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DOI | 10.5194/acp-18-17529-2018 |
Quantifying uncertainty from aerosol and atmospheric parameters and their impact on climate sensitivity | |
Fletcher, Christopher G.1; Kravitz, Ben2; Badawy, Bakr1,3 | |
2018-12-11 | |
发表期刊 | ATMOSPHERIC CHEMISTRY AND PHYSICS
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ISSN | 1680-7316 |
EISSN | 1680-7324 |
出版年 | 2018 |
卷号 | 18期号:23页码:17529-17543 |
文章类型 | Article |
语种 | 英语 |
国家 | Canada; USA |
英文摘要 | Climate sensitivity in Earth system models (ESMs) is an emergent property that is affected by structural (missing or inaccurate model physics) and parametric (variations in model parameters) uncertainty. This work provides the first quantitative assessment of the role of compensation between uncertainties in aerosol forcing and atmospheric parameters, and their impact on the climate sensitivity of the Community Atmosphere Model, Version 4 (CAM4). Running the model with prescribed ocean and ice conditions, we perturb four parameters related to sulfate and black carbon aerosol radiative forcing and distribution, as well as five atmospheric parameters related to clouds, convection, and radiative flux. In this experimental setup where aerosols do not affect the properties of clouds, the atmospheric parameters explain the majority of variance in climate sensitivity, with two parameters being the most important: one controlling low cloud amount, and one controlling the timescale for deep convection. Although the aerosol parameters strongly affect aerosol optical depth, their impacts on climate sensitivity are substantially weaker than the impacts of the atmospheric parameters, but this result may depend on whether aerosol-cloud interactions are simulated. Based on comparisons to inter-model spread of other ESMs, we conclude that structural uncertainties in this configuration of CAM4 likely contribute 3 times more to uncertainty in climate sensitivity than parametric uncertainties. We provide several parameter sets that could provide plausible (measured by a skill score) configurations of CAM4, but with different sulfate aerosol radiative forcing, black carbon radiative forcing, and climate sensitivity. |
领域 | 地球科学 |
收录类别 | SCI-E |
WOS记录号 | WOS:000452770900005 |
WOS关键词 | BLACK CARBON ; MODEL ; VARIABILITY ; CIRCULATION ; SIMULATION ; FEEDBACK ; SPREAD |
WOS类目 | Environmental Sciences ; Meteorology & Atmospheric Sciences |
WOS研究方向 | Environmental Sciences & Ecology ; Meteorology & Atmospheric Sciences |
引用统计 | |
文献类型 | 期刊论文 |
条目标识符 | http://119.78.100.173/C666/handle/2XK7JSWQ/30399 |
专题 | 地球科学 |
作者单位 | 1.Univ Waterloo, Dept Geog & Environm Management, Waterloo, ON, Canada; 2.Pacific Northwest Natl Lab, Atmospher Sci & Global Change Div, Richland, WA USA; 3.Environm & Climate Change Canada, Dorval, PQ, Canada |
推荐引用方式 GB/T 7714 | Fletcher, Christopher G.,Kravitz, Ben,Badawy, Bakr. Quantifying uncertainty from aerosol and atmospheric parameters and their impact on climate sensitivity[J]. ATMOSPHERIC CHEMISTRY AND PHYSICS,2018,18(23):17529-17543. |
APA | Fletcher, Christopher G.,Kravitz, Ben,&Badawy, Bakr.(2018).Quantifying uncertainty from aerosol and atmospheric parameters and their impact on climate sensitivity.ATMOSPHERIC CHEMISTRY AND PHYSICS,18(23),17529-17543. |
MLA | Fletcher, Christopher G.,et al."Quantifying uncertainty from aerosol and atmospheric parameters and their impact on climate sensitivity".ATMOSPHERIC CHEMISTRY AND PHYSICS 18.23(2018):17529-17543. |
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