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Study of microburst-induced wind flow and its effects on cube-shaped buildings using numerical and experimental simulations of an impinging jet

机译:利用冲击射流的数值和实验模拟研究微爆诱发的风流及其对立方体形建筑物的影响

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摘要

Microbursts are a major cause of concern for structures both on ground as well as those in air, namely aircrafts. The velocity profile of a microburst is completely different compared to natural boundary-layer wind profiles. The current research is directed to simulation of microburst phenomenon using an impinging jet model. This research reports the first 3D numerical simulation of microbursts and its effects on buildings. Broadly the major accomplishments of the current research can be focused in three major directions.;In the first case, extensive research on velocity profiles of the wall jet that is formed after jet impingement has been conducted experimentally. The main motivation was to develop empirical equations for boundary layer growth based on experimental data, using hot-wire, PIV and pressure rake. Numerical simulations were carried out with different turbulence models so as to find the best turbulence model to simulate this kind of flow.;In the second case, both mean and peak loads on building models under static microburst wind loadings were studied, using both experimental as well as numerical techniques. Parametric study by varying the height of jet impingement, jet exit velocities and size of building models was conducted. It was found that the large eddy simulation (LES) produced results in excellent agreement with the experimental data. The flow field around the building model was obtained using PIV and comparisons were made with the LES results.;Thirdly, and the most important part of this research work was to simulate a translating microburst and study the loads on buildings using a moving impinging jet. Numerical simulation was validated with the experimental data for one jet translation speed. LES results again matched the experimental data for translating microburst loads on building, with reference to the drag and lift coefficients. The peak loads predicted by LES were within experimental limits. Effects of increased jet translation speeds on the peak loads on building were studied using numerical simulation. It was also found that the drag on building increased monotonically with increase in jet translation speeds, although the lift did not increase significantly. Microburst can produce loads on buildings equivalent to that generated by an F2 tornado.
机译:对于地面和空中结构,即飞机,微爆是引起关注的主要原因。与自然边界层风廓线相比,微暴的速度廓线完全不同。当前的研究针对使用冲击射流模型模拟微爆现象。这项研究报告了微爆及其对建筑物影响的第一个3D数值模拟。目前研究的主要成就大致可以集中在三个主要方面。首先,对射流撞击后壁射流的速度分布进行了广泛的研究。主要动机是基于实验数据,使用热线,PIV和压力耙来开发边界层生长的经验方程。对不同的湍流模型进行了数值模拟,从而找到了最佳的湍流模型来模拟这种流动。第二种情况下,研究了静态微爆风荷载下建筑模型的平均荷载和峰值荷载,并通过实验以及数值技术。通过改变射流冲击的高度,射流出口速度和建筑模型的大小进行了参数研究。发现大涡模拟(LES)产生的结果与实验数据非常吻合。第三,本研究工作的最重要部分是模拟平移微爆裂,并使用移动撞击射流研究建筑物上的载荷,这是该研究工作中最重要的部分。数值模拟通过实验数据验证了一种射流平移速度。 LES的结果再次结合了阻力和升力系数,与平移建筑物微爆破载荷的实验数据相匹配。 LES预测的峰值负荷在实验范围内。使用数值模拟研究了射流平移速度增加对建筑物峰值载荷的影响。还发现,尽管升力没有明显增加,但建筑物的阻力却随着射流平移速度的增加而单调增加。微爆可以在建筑物上产生与F2龙卷风产生的载荷相当的载荷。

著录项

  • 作者

    Sengupta, Anindya;

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  • 年度 2007
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  • 原文格式 PDF
  • 正文语种 en
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