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A demand-oriented approach for integrating earth-to-air heat exchangers into buildings for achieving year-round indoor thermal comfort

机译:一种面向需求的方法,用于将地对空热交换器集成到建筑物中,以实现全年室内热舒适性

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摘要

Earth-to-air heat exchanger (EAHE) is a promising energy-efficient technology for indoor thermal environment regulation; however, it should adapt to both building and climatic conditions. This paper proposes a new inverse approach to determine the parameters of EAHE integrating into buildings and to achieve a prescribed indoor thermal comfort objective. First, the criterion for achieving year-round thermally comfortable indoor air temperatures is formulated. According to the objective, the required combined parameters characterizing the dynamic behavior of the earth-to-air heat exchanger outlet-air temperature are inversely calculated. Then, the earth-to-air heat exchanger parameters, such as length, radius, burial depth and flow rate, satisfying the proposed objective are determined. The results demonstrate that decreasing the phase shift of the anticipated indoor air temperature profile helps to reduce the requirements on earth-to-air heat exchanger parameters. A Computational Fluid Dynamics simulation incorporated with real meteorological date is implemented according to the EAHE parameters obtained from the proposed approach. It is demonstrated the proposed inverse approach is effective and the year-round indoor thermal comfort is achievable.
机译:地对空热交换器(EAHE)是用于室内热环境调节的有前途的节能技术;但是,它应该适应建筑和气候条件。本文提出了一种新的逆向方法,用于确定集成到建筑物中的EAHE的参数并达到规定的室内热舒适性目标。首先,制定了实现全年热舒适的室内空气温度的标准。根据该目标,反算出表征地对空热交换器出口空气温度动态行为的所需组合参数。然后,确定满足所提出目标的地对空热交换器参数,例如长度,半径,埋深和流速。结果表明,减少预期室内空气温度曲线的相移有助于降低对地-空气热交换器参数的要求。根据从建议的方法获得的EAHE参数,实现了结合实际气象数据的计算流体动力学模拟。事实证明,所提出的逆向方法是有效的,并且全年均可实现室内热舒适性。

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