A physical metric-based framework for evaluating the climate trade-off between CO2 and contrails-The case of lowering aircraft flight trajectories

被引:13
作者
Deuber, Odette [1 ]
Matthes, Sigrun [1 ]
Sausen, Robert [1 ]
Ponater, Michael [1 ]
Lim, Ling [2 ]
机构
[1] Deutsch Zentrum Luft & Raumfahrt DLR, Inst Phys Atmosphare, D-82234 Oberpfaffenhofen, Germany
[2] Manchester Metropolitan Univ, Sch Sci & Environm, Dalton Res Inst, Manchester M1 5GD, Lancs, England
关键词
Aviation; Climate change; Trade-off; Metrics; Linear contrails; Simple climate model; GLOBAL DISTRIBUTION; CRUISE ALTITUDE; EMISSIONS; AVIATION; IMPACT; ATMOSPHERE; STABILIZATION;
D O I
10.1016/j.envsci.2012.10.004
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Aviation climate impact is composed of short- and long-lived climate effects. When evaluating mitigation options, policy design requires to consider trade-offs apparent under different metric options. We present an evaluation framework to demonstrate the impact of individual physical metric choices on the preferred mitigation strategy, using the example of a generic trade-off situation in aviation. The concept of a turning point is established, which indicates the point in time where the mitigation of a short-term effect (e.g. line-shaped contrails) at the expense of a counteracting long-term effect (e.g. carbon dioxide) becomes preferable. In our generic situation, some physical metrics (e.g. average metrics, physical cost-benefit metrics) are better suited than others to trade off short- and long-lived climate effects for obtaining a robust policy recommendation. The preferred mitigation strategy depends particularly on the evaluation horizon, over which climate impacts are to be minimised (cost-benefit approach) and the selected aviation emission type (pulse, sustained, scenario). At any stage, value judgement must guide the required policy decision on metric options. Including contrail cirrus in the assessment, however, has the potential to dominate the policy recommendation in favour of contrail mitigation so that normative decisions become secondary. (C) 2012 Elsevier Ltd. All rights reserved.
引用
收藏
页码:176 / 185
页数:10
相关论文
共 47 条
[1]  
[Anonymous], OIL INF 2006
[2]   Valuing the non-CO2 climate impacts of aviation [J].
Azar, Christian ;
Johansson, Daniel J. A. .
CLIMATIC CHANGE, 2012, 111 (3-4) :559-579
[3]   Climate trade-off between black carbon and carbon dioxide emissions [J].
Boucher, O. ;
Reddy, M. S. .
ENERGY POLICY, 2008, 36 (01) :193-200
[4]  
Burkhardt U, 2011, NAT CLIM CHANGE, V1, P54, DOI [10.1038/NCLIMATE1068, 10.1038/nclimate1068]
[5]   Metric for Comparing Lifetime Average Climate Impact of Aircraft [J].
Dallara, Emily Schwartz ;
Kroo, Ilan M. ;
Waitz, Ian A. .
AIAA JOURNAL, 2011, 49 (08) :1600-1613
[6]   Estimating the climate and air quality benefits of aviation fuel and emissions reductions [J].
Dorbian, Christopher S. ;
Wolfe, Philip J. ;
Waitz, Ian A. .
ATMOSPHERIC ENVIRONMENT, 2011, 45 (16) :2750-2759
[7]  
Edenhofer O., 2012, PHYSICOECONOMI UNPUB
[8]  
Egelhofer R., 2009, AIRCRAFT DESIGN DRIV
[9]   The impact of cruise altitude on contrails and related radiative forcing [J].
Fichter, C ;
Marquart, S ;
Sausen, R ;
Lee, DS .
METEOROLOGISCHE ZEITSCHRIFT, 2005, 14 (04) :563-572
[10]   Cruise altitude flexibility of jet transport aircraft [J].
Filippone, Antonio .
AEROSPACE SCIENCE AND TECHNOLOGY, 2010, 14 (04) :283-294