王登甲

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王登甲,男,国家青年科学基金项目A类获得者,陕西省“特支计划”青年拔尖人才,陕西省中青年科技创新领军人才,西安建筑科技大学二级教授、博士生导师,西安建筑科技大学交叉创新研究院常务副院长。 王登甲于2002年9月至2006年6月就读于西安建筑科技大学,毕业获得供热、供燃气、通风及空调工程工学学士学位;2006年9月...

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论文成果

Impact of groundwater seepage on the thermal performance of phermalenergy storage based on two-phase flow model of porous media

发布时间:2026-04-07  点击次数:

发表刊物:Energy and Buildings

关键字:Water pit thermal energy storageTwo-phase flow modelPorous mediaHeat lossGround water

摘要:Pit thermal energy storage (PTES) plays a significant role in the field of building energy utilization. Due to the direct contact between PTES and soil as well as the widespread presence of groundwater, the hydrogeological environment must be considered for its impact on its thermal performance. In particular, groundwater seepage alters heat transfer characteristics between PTES and soil, thereby significantly impacting the thermal storage efficiency of the system. This study conceptualized the soil domain as unsaturated soil and developed a model based on two-phase flow in porous media to simulate thermo-hydro interactions between groundwater and the system. The model was validated against operational data from the Dronninglund’s PTES. A parametric sensitivity analysis was conducted to elucidate the impact mechanisms of confined aquifer properties, including depth to the aquifer (6,9,14,25 m), thickness (10,15 m), flow velocity (5.4·10-6, 5.4·10-7, 1·10-7 m/s), and degree of saturation (0.3,0.45,0.9), on the thermal performance of PTES. Results indicate that the heat loss of PTES stabilized by fourth year under groundwater conditions, whereas stabilization occurs by seventh year without groundwater influence. Under dynamic groundwater conditions, the annual average thermal loss from the system increased by 69.24 % compared to scenarios without groundwater flow. The soil temperature field diffused along the groundwater flow direction, and the influence range of PTES expanded accordingly. Further analysis revealed differential impacts on PTES surfaces: thermal loss at the upstream surface increased by 131.9 % relative to static groundwater conditions, whereas the downstream surface exhibited only a 10.8 % increase. In addition, when the vertical separation between the aquifer and PTES base exceeded 10 m, thermal interaction attenuated significantly. These findings provide critical guidance for PTES site selection and engineering design.

第一作者:牟庆驹,王登甲,刘艳峰,樊建华

论文类型:期刊论文

通讯作者:李勇

论文编号:116333

学科门类:工学

卷号:347

期号:Part A

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发表时间:2025-01-01

收录刊物:SCI

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