Performance Evaluation of the Meteorology and Air Quality Conditions From Multiscale WRF-CMAQ Simulations for the Long Island Sound Tropospheric Ozone Study (LISTOS).
Journal
Journal of geophysical research. Atmospheres : JGR
ISSN: 2169-897X
Titre abrégé: J Geophys Res Atmos
Pays: United States
ID NLM: 9882986
Informations de publication
Date de publication:
10 Feb 2022
10 Feb 2022
Historique:
entrez:
29
8
2022
pubmed:
30
8
2022
medline:
30
8
2022
Statut:
ppublish
Résumé
The Long Island Sound (LIS) Tropospheric Ozone Study was a multi-agency collaborative field campaign conducted during the summer of 2018 to improve the understanding of ozone chemistry and transport from New York City to areas downstream, especially the LIS and adjacent Connecticut coastline. Measurements made during this campaign were leveraged to test and evaluate the coupled WRF-CMAQ model at 12 km, 4 and 1.33 km horizontal grid spacing. Special attention was placed on the model's representation of sea breeze circulations, low level jets, and boundary layer evolution. The evaluation suggests using higher resolutions resulted in improved surface meteorology statistics throughout the whole summer, with temperature biases seeing the biggest statistical improvements when using 1.33-km grid spacing, going from -0.12 to 0.08 K. Additionally, 4-km grid spacing provided the biggest advantage when simulating ozone over the region of interest, with biases being reduced from 2.40 to 0.57 to 0.37 ppbV with increased resolution. Case studies of two high ozone concentration events (July 10 and August 6) revealed that sound breezes and low-level jets had a critical role in transporting pollutant-rich, shallow marine air masses from the LIS inland over the Connecticut coast. Modifications were made to the representation of sea surface temperatures, which subsequently improved the simulation of surface ozone predictions.
Identifiants
pubmed: 36035632
doi: 10.1029/2021jd035890
pmc: PMC9413027
mid: NIHMS1791928
doi:
Types de publication
Journal Article
Langues
eng
Pagination
1-27Subventions
Organisme : Intramural EPA
ID : EPA999999
Pays : United States
Déclaration de conflit d'intérêts
Conflict of Interest The authors declare no conflicts of interest relevant to this study. The authors declare that they have no real or perceived financial conflicts of interest.
Références
J Atmos Chem. 2015;72(3-4):335-353
pubmed: 26692594
Environ Pollut. 2007 Jun;147(3):489-506
pubmed: 17084004
Atmos Chem Phys. 2017;17:12449-12474
pubmed: 29681922
Atmos Chem Phys. 2021 Mar 31;21(6):5079-5100
pubmed: 34122530
Proc Natl Acad Sci U S A. 2019 Apr 2;116(14):6641-6646
pubmed: 30886090
Environ Sci Technol. 2021 Jan 19;55(2):862-870
pubmed: 33395278
Nat Sustain. 2020 Oct 5;N/A:1-57
pubmed: 33134558
Atmos Environ (1994). 2019 Mar 15;201:62-72
pubmed: 33981178
J Air Waste Manag Assoc. 2021 Jul;71(7):866-889
pubmed: 33689601
Science. 2018 Feb 16;359(6377):760-764
pubmed: 29449485
Geosci Model Dev. 2021 Nov 26;14(11):7189-7221
pubmed: 35237388
Science. 2015 Jun 5;348(6239):1096-7
pubmed: 26045425
Environ Sci Technol. 2015 Jan 6;49(1):186-95
pubmed: 25517137
Environ Res. 2016 May;147:108-14
pubmed: 26855129
Bull Am Meteorol Soc. 2021 Dec 24;102(12):E2207-E2225
pubmed: 35837596
Atmos Meas Tech. 2020 Nov 17;13(11):6113-6140
pubmed: 34122664
Bull Am Meteorol Soc. 2019 Feb;100(2):291-306
pubmed: 33005058
Atmos Environ (1994). 2019;213:395-404
pubmed: 31320831