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首页> 外文期刊>Mathematical Problems in Engineering >Wind Load Characteristics and Action Mechanism on Internal and External Surfaces of Super-Large Cooling Towers under Wind-Rain Combined Effects
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Wind Load Characteristics and Action Mechanism on Internal and External Surfaces of Super-Large Cooling Towers under Wind-Rain Combined Effects

机译:风雨联合作用下超大型冷却塔内外表面的风荷载特性及作用机理

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摘要

By focusing on wind-rain two-way coupling algorithm, simulation iterations of wind field and raindrops in the world highest cooling tower (210m) in northwest China were carried out using continuous phase and discrete phase models based on CFD numerical simulation. Firstly, influence laws of 9 wind velocity-rainfall intensity combinations on wind-induced rainfall, raindrop additional force, and equivalent pressure coefficient on internal and external surface of the tower body were discussed. On this basis, speed flow line, turbulence energy strength, raindrop running speed, and track on the tower body in the wind-rain coupling field were disclosed. Finally, qualitative and quantitative contrastive analyses on wind pressure, rain pressure, and equivalent pressure coefficient on internal and external surfaces of the tower body were conducted under different working conditions. Thus, the most unfavorable wind-rain combination was identified. Calculation formulas of equivalent internal and external pressure coefficients of super-large cooling towers were fitted from nonlinear least square method. Research results demonstrate that the 3D effect of equivalent internal and external pressure coefficients with considerations to wind-rain two-way coupling is more prominent. Particularly, there is strong transition on the windward region of the external surface and leeside region at bottom of internal surface. The quantity of caught raindrops on the structural surface is negatively related to wind velocity but is positively related to rainfall intensity. Rain load and rainfall coefficients on the external surface are significantly higher than those on the internal surface. Equivalent internal pressure coefficient has a sharp reduction on the leeside region under different working conditions. Besides, equivalent internal pressure coefficient of different meridians decreases with the increase of height. The maximum and minimum are -0.574 and -0.282, respectively. The proposed equivalent internal and external pressure coefficients of super-large cooling tower can predict wind load under extreme climate conditions accurately.
机译:以风雨双向耦合算法为研究对象,基于CFD数值模拟,采用连续相和离散相模型对西北最高的冷却塔(210m)的风场和雨滴进行了仿真迭代。首先,讨论了9种风速-降雨强度组合对风致降雨,雨滴附加力以及塔体内外表面等效压力系数的影响规律。在此基础上,揭示了风雨耦合场中的速度流线,湍流能量强度,雨滴运行速度以及塔体上的轨迹。最后,在不同的工作条件下,对塔身内外表面的风压,雨压和等效压力系数进行了定性和定量的对比分析。因此,确定了最不利的风雨组合。采用非线性最小二乘法拟合了超大型冷却塔等效内外压力系数的计算公式。研究结果表明,考虑风雨双向耦合时,等效内外压力系数的3D效果更为突出。特别地,在外表面的迎风区域和内表面的底部的背风区域存在强烈的过渡。结构表面上捕获的雨滴数量与风速负相关,但与降雨强度正相关。外表面的雨量和降雨系数明显高于内表面的雨量和降雨系数。当量内压系数在不同工况下在背风区域急剧减小。此外,不同子午线的等效内压系数随高度的增加而减小。最大值和最小值分别为-0.574和-0.282。拟议的超大型冷却塔等效内外压力系数可以准确预测极端气候条件下的风荷载。

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  • 来源
    《Mathematical Problems in Engineering》 |2018年第8期|2921709.1-2921709.22|共22页
  • 作者

    Ke Shitang; Yu Wenlin; Ge Yaojun;

  • 作者单位

    Nanjing Univ Aeronaut & Astronaut, Dept Civil Engn, 29 Yudao Rd, Nanjing 210016, Jiangsu, Peoples R China;

    Tongji Univ, State Key Lab Disaster Reduct Civil Engn, 1239 Siping Rd, Shanghai 200092, Peoples R China;

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