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Investigation of thermal indoor climate for a passive house in a sub-Arctic region using computational fluid dynamics

机译:利用计算流体力学研究亚北极地区被动房屋的室内热气候

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There is currently an increasing trend in Europe to build passive houses. In order to reduce the cost of installation, an air-heating system may be an interesting alternative. Heat supplied through ventilation ducts located at the ceiling was studied with computational fluid dynamics technique. The purpose was to illustrate the thermal indoor climate of the building. To validate the performed simulations, measurements were carried out in several rooms of the building. Furthermore, this study investigated if a designed passive house located above the Arctic Circle could fulfil heat requirements for a Swedish passive house standard. Our results show a heat loss factor of 18.8 W/m(2) floor area and an annual specific energy use of 67.9 kWh/m(2) floor area, would fulfils the criteria. Validation of simulations through measurements shows good agreement with simulations if the thermal inertia of the building was considered. Calculation of heat losses from a building with a backward weighted moving average outdoor temperature produced correct prediction of the heat losses. To describe the indoor thermal climate correctly, the entire volume needs to be considered, not only one point, which normally is obtained with building simulation software. The supply airflow must carefully be considered to fulfil a good indoor climate.
机译:目前,欧洲建造被动房屋的趋势正在增加。为了减少安装成本,空气加热系统可能是一个有趣的选择。通过计算流体动力学技术研究了通过位于天花板上的通风管道提供的热量。目的是说明建筑物的室内热气候。为了验证执行的模拟,在建筑物的多个房间中进行了测量。此外,本研究调查了位于北极圈上方的被动式房屋是否可以满足瑞典被动式房屋标准的热量要求。我们的结果表明,热损耗因子为18.8 W / m(2)占地面积,年比能耗为67.9 kWh / m(2)占地面积,将满足该标准。如果考虑建筑物的热惯性,则通过测量验证模拟结果与模​​拟结果吻合良好。通过向后加权移动平均室外温度计算建筑物的热损失,可以正确预测热损失。为了正确地描述室内热气候,需要考虑整个体积,而不仅仅是一个点,这通常是通过建筑模拟软件获得的。必须仔细考虑供应气流,以达到良好的室内气候。

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