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Determining the optimum spacing and arrangement for commercial wind towers for ventilation performance

机译:确定商业风塔的通风性能的最佳间距和布置

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摘要

CFD analysis of multiple wind towers located on the same building was performed following validation of a benchmark model against wind tunnel data. The positioning of the wind towers was varied in six different cases, two different arrangements with three different spacing lengths between wind towers. All analysis was compared against the benchmark (isolated) wind tower. The ability of the wind towers, particularly the leeward wind tower, to ventilate the space below was determined for a set occupancy against current guidelines for air supply rates. Furthermore, the effect of the spacing and arrangement on CO2 concentration within rooms ventilated by the leeward wind tower was investigated (re-entry of exhaust air pollutants into fresh supply). It was found that a parallel arrangement of wind towers was not effective for ventilating an occupied volume, regardless of the spacing between the two wind towers when incident wind direction was parallel to the arrangement. The maximum supply rate for the leeward wind tower in parallel arrangement at a spacing of 5 m was just over 50% of the regulation rate (10 L/s/occupant) and 40% of the supply rate of an isolated wind tower. Decreasing the spacing between the parallel wind towers to 3 m further reduces the supply rate to 2.4 L/s/occupant and the device was observed to be operating in reverse (airflow entering from leeward opening). As the angle of wind increased, an improvement of air supply rates was seen. For a staggered arrangement of wind towers, the leeward wind tower was capable of supplying the recommended ventilation rates at all tested spacing lengths. The average indoor CO2 concentration of the space with the leeward wind tower was higher in the parallel arrangement than the staggered arrangement at 0° wind angle. For the parallel arrangement, the average CO2 concentration was 28–50 ppm higher than the outdoor air. The staggered arrangement effectively minimised the re-entry of pollutants, with the indoor CO2 concentration 1–3 ppm higher than the outdoor.
机译:根据风洞数据验证基准模型后,对位于同一建筑物上的多个风塔进行了CFD分析。风塔的位置在六种不同的情况下发生了变化,两种不同的布置在风塔之间具有三种不同的间隔长度。将所有分析与基准(隔离)风塔进行了比较。根据目前的空气供应率准则,确定了风塔(尤其是下风塔)对下面空间通风的能力,以确保其占用空间。此外,还研究了间隔和布置方式对由下风塔通风的房间内CO2浓度的影响(废气污染物重新进入新鲜供应区)。已经发现,当入射风向平行于布置时,平行布置的风塔对通风所占空间无效,而与两个风塔之间的间距无关。以5 m的间隔平行排列的下风式风塔的最大供应率刚好超过调节率的50%(10 L / s /人)和隔离式风塔的供应率的40%。将平行风塔之间的间距减小至3 m进一步将送风速度降低至2.4 L / s /人,并且观察到该设备反向运行(气流从下风口进入)。随着风向角的增加,可以看到空气供应率的提高。对于交错排列的风塔,下风风塔能够在所有测试的间隔长度上提供建议的通风率。在风向为0°的情况下,平行布置的室内风向平均浓度比交错布置的室内高。对于平行布置,平均CO2浓度比室外空气高28–50 ppm。交错的布置有效地减少了污染物的再进入,室内的CO2浓度比室外高1–3 ppm。

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