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Detailed measured air speed distribution in four commercial buildings with ceiling fans

机译:详细测量了四个商业建筑的空气速度分布,天花板风扇

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The layout of ceiling fans in buildings is challenging because of the need to co-ordinate with other elements in the ceiling space, and because the resulting airflows within the occupied space interact with furniture. This study conducted detailed air speed measurements in four buildings with different room sizes, furniture configurations, ceiling fan types, and ceiling-fan-to-floor-area ratios. We measured air speeds across the occupied spaces at four heights while varying ceiling fan operation modes such as fan rotational speed, operating direction, and the number of operating fans. In total, we collected 207,080 air speed samples at 343 sites under 20 test conditions. This paper presents the magnitude and distribution of air speeds, cooling effects, and their influencing factors. The Airspeed Coverage Index (ACI = Fan air speed (SF) x Fan diameter (D)/root Average area served per ceiling fan (A) describes the combined effects of multiple influencing factors on the magnitude of air speed. ACI is employed to predict the average air speed and occupant cooling effect, yielding regression confidences higher than 0.95. When designing a space to a target airspeed or cooling effect, the ACI can help to determine parameters such as fan density required for fan choices. The measured data are compared with predictions from the CBE fan tool that had been developed from laboratory tests under simplified conditions. The comparison displays the blocking effects of the furniture, lowering the average air movement in the space, as well as reducing the air movement at the ankle level while increasing it at higher heights. The blocking effect increases with the density of the furniture. We also visually present fan interactions in which triplets of fans are arranged linearly or diagonally, showing that the diagonal layout of ceiling fans increases average air speed and improves its uniformity.
机译:由于需要在天花板空间中的其他元素协调,并且由于所占用空间内的所有空气流与家具互动,因此建筑物的吊顶粉丝布局是挑战的。本研究在具有不同室内尺寸,家具配置,吊扇类型和天花板到地板面积比的四个建筑中进行了详细的空气速度测量。我们在四个高度上测量空气速度,同时改变吊扇操作模式,例如风扇转速,操作方向和操作风扇的数量。总共在20个测试条件下在343个位点收集了207,080个空气速度样本。本文介绍了空气速度,冷却效果及其影响因素的幅度和分布。空速覆盖率指数(ACI =风扇空气速度(SF)X扇形直径(D)/根平均面积/每凸起风扇(A)提供了多种影响因素对空气速度大小的综合影响。ACI用于预测平均空气速度和乘员冷却效果,产生高于0.95的回归信心。在将空间设计为目标空速或冷却效果时,ACI可以帮助确定风扇选择所需的扇形密度等参数。测量数据比较从简化条件下从实验室测试开发的CBE风扇工具的预测。比较显示家具的阻挡效果,降低空间中的平均空气运动,以及在增加时减少脚踝水平的空气运动高度较高。阻挡效果随着家具的密度而增加。我们还视觉上存在风扇相互作用,其中风扇的三胞胎线性地或D IAGONALLY,表示天花板风扇的对角线布局增加了平均空气速度并提高了其均匀性。

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