Beyond Contrail Avoidance: Efficacy of Flight Altitude Changes to Minimise Contrail Climate Forcing

<b>:</b> Contrail cirrus introduce a short-lived but significant climate forcing that could be mitigated by small changes in aircraft cruising altitudes. This paper extends a recent study to evaluate the efficacy of several vertical flight diversion strategies to mitigate contrail climat...

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Main Authors: Roger Teoh, Ulrich Schumann, Marc E. J. Stettler
Format: Article
Language:English
Published: MDPI AG 2020-08-01
Series:Aerospace
Subjects:
Online Access:https://www.mdpi.com/2226-4310/7/9/121
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spelling doaj-b6e44e691d8b4af185e0e1134704fef92020-11-25T03:39:21ZengMDPI AGAerospace2226-43102020-08-01712112110.3390/aerospace7090121Beyond Contrail Avoidance: Efficacy of Flight Altitude Changes to Minimise Contrail Climate ForcingRoger Teoh0Ulrich Schumann1Marc E. J. Stettler2Centre for Transport Studies, Department of Civil and Environmental Engineering, Imperial College London, London SW7 2AZ, UKInstitute of Atmospheric Physics, Deutsches Zentrum für Luft- und Raumfahrt, 82234 Oberpfaffenhofen, GermanyCentre for Transport Studies, Department of Civil and Environmental Engineering, Imperial College London, London SW7 2AZ, UK<b>:</b> Contrail cirrus introduce a short-lived but significant climate forcing that could be mitigated by small changes in aircraft cruising altitudes. This paper extends a recent study to evaluate the efficacy of several vertical flight diversion strategies to mitigate contrail climate forcing, and estimates impacts to air traffic management (ATM). We use six one-week periods of flight track data in the airspace above Japan (between May 2012 and March 2013), and simulate contrails using the contrail cirrus prediction model (CoCiP). Previous studies have predominantly optimised a diversion of every contrail-forming flight to minimise its formation or radiative forcing. However, our results show that these strategies produce a suboptimal outcome because most contrails have a short lifetime, and some have a cooling effect. Instead, a strategy that reroutes 15.3% of flights to avoid long-lived warming contrails, while allowing for cooling contrails, reduces the contrail energy forcing (EF<sub>contrail</sub>) by 105% [91.8, 125%] with a total fuel penalty of 0.70% [0.66, 0.73%]. A minimum EF<sub>total</sub> strategy (contrails + CO<sub>2</sub>), diverting 20.1% of flights, reduces the EF<sub>contrail</sub> by the same magnitude but also reduces the total fuel consumption by 0.40% [0.31, 0.47%]. For the diversion strategies explored, between 9% and 14% of diversions lead to a loss of separation standards between flights, demonstrating a modest scale of ATM impacts. These results show that small changes in flight altitudes are an opportunity for aviation to significantly and rapidly reduce its effect on the climate.https://www.mdpi.com/2226-4310/7/9/121aviationcontrail cirrusclimate forcingmitigationair traffic management
collection DOAJ
language English
format Article
sources DOAJ
author Roger Teoh
Ulrich Schumann
Marc E. J. Stettler
spellingShingle Roger Teoh
Ulrich Schumann
Marc E. J. Stettler
Beyond Contrail Avoidance: Efficacy of Flight Altitude Changes to Minimise Contrail Climate Forcing
Aerospace
aviation
contrail cirrus
climate forcing
mitigation
air traffic management
author_facet Roger Teoh
Ulrich Schumann
Marc E. J. Stettler
author_sort Roger Teoh
title Beyond Contrail Avoidance: Efficacy of Flight Altitude Changes to Minimise Contrail Climate Forcing
title_short Beyond Contrail Avoidance: Efficacy of Flight Altitude Changes to Minimise Contrail Climate Forcing
title_full Beyond Contrail Avoidance: Efficacy of Flight Altitude Changes to Minimise Contrail Climate Forcing
title_fullStr Beyond Contrail Avoidance: Efficacy of Flight Altitude Changes to Minimise Contrail Climate Forcing
title_full_unstemmed Beyond Contrail Avoidance: Efficacy of Flight Altitude Changes to Minimise Contrail Climate Forcing
title_sort beyond contrail avoidance: efficacy of flight altitude changes to minimise contrail climate forcing
publisher MDPI AG
series Aerospace
issn 2226-4310
publishDate 2020-08-01
description <b>:</b> Contrail cirrus introduce a short-lived but significant climate forcing that could be mitigated by small changes in aircraft cruising altitudes. This paper extends a recent study to evaluate the efficacy of several vertical flight diversion strategies to mitigate contrail climate forcing, and estimates impacts to air traffic management (ATM). We use six one-week periods of flight track data in the airspace above Japan (between May 2012 and March 2013), and simulate contrails using the contrail cirrus prediction model (CoCiP). Previous studies have predominantly optimised a diversion of every contrail-forming flight to minimise its formation or radiative forcing. However, our results show that these strategies produce a suboptimal outcome because most contrails have a short lifetime, and some have a cooling effect. Instead, a strategy that reroutes 15.3% of flights to avoid long-lived warming contrails, while allowing for cooling contrails, reduces the contrail energy forcing (EF<sub>contrail</sub>) by 105% [91.8, 125%] with a total fuel penalty of 0.70% [0.66, 0.73%]. A minimum EF<sub>total</sub> strategy (contrails + CO<sub>2</sub>), diverting 20.1% of flights, reduces the EF<sub>contrail</sub> by the same magnitude but also reduces the total fuel consumption by 0.40% [0.31, 0.47%]. For the diversion strategies explored, between 9% and 14% of diversions lead to a loss of separation standards between flights, demonstrating a modest scale of ATM impacts. These results show that small changes in flight altitudes are an opportunity for aviation to significantly and rapidly reduce its effect on the climate.
topic aviation
contrail cirrus
climate forcing
mitigation
air traffic management
url https://www.mdpi.com/2226-4310/7/9/121
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