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Thermal performance of a heating system combining solar air collector with hollow ventilated interior wall in residential buildings on Tibetan Plateau

机译:藏高原居住建筑中空气收集器将太阳能空气收集器结合的加热系统的热性能

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摘要

Solar air heating is very promising in residential buildings on Tibetan Plateau, and effective heat storage is indispensable for continuous heating. Exterior wall is often used for the heat storage, whereas the interior wall is seldom exploited. This paper investigates a heating system combining solar air collector with hollow ventilated interior wall for residential buildings on Tibetan Plateau. A simplified model based on discrete mathematics is established by EnergyPlus and is validated for modeling this system. With this model, a case study is performed to evaluate thermal performances of this system. Moreover, influencing factors of this system are analyzed as well. Results show that compared with the other two typical systems this system increases the minimum indoor air temperature by 6.5 degrees C and 3.2 degrees C with night heating need reduced by 79.9% and 60.7%, respectively. For the interior wall material, time constant and thermal inertia are dominant. The optimum window-wall ratio for the south facade is within 0.3-0.4, while the best circulation air flow rate is within 300-500 m(3)/h. The outdoor air temperature has few influences on the heating performance of this system. Overall, this system is applicable to the heating of residential buildings on Tibet Plateau. (C) 2019 Elsevier Ltd. All rights reserved.
机译:在西藏高原上的住宅建筑中,太阳能空气供暖非常有前途,有效的蓄热是不可或缺的连续加热。外墙通常用于蓄热,而内墙很少被剥削。本文调查了一种加热系统,将太阳能空气收集器与藏高原上的住宅建筑中空洞的内墙相结合。基于离散数学的简化模型是由EnergyPlus建立的,并验证用于建模该系统。利用该模型,执行案例研究以评估该系统的热性能。此外,还分析了该系统的影响因素。结果表明,与其他两个典型系统相比,该系统将最小室内空气温度与3.5摄氏度的最小室内空气温度增加,3.2摄氏度分别需要减少79.9%和60.7%。对于内墙材料,时间常数和热惯性是显性的。南部门面的最佳窗壁比在0.3-0.4内,而最佳循环空气流速在300-500米(3)/ h内。室外空气温度对该系统的加热性能影响很少。总体而言,该系统适用于西藏高原对住宅建筑的加热。 (c)2019 Elsevier Ltd.保留所有权利。

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