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Global Simulations Suggest Biomass Burning Aerosol Emissions From Grassland Fires Could Be Important Ice Nucleating Particles

  • Kanishk Gohil
  • , Noah Asch
  • , Ryan Sullivan
  • , Paul J. DeMott
  • , Hamish Gordon
  • Carnegie Mellon University
  • National Center for Atmospheric Research
  • Colorado State University

Research output: Contribution to journalArticlepeer-review

Abstract

Ice nucleating particles (INP) capable of nucleating ice crystals via immersion freezing at temperatures above approximately −35°C may strongly influence cloud glaciation, with implications for global precipitation and climate feedback. In addition to mineral dust, soil dust, and marine organics, laboratory and field measurements suggest biomass burning aerosols (BBA) can act as immersion-mode INP between around −30°C and −15°C. However, the contribution of BBA to the global INP budget remains poorly understood due to poor knowledge of which fuels yield INPs, uncertainties in global coverage of those fuels, and unknown size distributions of the INPs in the BBA. Nonetheless, with some understanding of these uncertainties from sensitivity studies, the relative importance of ice nucleation activity of BBA compared to other INP sources can be quantified. In this work, we investigate the potential global importance of BBA as INP using a global aerosol-climate model, specifically the UK Met Office Unified Model (UM). We evaluate the model using field campaign data sets. We examine potential uncertainties in fuel types and particle sizes on BBA-based INP concentrations. Averaged over June–September between 15°S and 50°S, BBA is a more important INP than dust and marine INP about 30% of the time at altitudes with temperatures between −30°C and −20°C. Our simulations therefore suggest BBA INPs may be at least as important as mineral dust and marine INP over the atmospheric regions and seasons where grassland fires are frequent.

Original languageEnglish
Article numbere2025JD043647
JournalJournal of Geophysical Research: Atmospheres
Volume130
Issue number22
DOIs
StatePublished - Nov 28 2025
Externally publishedYes

Keywords

  • aerosol-cloud interactions
  • biomass burning aerosols
  • climate modeling
  • ice nucleating particles
  • mixed-phase clouds

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