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Best arrangement of BIPV surfaces for future NZEB districts while considering urban heat island effects and the reduction of reflected radiation from solar facades

机译:在考虑城市热岛的效果和太阳能外墙的反射辐射减少的同时,BIPV曲面的最佳布置

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Building Integrated Photovoltaics (BIPV) constitute the way to reach Nearly Zero Energy Buildings and even zero energy districts (NZED). BIPV surfaces can operate on roofs and facades and their efficiency and productivity are related to orientation, shading, reflections from surrounding surfaces. The novelty of the present investigation relies on a chained model also able to account for the Urban Heat Island conditions. The building performance are analysed as EnergyPlus simulations, considering a multi thermal zone reference building located inside a district of similar characteristics. The PV power generation, from hourly to yearly values, is calculated accounting for PV module temperature, irradiance intensity and solar incident angles, by further developing the well known Sandia model. The whole model, applied to a particular city (41.9 degrees N, 12.5 degrees E), shows how the progressive increase of vertical PV surfaces on both the reference and surrounding buildings yields to a reduction of the energy production per PV unit area. The yearly NZED requirements is reached, in the present case, harvesting solar energy on 60% of rooftops and on 60% of the total area of the facades, with a 11% decrease in energy production per PV unit area due to "darkening" effects induced by PV surrounding buildings. (C) 2020 Elsevier Ltd. All rights reserved.
机译:建筑集成光伏(BIPV)构成达到零能量建筑物的差距甚至零能量区(NZED)。 BIPV表面可以在屋顶和外观上运行,并且它们的效率和生产率与来自周围表面的方向,阴影,侧面的反射有关。本调查的新颖性依赖于链接模型,也能够考虑城市热岛条件。考虑到位于类似特征的地区内部的多热电区参考建筑,将建筑物性能分析为能量应用仿真。通过进一步发展众所周知的桑迪亚模型,计算PV模块温度,辐照度强度和太阳发生角度的PV模块温度,辐照度和太阳入射角的光伏发电。适用于特定城市的整个模型(41.9度N,12.5摄氏度),展示了垂直PV表面对参考和周围建筑物的逐步增加,从而降低了每PV单位区域的能量产生。在目前的情况下,达到每年的纽约州的要求,以60%的屋顶和门面总面积的60%收获太阳能,由于“变暗”效应,每个光伏单位面积的能源生产减少11% PV周围建筑物诱导。 (c)2020 elestvier有限公司保留所有权利。

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