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Performance characterization of novel caisson-based thermal storage for ground source heat pumps

机译:用于地源热泵的新型CAISSON热存储性能表征

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To avoid the catastrophic results of climate change, a major shift towards clean, sustainable and renewable energy technologies is inevitable. Since buildings are capable of on-site thermal energy generation and exhibiting predictive patterns of heating and cooling, many attempts are currently underway to incorporate more renewable energy (e.g., geothermal heating and cooling) systems in buildings. Subsurface geothermal resources represent a great potential for direct use of energy; put another way, the planet is a six sextillion (1021) metric ton battery that is continually being replenished by solar radiation, lightning, and heat from its deep-down molten core. Despite the enormous energy potential, geothermal systems are not adopted widely due to three main reasons: high drilling costs, energy imbalance in the ground, and lack of drilling space. To address these challenges, a novel foundation-based geothermal heat exchanger system incorporating phase change material (PCM) has been designed. The proposed technology, utilizing a foundation caisson, reduces the construction and installation costs by integrating energy and structural systems together into a single ground installation. The present study aims to characterize the thermal performance of the proposed system through a numerical model that is validated and calibrated using the experimental data generated from a demonstration site that hosts a foundation caisson. Efficacy of the use of PCM on improving the thermal performance of the system is characterized in terms of energy savings and greenhouse gas (GHG) emission reduction. Sensitivity studies demonstrate improvement in the performance of the caisson with the use of PCM with increased thermal conductivity. Also, as the seasonal heat injection to extraction ratio deviates further away from unity, the PCM helps improve the thermal performance as evidenced through reduced primary energy consumption. (C) 2021 Elsevier Ltd. All rights reserved.
机译:为避免气候变化的灾难性结果,对清洁,可持续和可再生能源技术的重大转变是不可避免的。由于建筑物能够在现场热能产生并表现出加热和冷却的预测模式,因此目前正在进行许多尝试,以在建筑物中纳入更可再生能源(例如,地热化和冷却)系统。地下地热资源代表直接使用能源的巨大潜力;换句话说,行星是六个SEXTLIOL(1021)公吨电池,通过太阳辐射,闪电和从其深下熔融核心的热量来连续补充。尽管能源潜力巨大,但由于三个主要原因,地热系统不会被广泛采用:高钻削成本,地面能源不平衡,缺乏钻孔空间。为了解决这些挑战,设计了一种新的基础基础地热换热器系统,包括相变材料(PCM)。利用基础沉箱的建议技术通过将能量和结构系统整合到单个地面安装中来降低构造和安装成本。本研究旨在通过数值模型来表征所提出的系统的热性能,该数字模型使用从托管基金会的示范站点产生的实验数据验证和校准。 PCM在提高系统的热性能方面使用PCM的功效特征在于节能和温室气体(GHG)减排。敏感性研究表明,使用PCM具有提高的导热性的PCM的性能提高。而且,随着季节性热喷射与提取率的偏离偏离统一,PCM有助于通过降低一次能耗来提高热性能。 (c)2021 elestvier有限公司保留所有权利。

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