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Quantifying Regional Methane Emissions Using Airborne Transects and a Measurement-Model Fusion Approach

  • Andres Gonzalez
  • , Dylan B. Millet
  • , Kelley C. Wells
  • , Timothy J. Griffis
  • , Zachary Barkley
  • , Joshua P. DiGangi
  • , John B. Nowak
  • , Yonghoon Choi

Research output: Contribution to journalArticlepeer-review

Abstract

The United States is one of the top national contributors to global methane emissions, with sources predominantly from wetlands, livestock, and natural gas and petroleum systems. Airborne mass balance provides a relatively direct method for characterizing such sources and evaluating bottom-up inventories. Here, we build on that approach by combining observations from the ACT-America airborne campaigns with high-resolution chemical transport model (WRF-Chem) simulations to quantify landscape-scale (32,000–95,000 km2) methane emissions for key US source regions. Specifically, we employ upwind and downwind boundary layer transects in a measurement-model fusion approach that defines a unique emission:enhancement relationship for each sampled source region and thereby derives emission estimates from the observed methane enhancements. We find that summertime methane emissions from southern US wetlands are strongly overestimated (2–11×) by the WetCHARTs inventory used here as prior. In contrast, our derived fluxes over areas in the US Midwest dominated by animal agriculture generally agree with bottom-up estimates. Diverse results are obtained over oil and gas regions, with an underestimate inferred over northern Louisiana but a modest overestimate for eastern Texas. Uncertainties in the method used here predominantly arise from model boundary layer errors and in some cases from sensitivity of the emission:enhancement relationship to the spatial distribution of emitters. Future applications should employ transects designed to minimize inflow variability and to sample areas dominated by individual emission sectors.

Original languageEnglish (US)
Pages (from-to)597-607
Number of pages11
JournalAmerican Chemical Society Environmental Science and Technology Air
Volume1
Issue number7
DOIs
StatePublished - Jul 12 2024

All Science Journal Classification (ASJC) codes

  • Atmospheric Science
  • Pollution
  • Environmental Science (miscellaneous)
  • Environmental Chemistry
  • Environmental Engineering
  • Health, Toxicology and Mutagenesis
  • Chemistry (miscellaneous)

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