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Reduced Complexity Model Intercomparison Project Phase 1: introduction and evaluation of global-mean temperature response

机译:减少复杂性模型互相项目第1期:全球平均温度响应的引入和评估

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Reduced-complexity climate models (RCMs) are critical in the policy and decision making space, and are directly used within multiple Intergovernmental Panel on Climate Change (IPCC) reports to complement the results of more comprehensive Earth system models. To date, evaluation of RCMs has been limited to a few independent studies. Here we introduce a systematic evaluation of RCMs in the form of the Reduced Complexity Model Intercomparison Project (RCMIP). We expect RCMIP will extend over multiple phases, with Phase 1 being the first. In Phase 1, we focus on the RCMs' global-mean temperature responses, comparing them to observations, exploring the extent to which they emulate more complex models and considering how the relationship between temperature and cumulative emissions of CO2 varies across the RCMs. Our work uses experiments which mirror those found in the Coupled Model Intercomparison Project (CMIP), which focuses on complex Earth system and atmosphere–ocean general circulation models. Using both scenario-based and idealised experiments, we examine RCMs' global-mean temperature response under a range of forcings. We find that the RCMs can all reproduce the approximately 1°C of warming since pre-industrial times, with varying representations of natural variability, volcanic eruptions and aerosols. We also find that RCMs can emulate the global-mean temperature response of CMIP models to within a root-mean-square error of 0.2°C over a range of experiments. Furthermore, we find that, for the Representative Concentration Pathway (RCP) and Shared Socioeconomic Pathway (SSP)-based scenario pairs that share the same IPCC Fifth Assessment Report (AR5)-consistent stratospheric-adjusted radiative forcing, the RCMs indicate higher effective radiative forcings for the SSP-based scenarios and correspondingly higher temperatures when run with the same climate settings. In our idealised setup of RCMs with a climate sensitivity of 3°C, the difference for the ssp585–rcp85 pair by 2100 is around 0.23°C(±0.12°C) due to a difference in effective radiative forcings between the two scenarios. Phase 1 demonstrates the utility of RCMIP's open-source infrastructure, paving the way for further phases of RCMIP to build on the research presented here and deepen our understanding of RCMs.
机译:减少复杂性气候模型(RCMS)在政策和决策空间中至关重要,并直接在多个政府间议会上使用的气候变化(IPCC)报告,以补充更全面的地球系统模型的结果。迄今为止,RCMS的评估仅限于一些独立研究。在这里,我们在减少复杂性模型互通项目(RCMIP)的形式中介绍了RCMS的系统评估。我们预计RCMIP将在多个阶段延伸,第1阶段是第一个阶段。在第1阶段,我们专注于RCMS的全局平均温度响应,将它们与观察结果进行比较,探索它们模拟更复杂的模型的程度,并考虑到CO2的温度和累积排放之间的关系在RCM上变化。我们的工作使用实验,该实验镜像在耦合模型互联项目(CMIP)中的那些,该项目侧重于复杂的地球系统和大气海洋一般循环模型。使用基于方案和理想化的实验,我们在一系列强制下检查RCMS的全球平均温度响应。我们发现RCMS均可以前的预工业时间重现大约1°C的变暖,不同的自然变异性,火山爆发和气溶胶。我们发现RCMS可以在一系列实验中模拟CMIP模型的全球平均温度响应0.2°C的根均方误差。此外,我们发现,对于代表浓度途径(RCP)和共享的社会经济途径(SSP),基于相同的IPCC第五评估报告(AR5)的基础方案对 - 应对划分的辐射强制,RCMS表示更高的有效辐射使用相同的气候环境运行时,对基于SSP的场景和相应的较高温度的强制。在我们与3℃的气候敏感性的RCM的理想化设置,由2100为ssp585-rcp85对的差为0.23左右℃(±0.12℃)由于在两种情况之间的有效辐射强迫的差。第1阶段演示了RCMIP的开源基础设施的效用,为RCMIP的进一步阶段铺平了rcMIP阶段的方式,以建立在此处的研究中,加深了我们对RCM的理解。
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