PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
December 8, 2025Atmospheric chemistry and physics0 citationsOpen Access

Evaluation of and updates to the oxidized reactive nitrogen gaseous dry-deposition parameterization from the GEOS-Chem model, including a pathway for ground surface NO 2 hydrolysis

View Full Paper
BBBrian L. Boys

Key Points

  • Model evaluation reduced the bias in predicted dry deposition of reactive nitrogen species.
  • Using molecular diffusivities significantly improved the agreement with eddy-covariance measurements.
  • Incorporating NO2 hydrolysis helped address the low bias seen in nocturnal deposition measurements.
  • Improvements may enhance the accuracy of simulations involving the atmospheric boundary layer,

Abstract

Abstract. Dry deposition is a major loss pathway for reactive nitrogen species from the atmospheric boundary layer. We evaluate isolated components of the parameterization for species-specific gaseous dry-deposition velocity Vd(x) for HNO3 and NO2 from the GEOS-Chem chemical transport model by running a stand-alone version of Vd code in single-point mode to enable a more direct comparison to field observations. Improved measurement–model agreement results mainly from (i) updates to the calculation of molecular diffusivities and (ii) the representation of ground surface NO2 hydrolysis in the formulation of non-stomatal uptake. We evaluate the parameterization for non-stomatal dry deposition of NO2 by comparing to eddy-covariance-inferred nocturnal Vd(NO2) over Harvard Forest. We address a large low bias (−80 %) in simulated nocturnal Vd(NO2) by representing NO2 heterogeneous hydrolysis on deposition surfaces, paying attention to chemical flux divergence, soil NO emission, and canopy surface area effects. Finally, we evaluate the updated oxidized reactive nitrogen (NOy) dry-deposition parameterization by comparing to eddy-covariance-inferred Vd(NOy) over Harvard Forest, finding that a modest nocturnal low bias (−19 %) remains in simulated Vd(NOy) due to the compensating effects of updates to the calculation of molecular diffusivities (28 % reduction in nocturnal Vd(NOy)) and the representation of NO2 heterogeneous hydrolysis (25 % increase in nocturnal Vd(NOy)). These developments are a first step towards a tractable representation of NO2 hydrolysis in a dry-deposition scheme and have important implications for the near-surface NO2 lifetime through a mechanism involving HONO emission.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Brian L. Boys (2025) studied this question.

synapsesocial.com/papers/693624a44fa91c937236c2c4https://doi.org/10.5194/acp-25-17553-2025
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Observations of nitrous acid in an urban atmosphere by differential optical absorption1980 · 303 citations
  2. 2A review of measurements of air-surface exchange of reactive nitrogen in natural ecosystems across North America2019 · 49 citations
  3. 3Evaluation and Intercomparison of Five North American Dry Deposition Algorithms at a Mixed Forest Site2018 · 93 citations
  4. 4Understanding the role of the ground surface in HONO vertical structure: High resolution vertical profiles during NACHTT‐112013 · 219 citations
  5. 5Strong marine-derived nitrous acid (HONO) production observed in the coastal atmosphere of northern China2020 · 52 citations