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Three-dimensional effects of an air curtain used to restrict cold room infiltration

机译:用于限制冷室渗透的气幕的三维效果

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The aim of this study was to compare the measured effectiveness of an air curtain device at different jet velocities against a three-dimensional (3-D) computational fluid dynamics (CFD) model. The air curtain device was not as wide as the entrance and had a geometry that encouraged 3-D flow. By carefully setting up the air curtain an effectiveness of 0.71 was achieved compared to the initial value of only 0.31 as set by the air curtain device installer. The 3-D CFD model predicted the infiltration through the entrance with no air curtain to an accuracy of within 20-32%. The predicted effectiveness, E, of the air curtain at different jet velocities was 0.10-0.15 lower than measured. The shape of the effectiveness curve against jet velocity was well predicted. CFD has shown that the flow from this air curtain cannot be considered as 2-D. The central part of the jet is deflected away from the cold store by the Coanda effect caused by the air curtain device's fan body. The edges of the jet are deflected into the cold store by the stack pressures and turn into the void caused by the deflected central jet.
机译:这项研究的目的是针对三维(3-D)计算流体动力学(CFD)模型,比较在不同射流速度下测得的气幕装置的有效性。气幕装置不如入口宽,其几何形状可促进3-D流动。通过仔细设置气幕,与由气幕设备安装程序设置的初始值0.31相比,获得了0.71的效率。 3-D CFD模型预测在没有气幕的情况下通过入口的渗透率达到20-32%的精度。在不同的喷射速度下,气幕的预测效果E比测量值低0.10-0.15。相对于射流速度的效果曲线的形状得到了很好的预测。 CFD已显示,来自该气幕的流量不能视为二维。由于空气幕装置的风扇主体引起的柯恩达效应,射流的中心部分偏离冷库。射流的边缘在烟囱压力的作用下偏转进入冷库,并转变为由偏转的中心射流引起的空隙。

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