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An Inversion Framework for Optimizing Non‐Methane VOC Emissions Using Remote Sensing and Airborne Observations in Northeast Asia During the KORUS‐AQ Field Campaign

We aim to reduce uncertainties in CH(2)O and other volatile organic carbon (VOC) emissions through assimilation of remote sensing data. We first update a three‐dimensional (3D) chemical transport model, GEOS‐Chem with the KORUSv5 anthropogenic emission inventory and inclusion of chemistry for aromat...

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Autores principales: Choi, Jinkyul, Henze, Daven K., Cao, Hansen, Nowlan, Caroline R., González Abad, Gonzalo, Kwon, Hyeong‐Ahn, Lee, Hyung‐Min, Oak, Yujin J., Park, Rokjin J., Bates, Kelvin H., Maasakkers, Joannes D., Wisthaler, Armin, Weinheimer, Andrew J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9285978/
https://www.ncbi.nlm.nih.gov/pubmed/35865789
http://dx.doi.org/10.1029/2021JD035844
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author Choi, Jinkyul
Henze, Daven K.
Cao, Hansen
Nowlan, Caroline R.
González Abad, Gonzalo
Kwon, Hyeong‐Ahn
Lee, Hyung‐Min
Oak, Yujin J.
Park, Rokjin J.
Bates, Kelvin H.
Maasakkers, Joannes D.
Wisthaler, Armin
Weinheimer, Andrew J.
author_facet Choi, Jinkyul
Henze, Daven K.
Cao, Hansen
Nowlan, Caroline R.
González Abad, Gonzalo
Kwon, Hyeong‐Ahn
Lee, Hyung‐Min
Oak, Yujin J.
Park, Rokjin J.
Bates, Kelvin H.
Maasakkers, Joannes D.
Wisthaler, Armin
Weinheimer, Andrew J.
author_sort Choi, Jinkyul
collection PubMed
description We aim to reduce uncertainties in CH(2)O and other volatile organic carbon (VOC) emissions through assimilation of remote sensing data. We first update a three‐dimensional (3D) chemical transport model, GEOS‐Chem with the KORUSv5 anthropogenic emission inventory and inclusion of chemistry for aromatics and C(2)H(4), leading to modest improvements in simulation of CH(2)O (normalized mean bias (NMB): −0.57 to −0.51) and O(3) (NMB: −0.25 to −0.19) compared against DC‐8 aircraft measurements during KORUS‐AQ; the mixing ratio of most VOC species are still underestimated. We next constrain VOC emissions using CH(2)O observations from two satellites (OMI and OMPS) and the DC‐8 aircraft during KORUS‐AQ. To utilize data from multiple platforms in a consistent manner, we develop a two‐step Hybrid Iterative Finite Difference Mass Balance and four‐dimensional variational inversion system (Hybrid IFDMB‐4DVar). The total VOC emissions throughout the domain increase by 47%. The a posteriori simulation reduces the low biases of simulated CH(2)O (NMB: −0.51 to −0.15), O(3) (NMB: −0.19 to −0.06), and VOCs. Alterations to the VOC speciation from the 4D‐Var inversion include increases of biogenic isoprene emissions in Korea and anthropogenic emissions in Eastern China. We find that the IFDMB method alone is adequate for reducing the low biases of VOCs in general; however, 4D‐Var provides additional refinement of high‐resolution emissions and their speciation. Defining reasonable emission errors and choosing optimal regularization parameters are crucial parts of the inversion system. Our new hybrid inversion framework can be applied for future air quality campaigns, maximizing the value of integrating measurements from current and upcoming geostationary satellite instruments.
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spelling pubmed-92859782022-07-19 An Inversion Framework for Optimizing Non‐Methane VOC Emissions Using Remote Sensing and Airborne Observations in Northeast Asia During the KORUS‐AQ Field Campaign Choi, Jinkyul Henze, Daven K. Cao, Hansen Nowlan, Caroline R. González Abad, Gonzalo Kwon, Hyeong‐Ahn Lee, Hyung‐Min Oak, Yujin J. Park, Rokjin J. Bates, Kelvin H. Maasakkers, Joannes D. Wisthaler, Armin Weinheimer, Andrew J. J Geophys Res Atmos Research Article We aim to reduce uncertainties in CH(2)O and other volatile organic carbon (VOC) emissions through assimilation of remote sensing data. We first update a three‐dimensional (3D) chemical transport model, GEOS‐Chem with the KORUSv5 anthropogenic emission inventory and inclusion of chemistry for aromatics and C(2)H(4), leading to modest improvements in simulation of CH(2)O (normalized mean bias (NMB): −0.57 to −0.51) and O(3) (NMB: −0.25 to −0.19) compared against DC‐8 aircraft measurements during KORUS‐AQ; the mixing ratio of most VOC species are still underestimated. We next constrain VOC emissions using CH(2)O observations from two satellites (OMI and OMPS) and the DC‐8 aircraft during KORUS‐AQ. To utilize data from multiple platforms in a consistent manner, we develop a two‐step Hybrid Iterative Finite Difference Mass Balance and four‐dimensional variational inversion system (Hybrid IFDMB‐4DVar). The total VOC emissions throughout the domain increase by 47%. The a posteriori simulation reduces the low biases of simulated CH(2)O (NMB: −0.51 to −0.15), O(3) (NMB: −0.19 to −0.06), and VOCs. Alterations to the VOC speciation from the 4D‐Var inversion include increases of biogenic isoprene emissions in Korea and anthropogenic emissions in Eastern China. We find that the IFDMB method alone is adequate for reducing the low biases of VOCs in general; however, 4D‐Var provides additional refinement of high‐resolution emissions and their speciation. Defining reasonable emission errors and choosing optimal regularization parameters are crucial parts of the inversion system. Our new hybrid inversion framework can be applied for future air quality campaigns, maximizing the value of integrating measurements from current and upcoming geostationary satellite instruments. John Wiley and Sons Inc. 2022-04-12 2022-04-16 /pmc/articles/PMC9285978/ /pubmed/35865789 http://dx.doi.org/10.1029/2021JD035844 Text en © 2022 The Authors. https://creativecommons.org/licenses/by-nc/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc/4.0/ (https://creativecommons.org/licenses/by-nc/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Research Article
Choi, Jinkyul
Henze, Daven K.
Cao, Hansen
Nowlan, Caroline R.
González Abad, Gonzalo
Kwon, Hyeong‐Ahn
Lee, Hyung‐Min
Oak, Yujin J.
Park, Rokjin J.
Bates, Kelvin H.
Maasakkers, Joannes D.
Wisthaler, Armin
Weinheimer, Andrew J.
An Inversion Framework for Optimizing Non‐Methane VOC Emissions Using Remote Sensing and Airborne Observations in Northeast Asia During the KORUS‐AQ Field Campaign
title An Inversion Framework for Optimizing Non‐Methane VOC Emissions Using Remote Sensing and Airborne Observations in Northeast Asia During the KORUS‐AQ Field Campaign
title_full An Inversion Framework for Optimizing Non‐Methane VOC Emissions Using Remote Sensing and Airborne Observations in Northeast Asia During the KORUS‐AQ Field Campaign
title_fullStr An Inversion Framework for Optimizing Non‐Methane VOC Emissions Using Remote Sensing and Airborne Observations in Northeast Asia During the KORUS‐AQ Field Campaign
title_full_unstemmed An Inversion Framework for Optimizing Non‐Methane VOC Emissions Using Remote Sensing and Airborne Observations in Northeast Asia During the KORUS‐AQ Field Campaign
title_short An Inversion Framework for Optimizing Non‐Methane VOC Emissions Using Remote Sensing and Airborne Observations in Northeast Asia During the KORUS‐AQ Field Campaign
title_sort inversion framework for optimizing non‐methane voc emissions using remote sensing and airborne observations in northeast asia during the korus‐aq field campaign
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9285978/
https://www.ncbi.nlm.nih.gov/pubmed/35865789
http://dx.doi.org/10.1029/2021JD035844
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