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首页> 外文期刊>Journal of Fire Sciences >Scale modeling studies on stack effect in tall vertical shafts
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Scale modeling studies on stack effect in tall vertical shafts

机译:高竖井烟囱效应的尺度模型研究

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Natural ventilation was provided by tall vertical shafts such as solar chimney while designing some green buildings. For buildings with a tall vertical shaft located in very cold countries, measured pressure difference due to stack effect was up to 300 Pa. Air motion induced by stack effect would give adequate ventilation flow rate. However, stack effect would also give adverse effect if not utilized properly in this green design. Smoke would spread faster to other parts of the building in an accidental fire. Therefore, estimations of stack pressure by simple hydrostatic equation used to be criticized in performance-based design. Further studies are required and will be justified by scale model experiments in this article. Stack effect in a vertical shaft was studied experimentally by a model shaft of size 0.05 × 0.05 m~2 and height 2.0 m. Air temperature inside the model was kept at constant values above outdoor by wounding hot electric wires. Vertical air temperature profiles inside and outside of the model at different heights were measured. Measured air pressure difference profiles between indoor and outdoor were then compared with those estimated from the air temperature difference. Results were then applied to justify stack pressure estimations by the hydrostatic models. From this study, hydrostatic equations are confirmed to be acceptable for studying stack pressure in tall vertical shafts.
机译:设计一些绿色建筑时,高高的竖井(例如太阳能烟囱)提供了自然通风。对于在非常寒冷的国家/地区中竖轴很高的建筑物,由于烟囱效应而导致的测得压差高达300 Pa。烟囱效应引起的空气运动将提供足够的通风流量。但是,如果在这种绿色设计中使用不当,堆叠效应也会产生不利影响。在意外火灾中,烟雾会更快地传播到建筑物的其他部分。因此,在基于性能的设计中,通常会批评通过简单的静水力方程估算烟囱压力。本文需要进行进一步的研究,并将通过规模模型实验加以证明。通过尺寸为0.05×0.05 m〜2且高度为2.0 m的模型轴实验研究了竖井中的堆叠效应。通过缠绕热电线,模型内部的空气温度保持在高于室外的恒定值。测量了模型内部和外部在不同高度的垂直空气温度曲线。然后将测得的室内和室外之间的气压差曲线与根据气温差估算出的气压差曲线进行比较。然后将结果应用于通过静水压力模型证明烟囱压力估算的合理性。通过这项研究,流体静力学方程被证实对于研究高竖井中的烟囱压力是可接受的。

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