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Empirical downscaling of daily minimum air temperature at very fine resolutions in complex terrain

机译:在复杂地形中以极精细的分辨率对每日最低气温进行经验缩减

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Available air temperature models do not adequately account for the influence of terrain on nocturnal air temperatures. An empirical model for night time air temperatures was developed using a network of one hundred and forty inexpensive temperature sensors deployed across the Bitterroot National Forest, Montana. A principle component analysis (PCA) on minimum temperatures showed that 98% of the spatiotemporal variability could be accounted for using the first two modes which described the coupling and decoupling of surface temperature from free air temperatures, respectively. The spatial character of these modes were strongly correlated with terrain variables and were then modeled to topographic variables derived from a 30 m digital elevation model. PCA scores were modeled using independent predictors from in situ observations and regional reanalysis that incorporate temperature, solar radiation and relative humidity. By applying modeled PC scores back to predicted loading surfaces, nighttime minimum temperatures were predicted at fine spatial resolution (30 m) for novel locations across a broad (similar to 45,000 km(2)), topographically complex landscape. Our results suggest that this modeling approach can be used with retrospective and projected predictors to model fine scale temperature variation across time in regions of complex terrain
机译:可用的空气温度模型不能充分考虑地形对夜间空气温度的影响。利用分布在蒙大拿州Bitterroot国家森林中的一百四十个便宜的温度传感器网络,开发了夜间空气温度的经验模型。最低温度的主成分分析(PCA)表明,使用前两种模式可以解释98%的时空变化,这两种模式分别描述了表面温度与自由空气温度的耦合和去耦合。这些模式的空间特征与地形变量密切相关,然后被建模为源自30 m数字高程模型的地形变量。 PCA评分采用来自原位观察和区域再分析(包括温度,太阳辐射和相对湿度)的独立预测变量进行建模。通过将建模的PC分数应用回预测的载荷表面,可以在宽广的地形(类似于45,000 km(2))上以新颖的位置,以精细的空间分辨率(30 m)预测夜间最低温度。我们的结果表明,该建模方法可以与回顾性和预测性预测器一起使用,以模拟复杂地形区域中随时间变化的精细尺度温度变化。

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