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首页> 外文期刊>Journal of Applied Meteorology and Climatology >Comparison of Convective Boundary Layer Velocity Spectra Retrieved from Large-Eddy-Simulation and Weather Research and Forecasting Model Data
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Comparison of Convective Boundary Layer Velocity Spectra Retrieved from Large-Eddy-Simulation and Weather Research and Forecasting Model Data

机译:大涡模拟与天气研究反演对流边界层速度谱的比较及预报模型数据

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摘要

As computing capabilities expand, operational and research environments are moving toward the use of finescale atmospheric numerical models. These models are attractive for users who seek an accurate description of small-scale turbulent motions. One such numerical tool is the Weather Research and Forecasting (WRF) model, which has been extensively used in synoptic-scale and mesoscale studies. As finer-resolution simulations become more desirable, it remains a question whether the model features originally designed for the simulation of larger-scale atmospheric flows will translate to adequate reproductions of small-scale motions. In this study, turbulent flow in the dry atmospheric convective boundary layer (CBL) is simulated using a conventional large-eddy-simulation (LES) code and the WRF model applied in an LES mode. The two simulation configurations use almost identical numerical grids and are initialized with the same idealized vertical profiles of wind velocity, temperature, and moisture. Therespective CBL forcings are set equal and held constant. The effects of the CBL wind shear and of the varying grid spacings are investigated. Horizontal slices of velocity fields are analyzed to enable a comparison of CBL flow patterns obtained with each simulation method. Two-dimensional velocity spectra are used to characterize the planar turbulence structure. One-dimensional velocity spectra are also calculated. Results show that the WRF model tends to attribute slightly more energy to larger-scaleflow structures as compared with the CBL structures reproduced by the conventional LES. Consequently, the WRF model reproduces relatively less spatial variability of the velocity fields. Spectra from the WRF model also feature narrower inertial spectralsubranges and indicate enhanced damping of turbulence on small scales.
机译:随着计算能力的扩展,运营和研究环境正在朝着使用精细尺度大气数值模型的方向发展。这些模型对寻求精确描述小规模湍流运动的用户具有吸引力。一种这样的数值工具是天气研究和预报(WRF)模型,该模型已广泛用于天气尺度和中尺度研究。随着更精细的模拟变得越来越理想,最初为模拟较大规模的大气流而设计的模型特征是否将转化为小规模运动的充分再现,这仍然是一个问题。在这项研究中,使用常规的大涡模拟(LES)代码和以LES模式应用的WRF模型模拟了干燥大气对流边界层(CBL)中的湍流。两种模拟配置使用几乎相同的数值网格,并用相同的理想风速,温度和湿度垂直剖面进行初始化。相应的CBL强制设置为相等并保持恒定。研究了CBL风切变和变化的网格间距的影响。分析速度场的水平切片,以便能够比较每种模拟方法获得的CBL流型。二维速度谱用于表征平面湍流结构。还计算了一维速度谱。结果表明,与常规LES再现的CBL结构相比,WRF模型倾向于将更多的能量归因于较大规模的流动结构。因此,WRF模型再现了相对较小的速度场空间变异性。 WRF模型的光谱还具有较窄的惯性光谱子范围,并表明在小范围内增强了湍流阻尼。

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