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Diagnosing santa ana winds in Southern California with synoptic-scale analysis

机译:利用天气尺度分析诊断南加州的圣安娜风

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摘要

Santa Ana winds (SAW) are among the most notorious fire-weather conditions in the United States and are implicated in wildfire and wind hazards in Southern California. This study employs large-scale reanalysis data to diagnose SAW through synoptic-scale dynamic and thermodynamic factors using mean sea level pressure gradient and lower-tropospheric temperature advection, respectively. A two-parameter threshold model of these factors exhibits skill in identifying surface-based characteristics of SAWfeaturing strong offshore winds and extreme fire weather as viewed through the Fosberg fire weather index across Remote Automated Weather Stations in southwestern California. These results suggest that a strong northeastward gradient in mean sea level pressure aligned with strong cold-air advection in the lower troposphere provide a simple, yet effective, means of diagnosing SAW from synoptic-scale reanalysis. This objective method may be useful for medium- to extended-range forecasting when mesoscale model output may not be available, as well as being readily applied retrospectively to better understand connections between SAW and wildfires in Southern California.
机译:圣安娜风(SAW)是美国最臭名昭著的火灾天气状况之一,与南加州的野火和风力危害有关。这项研究利用大规模的再分析数据,分别利用平均海平面压力梯度和对流层低温度对流通过天气尺度的动态和热力学因素来诊断声表面波。这些因素的两参数阈值模型显示了识别SAW的表面特征的技能,该特征是通过加利福尼亚西南部偏远自动气象站的Fosberg火灾天气指数来观察的,具有强力的近海风和极端火灾天气。这些结果表明,平均海平面压力向东北的强梯度与对流层下部的强冷空气平流一致,提供了一种简单而有效的从天气尺度再分析中诊断表面声波的方法。当可能无法获得中尺度模型输出时,此客观方法可能对中到扩展范围的预测很有用,并且易于追溯应用以更好地了解南加州SAW与野火之间的联系。

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