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A statistical approach to downscaling of sub-daily extreme rainfall processes for climate-related impact studies in urban areas

机译:减少次日极端降雨过程规模的统计方法,用于城市地区与气候相关的影响研究

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摘要

This paper presents a spatial-temporal downscaling approach to describe the linkage between large-scale climate variables for daily scale to annual maximum (AM) precipitations for daily and sub-daily scales at a local site. More specifically, the proposed approach is based on a combination of a spatial downscaling method to link large-scale climate variables as provided by General Circulation Model (GCM) simulations with daily extreme precipitations at a local site and a temporal, downscaling procedure to describe the relationships between daily extreme precipitations with sub-daily extreme precipitations using the scaling General Extreme Value (GEV) distribution. The feasibility of the proposed downscaling method has been tested based on climate simulation outputs from two GCMs under the A2 scenario (HadCM3A2 and CGCM2A2) and using available AM precipitation data for durations ranging from 5 minutes to 1 day at 15 raingage stations in Quebec (Canada) for the 1961 -1990 period. Results of this numerical application has indicated that it is feasible to link large-scale climate predictors for daily scale given by GCM simulation outputs with daily and sub-daily AM precipitations at a local site. Furthermore, it was found that AM precipitations at a local site downscaled from the HadCM3A2 displayed a small change in the future, while those values estimated from the CGCM2A2 indicated a large increasing trend for future periods.
机译:本文提出了一种时空缩减方法,以描述当地规模的日尺度大规模气候变量与日尺度和次日尺度的年最大降水量之间的联系。更具体地说,所提出的方法是基于空间降尺度方法的组合,该方法将通用循环模型(GCM)模拟提供的大规模气候变量与本地站点的每日极端降水联系在一起,并通过时间降尺度程序来描述使用标度的一般极端值(GEV)分布,得出每日极端降水与次日极端降水之间的关系。根据两个ACM情景(HadCM3A2和CGCM2A2)上的GCM的气候模拟输出,并使用可用的AM降水数据,在魁北克(加拿大)的15个集雨站进行了从5分钟到1天的持续时间从5分钟到1天的测试,测试了所建议的降尺度方法的可行性)的1961 -1990年期间。该数值应用的结果表明,将由GCM模拟输出给出的每日尺度的大型气候预测因子与本地站点的每日和次日AM降水量联系起来是可行的。此外,发现从HadCM3A2降尺度后的本地站点的AM降水在将来显示出很小的变化,而从CGCM2A2估计的那些值表明未来时期的增长趋势很大。

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