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3-Step dynamical downscaling with empirical correction of sea-surface conditions: application to a CORDEX Africa simulation

机译:三步动态降尺度和海面条件的经验校正:在CORDEX Africa模拟中的应用

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摘要

Dynamical downscaling of climate projections over a limited-area domain using a Regional Climate Model (RCM) requires boundary conditions (BC) from a Coupled Global Climate Model (CGCM) simulation. Biases in CGCM-generated BC can have detrimental effects in RCM simulations, so attempts to improve the BC used to drive the RCM simulations are worth exploring. It is in this context that an empirical method involving the bias correction of the sea-surface conditions (SSCs; sea-surface temperature and sea-ice concentration) simulated by a CGCM has been developed: The 3-step dynamical downscaling approach. The SSCs from a CGCM simulation are empirically corrected and used as lower BC over the ocean for an atmosphere-only global climate model (AGCM) simulation, which in turn provides the atmospheric lateral BC to drive the RCM simulation. We analyse the impact of this strategy on the simulation of the African climate, with a special attention to the West African Monsoon (WAM) precipitation, using the fifth-generation Canadian Regional Climate Model (CRCM5) over the CORDEX-Africa domain. The Earth System Model of the Max-Planck-Institut fur Meteorologie (MPI-ESM-LR) is used as CGCM and a global version of CRCM5 is used as AGCM. The results indicate that the historical climate is much improved, approaching the skill of reanalysis-driven hindcast simulations. The most remarkable effect of this approach is the positive impact on the simulation of all aspects of the WAM precipitation, mainly due to the correction of SSCs. In fact, our results show that proper sea surface temperature (SST) in the Gulf of Guinea is a necessary condition for an adequate simulation of WAM precipitation, especially over the equatorial region of West Africa. It was found that the climate-change projections under RCP4.5 scenario obtained with the 3-step approach are substantially different from those obtained with usual downscaling approach in which the RCM is directly driven by the CGCM output; in the WAM region most of the differences in the projected climate changes came mainly from the empirical correction of SST.
机译:使用区域气候模型(RCM)在有限区域范围内对气候预测进行动态降尺度需要耦合全球气候模型(CGCM)模拟的边界条件(BC)。 CGCM生成的BC中的偏差在RCM仿真中可能具有有害影响,因此,尝试改善用于驱动RCM仿真的BC的尝试值得探讨。在这种情况下,已经开发出了一种经验方法,该方法涉及由CGCM模拟的海面条件(SSC;海面温度和海冰浓度)的偏差校正:3步动态降尺度方法。根据经验校正了CGCM模拟中的SSC,并将其用作海洋上的较低BC,用于仅大气层的全球气候模型(AGCM)模拟,进而提供了大气横向BC来驱动RCM模拟。我们使用CORDEX-Africa区域的第五代加拿大区域气候模型(CRCM5),分析了该策略对模拟非洲气候的影响,并特别关注西非季风(WAM)降水。麦克斯-普朗克气象研究所的地球系统模型(MPI-ESM-LR)被用作CGCM,CRCM5的全局版本被用作AGCM。结果表明,历史气候已大大改善,接近了重新分析驱动的后播模拟技术。这种方法最显着的效果是对WAM降水各方面模拟的积极影响,这主要是由于SSC的校正。实际上,我们的结果表明,几内亚湾的适当海表温度(SST)是对WAM降水进行充分模拟的必要条件,尤其是在西非赤道地区。研究发现,用三步法获得的RCP4.5情景下的气候变化预测与通过常规降尺度法获得的气候变化预测存在显着差异,在常规降尺度方法中,RCM由CGCM输出直接驱动。在WAM地区,预计气候变化的大部分差异主要来自对SST的经验校正。

著录项

  • 来源
    《Climate dynamics》 |2017年第8期|2215-2233|共19页
  • 作者单位

    Univ Quebec, Ctr ESCER Etud Simulat Climat Echelle Reg, Dept Sci Terre & Atmosphere, Succ Ctr Ville,CP 8888, Montreal, PQ H3C 3P8, Canada;

    Univ Quebec, Ctr ESCER Etud Simulat Climat Echelle Reg, Dept Sci Terre & Atmosphere, Succ Ctr Ville,CP 8888, Montreal, PQ H3C 3P8, Canada;

    Univ Quebec, Ctr ESCER Etud Simulat Climat Echelle Reg, Dept Sci Terre & Atmosphere, Succ Ctr Ville,CP 8888, Montreal, PQ H3C 3P8, Canada;

    Univ Quebec, Ctr ESCER Etud Simulat Climat Echelle Reg, Dept Sci Terre & Atmosphere, Succ Ctr Ville,CP 8888, Montreal, PQ H3C 3P8, Canada;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Regional climate modelling; Dynamical downscaling; SST bias correction; West African Monsoon; Africa; CORDEX; CRCM5;

    机译:区域气候模拟;动态降尺度;SST偏差校正;西非季风;非洲;CORDEX;CRCM5;

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