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Multi-dimensional wind vibration coefficients under suction for ultra-large cooling towers considering ventilation rates of louvers

机译:考虑百叶窗通风率的超大型冷却塔吸力多维风振系数

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Currently, the dynamic amplification effect of suction is described using the wind vibration coefficient (WVC) of external loads. In other words, it is proposed that the fluctuating characteristics of suction are equivalent to external loads. This is, however, not generally valid. Meanwhile, the effects of the ventilation rate of louver on suction and its WV are considered. To systematically analyze the effects of the ventilation rate of louver on the multi-dimensional WVC of ultra-large cooling towers under suctions, the 210 m ultra-large cooling tower under construction was studied. First, simultaneous rigid pressure measurement wind tunnel tests were executed to obtain the time history of fluctuating wind loads on the external surface and the internal surface of the cooling tower at different ventilation rates (0%, 15%, 30%, and 100%). Based on that, the average values and distributions of fluctuating wind pressures on external and internal surfaces were obtained and compared with each other; a tower/pillar/circular foundation integrated simulation model was developed using the finite element method and complete transient time domain dynamics of external loads and four different suctions of this cooling tower were calculated. Moreover, 1D, 2D, and 3D distributions of WVCs under external loads and suctions at different ventilation rates were obtained and compared with each other. The WVCs of the cooling tower corresponding to four typical response targets (i.e., radial displacement, meridional force, Von Mises stress, and circumferential bending moment) were discussed. Value determination and 2D evaluation of the WVCs of external loads and suctions of this large cooling tower at different ventilation rates were proposed. This study provides references to precise prediction and value determination of WVC of ultra-large cooling towers.
机译:目前,利用外部载荷的风振系数(WVC)来描述吸力的动态放大效果。换句话说,提出吸力的波动特性等同于外部负载。但是,这通常是无效的。同时,考虑了百叶窗通风速率对吸水率及其水汽比的影响。为了系统分析百叶窗通风率对超大型冷却塔在吸力作用下多维WVC的影响,研究了在建的210 m超大型冷却塔。首先,同时进行刚性压力测量风洞测试,以获取在不同通风率(0%,15%,30%和100%)下冷却塔的外表面和内表面风载荷波动的时间历程。 。在此基础上,求出内外表面风压波动的平均值和分布,并进行比较。使用有限元方法建立了塔/柱/圆形基础综合仿真模型,并计算了该冷却塔的外部载荷和四个不同吸力的完整瞬态时域动力学。此外,获得了在不同通风速率下外部载荷和吸力下的WVC的1D,2D和3D分布,并将它们相互比较。讨论了冷却塔的WVC与四个典型响应目标(即径向位移,子午力,冯·米塞斯应力和周向弯矩)相对应的情况。提出了在不同通风率下该大型冷却塔的外部载荷和吸力的WVC的值确定和二维评估。这项研究为超大型冷却塔水汽浓缩的精确预测和价值确定提供了参考。

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