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Performance Analysis of Multi-Purpose Fluidic Windows Based on Structured Glass-Glass Laminates in a Triple Glazing

机译:基于结构化玻璃层压板的多功能流体窗口在三层玻璃上的性能分析

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For decades, various technologies have been developed aiming to enhance the energy efficiency of buildings. As a recent example, fluidic windows have been reported which literally enable to wrap buildings into a liquid layer and to transform the building envelope into a thermally active system for energy harvesting, distribution and storage. Elaborating on this concept, we now consider the performance of insulation glass units (IGU) which implement glass-glass capillary panels for liquid circulation. Such devices contain a scalable heat pump that can reversely be operated in active cooling or heating modes. By bridging the insulation panel inside the window, also passive cooling functionality is achieved. Long-term computational performance analysis shows that adequate thermal comfort can be ensured with different window-to-floor size ratios, and for different internal heat gain, for example, caused by differences in room occupation. For a size ratio of 0.4, we demonstrate a competitive seasonal performance factor, i.e., ~ 6.5 for heating and ~ 10.9 for cooling. On-device photovoltaic power can cover more than four fifths or the annual electricity consumption of all auxiliary components. For the size ratio of 0.4 in a highly-occupied office room, the device specific primary energy consumption ensuring year-over thermal comfort is as low as ~ 2.9 kWh/(m2a).
机译:几十年来,已经开发了各种技术,旨在提高建筑物的能源效率。作为最近的示例,已经报道了流体窗口,其字面上使得将建筑物包裹成液体层并将建筑物包络转换成热敏系统以进行能量收集,分配和储存。详细说明这一概念,我们现在考虑实施用于液体循环的玻璃玻璃毛细管板的绝缘玻璃单元(IGU)的性能。这种装置包含可伸缩的热泵,其可以以主动冷却或加热模式逆转。通过桥接窗口内的绝缘面板,也实现了无源冷却功能。长期计算性能分析表明,可以通过不同的窗口到地尺寸比率确保足够的热舒适度,并且例如由房间占用的差异引起的不同内部热量增益。对于尺寸比为0.4,我们展示了竞争性的季节性性能因子,即加热和冷却〜10.9的〜6.5。设备上的光伏电源可以覆盖超过四分之四的所有辅助部件的五分之一或年电力消耗。对于高度占用的办公室室内0.4的尺寸比,设备特定的主要能量消耗确保了全年热舒适度低至2.9千瓦时/(M2A)。

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