Efficient Operation Method of Aquifer Thermal Energy Storage System Using Demand Response
The mass introduction of renewable energy is essential to reduce carbon dioxide emissions. We examined an operation method that combines the surplus energy of photovoltaic power generation using demand response (DR), which recognizes the balance between power supply and demand, with an aquifer heat...
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doaj-0deffb5d5fd7461092295c1c29f9706f2021-06-01T01:20:06ZengMDPI AGEnergies1996-10732021-05-01143129312910.3390/en14113129Efficient Operation Method of Aquifer Thermal Energy Storage System Using Demand ResponseJewon Oh0Daisuke Sumiyoshi1Masatoshi Nishioka2Hyunbae Kim3Artificial Intelligence Applied Research Institute, Kurume Institute of Technology, 2228-66 Kamitsu-machi, Kurume, Fukuoka 830-0052, JapanDepartment of Architecture, Kyushu University, 744 Motooka, Nishi-ku, Fukuoka 819-0395, JapanGraduate School of Engineering, Osaka City University, 3-3-138 Sugimoto, Sugimoto-ku, Osaka 558-8585, JapanGraduate School of Agricultural and Life Sciences, The University of Tokyo, 1-1-1, Yayoi, Bunkyo-ku, Tokyo 113-8657, JapanThe mass introduction of renewable energy is essential to reduce carbon dioxide emissions. We examined an operation method that combines the surplus energy of photovoltaic power generation using demand response (DR), which recognizes the balance between power supply and demand, with an aquifer heat storage system. In the case that predicts the occurrence of DR and performs DR storage and heat dissipation operation, the result was an operation that can suppress daytime power consumption without increasing total power consumption. Case 1-2, which performs nighttime heat storage operation for about 6 h, has become an operation that suppresses daytime power consumption by more than 60%. Furthermore, the increase in total power consumption was suppressed by combining DR heat storage operation. The long night heat storage operation did not use up the heat storage amount. Therefore, it is recommended to the heat storage operation at night as much as possible before DR occurs. In the target area of this study, the underground temperature was 19.1 °C, the room temperature during cooling was about 25 °C and groundwater could be used as the heat source. The aquifer thermal energy storage (ATES) system in this study uses three wells, and consists of a well that pumps groundwater, a heat storage well that stores heat and a well that used heat and then returns it. Care must be taken using such an operation method depending on the layer configuration.https://www.mdpi.com/1996-1073/14/11/3129aquifer thermal energy storage systemdemand responsewater heat pumpsimulationefficient operation method |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Jewon Oh Daisuke Sumiyoshi Masatoshi Nishioka Hyunbae Kim |
spellingShingle |
Jewon Oh Daisuke Sumiyoshi Masatoshi Nishioka Hyunbae Kim Efficient Operation Method of Aquifer Thermal Energy Storage System Using Demand Response Energies aquifer thermal energy storage system demand response water heat pump simulation efficient operation method |
author_facet |
Jewon Oh Daisuke Sumiyoshi Masatoshi Nishioka Hyunbae Kim |
author_sort |
Jewon Oh |
title |
Efficient Operation Method of Aquifer Thermal Energy Storage System Using Demand Response |
title_short |
Efficient Operation Method of Aquifer Thermal Energy Storage System Using Demand Response |
title_full |
Efficient Operation Method of Aquifer Thermal Energy Storage System Using Demand Response |
title_fullStr |
Efficient Operation Method of Aquifer Thermal Energy Storage System Using Demand Response |
title_full_unstemmed |
Efficient Operation Method of Aquifer Thermal Energy Storage System Using Demand Response |
title_sort |
efficient operation method of aquifer thermal energy storage system using demand response |
publisher |
MDPI AG |
series |
Energies |
issn |
1996-1073 |
publishDate |
2021-05-01 |
description |
The mass introduction of renewable energy is essential to reduce carbon dioxide emissions. We examined an operation method that combines the surplus energy of photovoltaic power generation using demand response (DR), which recognizes the balance between power supply and demand, with an aquifer heat storage system. In the case that predicts the occurrence of DR and performs DR storage and heat dissipation operation, the result was an operation that can suppress daytime power consumption without increasing total power consumption. Case 1-2, which performs nighttime heat storage operation for about 6 h, has become an operation that suppresses daytime power consumption by more than 60%. Furthermore, the increase in total power consumption was suppressed by combining DR heat storage operation. The long night heat storage operation did not use up the heat storage amount. Therefore, it is recommended to the heat storage operation at night as much as possible before DR occurs. In the target area of this study, the underground temperature was 19.1 °C, the room temperature during cooling was about 25 °C and groundwater could be used as the heat source. The aquifer thermal energy storage (ATES) system in this study uses three wells, and consists of a well that pumps groundwater, a heat storage well that stores heat and a well that used heat and then returns it. Care must be taken using such an operation method depending on the layer configuration. |
topic |
aquifer thermal energy storage system demand response water heat pump simulation efficient operation method |
url |
https://www.mdpi.com/1996-1073/14/11/3129 |
work_keys_str_mv |
AT jewonoh efficientoperationmethodofaquiferthermalenergystoragesystemusingdemandresponse AT daisukesumiyoshi efficientoperationmethodofaquiferthermalenergystoragesystemusingdemandresponse AT masatoshinishioka efficientoperationmethodofaquiferthermalenergystoragesystemusingdemandresponse AT hyunbaekim efficientoperationmethodofaquiferthermalenergystoragesystemusingdemandresponse |
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