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Experimental and numerical assessment of cool-roof impact on thermal and energy performance of a school building in Greece

机译:对希腊某校舍的屋顶和屋顶热和能源性能影响的实验和数值评估

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This paper presents an investigation of cool-roof impacts on thermal and energy performance of a School building located in Athens, Greece. The research work refers to a month recording of thermal performance indicators (TPIs) in selected classrooms, namely indoor air- roof- and ceiling surface- temperature. Thermal inspections also included roof thermal-camera scanning and reflectance measurements of exterior building surfaces. Thermal impacts were assessed in terms of comparisons of TPIs with the ones obtained by the same procedure in a nearby twin building. The impact of the cool roof on building energy performance and thermal comfort was assessed through dynamic energy simulations. Model calibration is achieved through comparisons of simulated indoor air temperature with the measured one in both the ex-ante and ex-post condition. Two summer-conditioning cases were analyzed, namely "ceiling fans with no cooling systems" (actual condition) and "air-conditioning split units with no ventilation systems". For the building block below the cool roof it was found that: in the former case, the energy consumption for ventilation is reduced by at least 25% with an up to 3% increase of comfort operating hours, at the expense of a 12% heating penalty in winter. In the latter case, the energy consumption for cooling is reduced by at least 18% with a similar increase of comfort hours, compensating energy-consumption increase for heating in winter. It is concluded that the cool roof is an efficient solution for School buildings in warm climates as it improves summer thermal comfort and ensures annual energy savings when heat pumps are used for cooling purposes. (C) 2016 Elsevier B.V. All rights reserved.
机译:本文介绍了冷屋顶对位于希腊雅典的一栋教学楼的热和能源性能的影响。研究工作是指在选定教室中每月记录一次热性能指标(TPI),即室内空气屋顶和天花板的表面温度。热检查还包括屋顶热像仪扫描和建筑物外部表面反射率测量。根据TPI与附近双子建筑中通过相同程序获得的TPI的比较来评估热影响。通过动态能源模拟评估了凉爽屋顶对建筑能源性能和热舒适性的影响。通过在事前和事后条件下将模拟室内空气温度与测得的室内空气温度进行比较,可以实现模型校准。分析了两个夏季空调案例,即“不带冷却系统的吊扇”(实际情况)和“不带通风系统的空调分体机组”。对于凉爽的屋顶下面的建筑块,发现:在前一种情况下,通风的能耗至少降低了25%,舒适操作时间增加了多达3%,而供暖却减少了12%冬天的惩罚。在后一种情况下,冷却的能耗至少减少了18%,而舒适时间的增加也与此类似,从而弥补了冬季采暖时能耗的增加。结论是,凉爽的屋顶是温暖气候下学校建筑的有效解决方案,因为它可以提高夏季的热舒适性,并确保在将热泵用于制冷时每年节省能源。 (C)2016 Elsevier B.V.保留所有权利。

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