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Wind-induced internal pressures on large cooling towers

机译:大型冷却塔上的风致内部压力

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摘要

Effects of wind-induced internal pressures on the cooling tower’s structural performances are as significant as those of wind-induced external pressures. However, comparing to wind-induced external pressures, limited research focuses on wind pressures on the internal surfaces of large cooling towers. To fill up the scientific void, numerical analyses, physical model tests, and analytical studies are undertaken in this article. It is demonstrated that the draught ventilation ratio (i.e. the total area of the openings on the stuffing layer divided by the area of the stuffing layer) is the dominant factor for wind-induced internal pressures on large cooling towers, and 15% draught ventilation ratio can be regarded as the most unfavorable case. Besides, it is revealed that the theoretical formulation of the internal pressure on a single-cell building with a dominant opening and background porosity proposed by some other researchers can be applied to the case of a cooling tower subjected to strong winds. Using the validated theoretical formulation, the geometry of a large cooling tower is optimized with regard to the most favorable wind-induced internal pressure. The findings of this article are helpful for improving the current Chinese Code that governs the design of cooling towers.
机译:风引起的内部压力对冷却塔的结构性能的影响与风引起的外部压力的影响一样重要。但是,与风引起的外部压力相比,有限的研究集中在大型冷却塔内表面的风压力上。为了填补科学空白,本文进行了数值分析,物理模型测试和分析研究。结果表明,通风率(即填料层上的开口总面积除以填料层的面积)是导致大型冷却塔上风致内部压力的主要因素,而通风率则为15%可以认为是最不利的情况。此外,还揭示了一些其他研究人员提出的具有主要开口和背景孔隙率的单室建筑物内部压力的理论公式可以应用于强风冷却塔的情况。使用经过验证的理论公式,就最有利的风致内部压力而言,优化了大型冷却塔的几何形状。本文的研究结果有助于改进有关冷却塔设计的现行中国规范。

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