Assessment of Temperature Extremes in China Using RegCM4 and WRF

被引:0
作者
Xianghui Kong
Aihui Wang
Xunqiang Bi
Dan Wang
机构
[1] Chinese Academy of Sciences,Nansen
[2] Chinese Academy of Sciences,Zhu International Research Centre, Institute of Atmospheric Physics
来源
Advances in Atmospheric Sciences | 2019年 / 36卷
关键词
dynamical downscaling; extreme-temperature index; observation; RegCM; WRF; 动力降尺度; 极端气温指数; 观测; RegCM; WRF;
D O I
暂无
中图分类号
学科分类号
摘要
This study assesses the performance of temperature extremes over China in two regional climate models (RCMs), RegCM4 and WRF, driven by the ECMWF’s 20th century reanalysis. Based on the advice of the Expert Team on Climate Change Detection and Indices (ETCCDI), 12 extreme temperature indices (i.e., TXx, TXn, TNx, TNn, TX90p, TN90p, TX10p, TN10p WSDI, ID, FD, and CSDI) are derived from the simulations of two RCMs and compared with those from the daily station-based observational data for the period 1981–2010. Overall, the two RCMs demonstrate satisfactory capability in representing the spatiotemporal distribution of the extreme indices over most regions. RegCM performs better than WRF in reproducing the mean temperature extremes, especially over the Tibetan Plateau (TP). Moreover, both models capture well the decreasing trends in ID, FD, CSDI, TX10p, and TN10p, and the increasing trends in TXx, TXn, TNx, TNn, WSDI, TX90p, and TN90p, over China. Compared with observation, RegCM tends to underestimate the trends of temperature extremes, while WRF tends to overestimate them over the TP. For instance, the linear trends of TXx over the TP from observation, RegCM, and WRF are 0.53°C (10 yr)−1, 0.44°C (10 yr)−1, and 0.75°C (10 yr)−1, respectively. However, WRF performs better than RegCM in reproducing the interannual variability of the extreme-temperature indices. Our findings are helpful towards improving our understanding of the physical realism of RCMs in terms of different time scales, thus enabling us in future work to address the sources of model biases.
引用
收藏
页码:363 / 377
页数:14
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