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Coupling of earth-to-air heat exchangers and buoyancy for energy-efficient ventilation of buildings considering dynamic thermal behavior and cooling/heating capacity

机译:考虑动态热行为和制冷/制热能力的地对空换热器与浮力的耦合,以实现建筑物的节能通风

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Energy-efficient technologies such as earth-to-air heat exchangers (EAHEs) and buoyancy-driven natural ventilation (BV) are employed for space conditioning. However, a fan is required in conventional EAHEs for air circulation, and BV normally serves as a passive cooling measure in temperate transitional seasons. This paper proposes the coupling of EAHEs and the buoyancy generated inside a building to achieve passive and autonomous ventilation without requiring any mechanical system. A model is developed to investigate the effects of the coupled system, with a primary focus on the dynamics of the airflow temperature, flow rate, and cooling/heating capacity provision. The model results are in good agreement with those of the computational fluid dynamics simulation. The model is applied in a hypothetical building located in a hot-summer/cold-winter region (Chongqing, China). The proposed coupled scheme is superior to the BV in hot and cold seasons. The indoor air temperature, ventilation flow rate, and cooling/heating capacity are found to fluctuate asynchronously. The cooling capacity is 56.3 kWh for the hottest day, and the heating capacity is 111.1 kWh for the coldest day. The maximum cooling or heating capacity is nearly achieved at the hottest or coldest times with the help of ventilation flow rate fluctuation. (C) 2018 Elsevier Ltd. All rights reserved.
机译:空间调节采用了地对空换热器(EAHE)和浮力驱动的自然通风(BV)等节能技术。但是,传统的EAHE中需要风扇来进行空气循环,而BV通常在温带过渡季节用作被动冷却措施。本文提出了EAHE与建筑物内部产生的浮力的耦合,从而无需任何机械系统即可实现被动和自主通风。开发了一个模型来研究耦合系统的影响,主要关注气流温度,流量和制冷/供热能力的动态变化。模型结果与流体动力学模拟结果吻合良好。该模型被应用于位于夏热冬冷地区(中国重庆)的假设建筑物中。所提出的耦合方案在炎热和寒冷的季节都优于BV。发现室内空气温度,通风流量和制冷/制热量是异步波动的。最热的一天的制冷量为56.3 kWh,最冷的一天的制冷量为111.1 kWh。借助于通风流量的波动,在最热或最冷的时间几乎达到最大的制冷或制热能力。 (C)2018 Elsevier Ltd.保留所有权利。

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