Performance of a full-scale energy pile for underground solar energy storage
This study presents a field test to investigate the thermal injection performance of a full-scale energy pile for underground solar energy storage (USES). The tested energy comprises a full-scale bridge pile foundation and a spiral-shaped pipe. Numerical modeling was carried out to provide complemen...
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doaj-78670d37d5a84066a82125014752fff62021-09-03T04:45:37ZengElsevierCase Studies in Thermal Engineering2214-157X2021-10-0127101313Performance of a full-scale energy pile for underground solar energy storageDi Wu0Gangqiang Kong1Hanlong Liu2Qiang Jiang3Qing Yang4Liang Kong5School of Science, Qingdao University of Technology, Fushun Road No. 11, Qingdao, Shandong, 266033, PR ChinaKey Laboratory of Ministry of Education for Geomechanics and Embankment Engineering, Hohai University, Xikang Road No.1, Nanjing, Jiangsu, 210098, PR China; Corresponding author.Key Laboratory of New Technology for Construction of Cities in Mountain Area, Shabei Road No.83, Chongqing University, Chongqing, 400045, PR ChinaJiangyin Construction Project Management Office, Jiangyin, Jiangsu, 214400, ChinaState Key Laboratory of Coastal and Offshore Engineering, Dalian University of Technology, Dalian, 116024, ChinaSchool of Science, Qingdao University of Technology, Fushun Road No. 11, Qingdao, Shandong, 266033, PR ChinaThis study presents a field test to investigate the thermal injection performance of a full-scale energy pile for underground solar energy storage (USES). The tested energy comprises a full-scale bridge pile foundation and a spiral-shaped pipe. Numerical modeling was carried out to provide complementary results. Sensitivity analyses of the pipe configuration and operation mode on the thermal injection performance of the energy pile were performed based on the numerical modeling. The results showed that 84% of the injected thermal energy could be transferred to the surrounding soil by the energy pile, and the total amount of the thermal energy stored by a single energy pile was −3.2 GJ over 29.5 days. The maximum average value of the thermal injection rate of the energy pile was equal to −129 W/m, which was 2–3 times larger than the thermal injection rate of the geothermal boreholes. Compared to the continuous USES operation of the energy pile, the intermittent mode of the energy pile was more efficient for USES. Increasing the length of the heat exchange pipe of the energy pile was more effective in enhancing the thermal injection performance of the energy pile for USES than changing the pipe shape.http://www.sciencedirect.com/science/article/pii/S2214157X21004767Underground solar energy storageEnergy pileThermal injection performanceField testNumerical modeling |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Di Wu Gangqiang Kong Hanlong Liu Qiang Jiang Qing Yang Liang Kong |
spellingShingle |
Di Wu Gangqiang Kong Hanlong Liu Qiang Jiang Qing Yang Liang Kong Performance of a full-scale energy pile for underground solar energy storage Case Studies in Thermal Engineering Underground solar energy storage Energy pile Thermal injection performance Field test Numerical modeling |
author_facet |
Di Wu Gangqiang Kong Hanlong Liu Qiang Jiang Qing Yang Liang Kong |
author_sort |
Di Wu |
title |
Performance of a full-scale energy pile for underground solar energy storage |
title_short |
Performance of a full-scale energy pile for underground solar energy storage |
title_full |
Performance of a full-scale energy pile for underground solar energy storage |
title_fullStr |
Performance of a full-scale energy pile for underground solar energy storage |
title_full_unstemmed |
Performance of a full-scale energy pile for underground solar energy storage |
title_sort |
performance of a full-scale energy pile for underground solar energy storage |
publisher |
Elsevier |
series |
Case Studies in Thermal Engineering |
issn |
2214-157X |
publishDate |
2021-10-01 |
description |
This study presents a field test to investigate the thermal injection performance of a full-scale energy pile for underground solar energy storage (USES). The tested energy comprises a full-scale bridge pile foundation and a spiral-shaped pipe. Numerical modeling was carried out to provide complementary results. Sensitivity analyses of the pipe configuration and operation mode on the thermal injection performance of the energy pile were performed based on the numerical modeling. The results showed that 84% of the injected thermal energy could be transferred to the surrounding soil by the energy pile, and the total amount of the thermal energy stored by a single energy pile was −3.2 GJ over 29.5 days. The maximum average value of the thermal injection rate of the energy pile was equal to −129 W/m, which was 2–3 times larger than the thermal injection rate of the geothermal boreholes. Compared to the continuous USES operation of the energy pile, the intermittent mode of the energy pile was more efficient for USES. Increasing the length of the heat exchange pipe of the energy pile was more effective in enhancing the thermal injection performance of the energy pile for USES than changing the pipe shape. |
topic |
Underground solar energy storage Energy pile Thermal injection performance Field test Numerical modeling |
url |
http://www.sciencedirect.com/science/article/pii/S2214157X21004767 |
work_keys_str_mv |
AT diwu performanceofafullscaleenergypileforundergroundsolarenergystorage AT gangqiangkong performanceofafullscaleenergypileforundergroundsolarenergystorage AT hanlongliu performanceofafullscaleenergypileforundergroundsolarenergystorage AT qiangjiang performanceofafullscaleenergypileforundergroundsolarenergystorage AT qingyang performanceofafullscaleenergypileforundergroundsolarenergystorage AT liangkong performanceofafullscaleenergypileforundergroundsolarenergystorage |
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