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The Effect of Water Spray Systems on Thermal and Solar Performance of an ETFE Panel for Building Envelope

机译:喷水系统对建筑围护结构ETFE面板的热和太阳能性能的影响

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摘要

ETFE membranes are generally used in architecture for large roofing and façade systems, because of their transparency and lightness compared to glass alternatives. Multilayer ETFE panels are used to improve single membrane systems performances, reducing thermal losses, by the use of an air gap between two or more ETFE foils, generally serigraphed or surface treated to reduce solar gains. Surface temperatures and global solar radiation strongly affects mean radiant temperature (MRT), and comfort perceived by a user facing a transparent envelope as well as solar gains strongly influences primary energy use for cooling in summer conditions. In the following paper an alternative dynamic solar gains mitigation strategy is presented and applied to a double layer, non-cushions, ETFE panel for façades. We measured the effectiveness of a water spray system located in the air-gap between the parallel ETFE foils and used to reduce surface temperatures and solar access depending on different summer solar radiation values and outdoor/indoor air temperature conditions. Systems alternative with different in nozzle dimension, water spray geometry and water consumption were already tested to evaluate the best compromise between solar gains reduction and water use. The results are preliminary but we noticed that a reduction up to the 10% of the total solar gains could be achieved as well as a reduction of 10 °C of surface temperature. Comfort evaluation for a standard indoor space were already done.
机译:ETFE膜由于与玻璃替代品相比具有透明性和轻便性,因此通常用于大型屋顶和幕墙系统的建筑。多层ETFE面板通过在两个或多个ETFE箔之间使用气隙来改善单膜系统的性能,从而减少热损失,通常将其丝网印刷或表面处理以减少太阳辐射。表面温度和全球太阳辐射会严重影响平均辐射温度(MRT),面对透明外壳的用户所感觉到的舒适度以及太阳辐射的获得会严重影响夏季条件下用于冷却的一次能源的使用。在以下论文中,提出了一种替代性的动态太阳能获取缓解策略,并将其应用于立面的双层,非垫层,ETFE面板。我们测量了位于平行ETFE箔之间的气隙中的喷水系统的有效性,该喷水系统用于降低表面温度和太阳能吸收量,具体取决于不同的夏季太阳辐射值和室外/室内空气温度条件。已经测试了具有不同喷嘴尺寸,喷水几何形状和耗水量的替代系统,以评估减少太阳能获取量和用水之间的最佳折衷。结果是初步的,但我们注意到可以将总太阳能获取量降低10%,并将表面温度降低10°C。标准室内空间的舒适度评估已经完成。

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