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A Reanalysis System for the Generation of Mesoscale Climatographies

机译:中尺度气候学再生成系统

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The use of a mesoscale model-based four-dimensional data assimilation (FDDA) system for generating mesoscale climatographies is demonstrated. This dynamical downscaling method utilizes the fifth-generation Pennsylvania State University-National Centerfor Atmospheric Research Mesoscale Model (MM5), wherein Newtonian relaxation terms in the prognostic equations continually nudge the model solution toward surface and upper-air observations. When applied to a mesoscale climatography, the system is called Climate-FDDA (CFDDA). Here, the CFDDA system is used for downscaling eastern Mediterranean climatographies for January and July. The downscaling method performance is verified by using independent observations of monthly rainfall, Quick Scatterometer (QuikSCAT) ocean-surface winds, gauge rainfall, and hourly winds from near-coastal towers. The focus is on the CFDDA system's ability to represent the frequency distributions of atmospheric states in addition to time means. The verification of the monthlyrainfall climatography shows that CFDDA captures most of the observed spatial and interannual variability, although the model tends to underestimate rainfall amounts over the sea. The frequency distributions of daily rainfall are also accurately diagnosed for various regions of the Levant, except that very light rainfall days and heavy precipitation amounts are overestimated over Lebanon. The verification of the CFDDA against QuikSCAT ocean winds illustrates an excellent general correspondence betweenobserved and modeled winds, although the CFDDA speeds are slightly lower than those observed. Over land, CFDDA- and the ECMWF-derived wind climatographies when compared with mast observations show similar errors related to their inability to properly represent the local orography and coastline. However, the diurnal variability of the winds is better estimated by CFDDA because of its higher horizontal resolution.
机译:演示了使用基于中尺度模型的四维数据同化(FDDA)系统生成中尺度气候。这种动态降尺度方法利用了宾夕法尼亚州立大学-国家大气研究中心的第五代中尺度模型(MM5),其中,预后方程中的牛顿松弛项不断地将模型解推向地面和高空观测。当应用于中尺度气候学时,该系统称为Climate-FDDA(CFDDA)。这里,CFDDA系统用于缩减1月和7月的地中海东部气候。通过使用独立观测的月降雨量,快速散射仪(QuikSCAT)海面风,标距降雨量和来自近海风塔的每小时风来验证缩减方法的性能。重点是CFDDA系统除了表示时间平均值以外,还可以表示大气状态的频率分布。对月降雨量气候学的验证表明,尽管该模型倾向于低估海上的降雨量,但CFDDA捕获了大部分观测到的空间和年际变化。还可以准确地诊断出黎凡特各个地区的每日降雨频率分布,除了在黎巴嫩整个地区高估了非常少的降雨日和大量的降水量。尽管CFDDA速度略低于观测到的风速,但针对QuikSCAT海风的CFDDA验证显示了观察到的风和模型风之间的极好的一般对应关系。在陆地上,与桅杆观测相比,CFDDA和ECMWF派生的风气候显示出类似的误差,这与它们无法正确表示当地地形和海岸线有关。但是,由于CFDDA具有更高的水平分辨率,因此可以更好地估计风的日变化。

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