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Increased Natural Ventilation Flow Rates through Ventilation Shafts

机译:通过通风井增加自然通风流量

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Buoyancy-driven natural ventilation in ventilation shafts is investigated with a small scale physical experiment within a duct and CFD simulations of an office building. For a fixed exhaust opening, smaller shafts lead to higher flow rates in upper floors of a multi-storey building with a shared ventilation shaft. These higher flow rates are caused by increased vertical momentum within the smaller shafts that induce flow through upper floors, an effect referred to as the "ejector effect". In the small scale duct, a 0.5 m by 0.5 m shaft leads to a slight reverse flow of 0.0029 m~3/s through the upper floor. Holding all other parameters constant and reducing the shaft to 0.25 m by 0.5 m leads to a positive flow rate of 0.012 m~3/s through the upper floor. In the CFD simulations of a three storey office building, this same pattern is observed. A 3 m by 2 m shaft leads to a flow rate of 0.0168 m~3/s through the third floor, while the reduced shaft of 2 m by 2 m leads to a flow rate of 0.766 m~3/s through the same floor. This increased airflow rate from the ejector effect can allow natural ventilation to be used in buildings where it may otherwise have been deemed inappropriate. Most airflow network models neglect air momentum and fail to account for the ejector effect. To improve these models, an empirical model is incorporated into the airflow network model CoolVent in a manner easily transferable to most airflow network models.
机译:通风竖井中由浮力驱动的自然通风通过风道内的小型物理实验和办公大楼的CFD模拟进行了研究。对于固定的排气口,较小的竖井会导致带有共用通风竖井的多层建筑物的较高楼层的流量增加。这些较高的流速是由较小的竖井中增加的垂直动量引起的,这些竖井中的动量促使流过上层地板,这种现象称为“喷射器效应”。在小型风管中,0.5 m x 0.5 m的竖井会导致0.0029 m〜3 / s的轻微逆流通过上层地板。保持所有其他参数不变并将井筒的0.25 m减小0.5 m会导致穿过上层的流量为0.012 m〜3 / s。在三层办公楼的CFD模拟中,观察到了相同的模式。 3 m x 2 m的竖井通向第三层的流量为0.0168 m〜3 / s,而减小的2 m x 2 m的竖井通向同一楼层的流量为0.766 m〜3 / s 。由喷射器效应产生的增加的气流速率可以允许在原本可能不合适的建筑物中使用自然通风。大多数气流网络模型会忽略空气动量,并且无法说明喷射器效应。为了改进这些模型,将经验模型以易于转移到大多数气流网络模型的方式并入到气流网络模型CoolVent中。

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