Indra Riayatsyah
Razali Thaib
author_sort Sarwo Edhy Sofyan
title Mathematical Modelling and Operational Analysis of Combined Vertical–Horizontal Heat Exchanger for Shallow Geothermal Energy Application in Cooling Mode
title_short Mathematical Modelling and Operational Analysis of Combined Vertical–Horizontal Heat Exchanger for Shallow Geothermal Energy Application in Cooling Mode
title_full Mathematical Modelling and Operational Analysis of Combined Vertical–Horizontal Heat Exchanger for Shallow Geothermal Energy Application in Cooling Mode
title_fullStr Mathematical Modelling and Operational Analysis of Combined Vertical–Horizontal Heat Exchanger for Shallow Geothermal Energy Application in Cooling Mode
title_full_unstemmed Mathematical Modelling and Operational Analysis of Combined Vertical–Horizontal Heat Exchanger for Shallow Geothermal Energy Application in Cooling Mode
title_sort mathematical modelling and operational analysis of combined vertical–horizontal heat exchanger for shallow geothermal energy application in cooling mode
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2020-12-01
description Geothermal heat exchangers (GHEs) represent a buried pipe system, which can be utilised to harness renewable thermal energy stored in the ground to improve the efficiency of heating and cooling systems. Two basic arrangements of GHEs have been widely used: vertical and horizontal. Vertical GHEs generally have a better performance in comparison with the horizontal arrangement, and these systems are particularly suitable for confined spaces. Nevertheless, the main technical challenge associated with GHEs, for either the vertical or the horizontal arrangement, is the performance deterioration associated with an increase in the operation times during summer or winter seasons. In this paper, a combined horizontal-vertical GHE arrangement is proposed to address the current challenges. The combined GHE arrangement can be operated in five different modes, corresponding to different thermal loading conditions. These five operation modes of the combined GHE are analysed based on the transient finite difference models previously developed for the horizontal and vertical arrangements. The simulation results reveal that for the single operation mode (horizontal or vertical only), the vertical GHE performs better than the horizontal GHE due to relatively stable ground temperature deep down. While, for the combined operation mode, the series operations (horizontal to vertical or vertical to horizontal) of the GHE are superior to the split mode. It is found that the effect of the fluid mass flow rate ratio is trivial on the heat dissipation of the split mode GHE. The highest heat transfer rate in the split flow operational mode is rendered by the ratio of the mass flow rate of 40% horizontal and 60% vertical. In addition, the climate condition has more effect on GHE’s performance and the increase of the fluid flow rate it can enhance the amount of energy released by the GHE.
topic geothermal heat exchangers
combined arrangement
operation analysis
url https://www.mdpi.com/1996-1073/13/24/6598
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