SCOPE11 Method for Estimating Aircraft Black Carbon Mass and Particle Number Emissions

Black carbon (BC) emissions from aircraft engines lead to an increase in the atmospheric burden of fine particulate matter (PM2.5). Exposure to PM2.5 from sources, including aviation, is associated with an increased risk of premature mortality, and BC suspended in the atmosphere has a warming impact...

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Veröffentlicht in:Environmental science & technology 2019-02, Vol.53 (3), p.1364-1373
Hauptverfasser: Agarwal, Akshat, Speth, Raymond L, Fritz, Thibaud M, Jacob, S. Daniel, Rindlisbacher, Theo, Iovinelli, Ralph, Owen, Bethan, Miake-Lye, Richard C, Sabnis, Jayant S, Barrett, Steven R. H
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container_issue 3
container_start_page 1364
container_title Environmental science & technology
container_volume 53
creator Agarwal, Akshat
Speth, Raymond L
Fritz, Thibaud M
Jacob, S. Daniel
Rindlisbacher, Theo
Iovinelli, Ralph
Owen, Bethan
Miake-Lye, Richard C
Sabnis, Jayant S
Barrett, Steven R. H
description Black carbon (BC) emissions from aircraft engines lead to an increase in the atmospheric burden of fine particulate matter (PM2.5). Exposure to PM2.5 from sources, including aviation, is associated with an increased risk of premature mortality, and BC suspended in the atmosphere has a warming impact on the climate. BC particles emitted from aircraft also serve as nuclei for contrail ice particles, which are a major component of aviation’s climate impact. To facilitate the evaluation of these impacts, we have developed a method to estimate BC mass and number emissions at the engine exit plane, referred to as the Smoke Correlation for Particle EmissionsCAEP11 (SCOPE11). We use a data set consisting of SN–BC mass concentration pairs, collected using certification-compliant measurement systems, to develop a new relationship between smoke number (SN) and BC mass concentration. In addition, we use a complementary data set to estimate measurement system loss correction factors and particle geometric mean diameters to estimate BC number emissions at the engine exit plane. Using this method, we estimate global BC emissions from aircraft landing and takeoff (LTO) operations for 2015 to be 0.74 Gg/year (95% CI = 0.64–0.84) and 2.85 × 1025 particles/year (95% CI = 1.86–4.49 × 1025).
doi_str_mv 10.1021/acs.est.8b04060
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subjects Aircraft
Aircraft components
Aircraft engines
Aircraft landing
Aviation
Black carbon
Carbon
Contrails
Particulate emissions
Particulate matter
Smoke
title SCOPE11 Method for Estimating Aircraft Black Carbon Mass and Particle Number Emissions
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