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Phase Change Materials as a Thermal Storage Device for Passive Houses

机译:相变材料作为被动房屋的蓄热装置

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摘要

This study describes a simulation-based approach for informing the incorporation of Phase Change Materials (PCMs) in buildings designed to the u22Passive Houseu22 standard. PCMs provide a minimally invasive method of adding thermal mass to a building, thus mitigating overheating events. Phase change transition temperature, quantity, and location of PCM were all considered while incrementally adding PCM to Passive House simulation models in multiple climate zones across the United States. Whole building energy simulations were performed using EnergyPlus from the US Department of Energy. A prototypical Passive House with a 1500 Watt electric heater and no mechanical cooling was modeled. The effectiveness of the PCM was determined by comparing the zone-hours and zone-degree-hours outside the ASHRAE defined comfort zone for all PCM cases against a control simulation without PCM. Results show that adding PCM to Passive Houses can significantly increase thermal comfort so long as the house is in a dry or marine climate. The addition of PCM in moist climates will not significantly increase occupant comfort because the majority of discomfort in these climates arises due to latent load. For dry or marine climates, PCM has the most significant impact in climates with lower cooling degree-days, reducing by 93% the number of zone-hours outside of thermal comfort and by 98% the number of zone-degree-hours uncomfortable in Portland, Oregon. However, the application of PCM is not as well suited for very hot climates because the PCM becomes overcharged. Only single digit reductions in discomfort were realized when modeling PCM in a Passive House in Phoenix, Arizona. It was found that regardless of the climate PCM should be placed in the top floor, focusing on zones with large southern glazing areas. Also, selecting PCM with a melt temperature of 25°C resulted in the most significant increases in thermal comfort for the majority of climates studied.
机译:这项研究描述了一种基于模拟的方法,用于通知将相变材料(PCM)纳入按照 u22Passive House u22标准设计的建筑物中。 PCM提供了一种微创的方法来增加建筑物的热量,从而减轻过热事件。在将PCM逐步添加到美国多个气候区的被动房模拟模型中时,都考虑了相变转变温度,PCM的数量和位置。使用美国能源部的EnergyPlus进行了整个建筑的能源模拟。一个具有1500瓦电加热器且没有机械冷却的被动房模型。通过比较所有PCM病例在ASHRAE定义的舒适区之外的时区时数和时区度数小时数与没有PCM的对照模拟进行比较,来确定PCM的有效性。结果表明,只要房屋处于干燥或海洋气候中,在被动式房屋中添加PCM就能显着提高热舒适度。在潮湿的气候中添加PCM不会显着提高乘员的舒适度,因为在这些气候中,大多数不适感是由于潜在的负载而引起的。对于干旱或海洋气候,PCM在降温天数较低的气候中具有最显着的影响,将热舒适以外的时区小时数减少了93%,将波特兰不舒适的时区小时数减少了98% ,俄勒冈州。但是,PCM的应用不太适合非常炎热的气候,因为PCM会过度充电。在亚利桑那州凤凰城的被动式房屋中对PCM进行建模时,仅能使不适感降低一位数。结果发现,无论气候如何,PCM均应放在顶层,重点放在南部玻璃较大的区域。同样,对于大多数研究的气候,选择熔融温度为25°C的PCM可使热舒适度显着提高。

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    Campbell Kevin Ryan;

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  • 年度 2011
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