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首页> 外文期刊>Journal of Wind Engineering and Industrial Aerodynamics: The Journal of the International Association for Wind Engineering >Uncertainty quantification for microscale CFD simulations based on input from mesoscale codes
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Uncertainty quantification for microscale CFD simulations based on input from mesoscale codes

机译:基于Mesoscale代码输入的微观CFD模拟的不确定度量

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摘要

Accurate predictions of wind and dispersion in the atmospheric boundary layer (ABL) can provide essential information to support design and policy decisions for sustainable urban areas. However, computational fluid dynamics (CFD) predictions of the ABL have several sources of uncertainty that can affect the results. An important uncertainty is the definition of the inflow boundary condition, which is influenced by larger scale weather phenomena. In this paper, we propose a method to quantify the effect of uncertainty in the inflow boundary conditions using input from an ensemble of mesoscale simulations. The mesoscale mean velocity and turbulent kinetic energy at the inflow of the CFD domain are used to define probability density functions for the uncertain wind direction and magnitude. A non-intrusive method is used to propagate these uncertainties to the quantities of interest. The methodology is applied to two different cases for which field experimental data are available: the Askervein hill and the Joint Urban 2003 measurements. For the latter case, the results are similar to those of a previous study that characterized the uncertain input parameters based on measurements. Hence, the results show that the proposed mesoscale simulation-based approach provides a valuable alternative in absence of sufficient measurement data.
机译:大气边界层(ABL)中的风和色散准确预测可以提供支持可持续城市地区的设计和政策决策的基本信息。然而,ABL的计算流体动力学(CFD)预测具有可能影响结果的几个不确定性源。一个重要的不确定性是流入边界条件的定义,受更大规模天气现象的影响。在本文中,我们提出了一种方法来量化使用Messcale模拟的集合的输入来量化不确定性在流入边界条件中的效果。在CFD域流入的中尺度平均速度和湍流动能用于定义不确定风向和幅度的概率密度函数。非侵入式方法用于将这些不确定性传播到感兴趣的数量。该方法应用于两个不同的情况下,现场实验数据可用:Askeryin Hill和32003联合测量。对于后一种情况,结果类似于先前研究的研究,其特征在于基于测量的不确定输入参数。因此,结果表明,在没有足够的测量数据的情况下,所提出的基于Mescale仿真的方法提供了有价值的替代方案。

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