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  3. The Modeled Seasonal Cycles of Surface N<sub>2</sub>O Fluxes and Atmospheric N<sub>2</sub>O

The Modeled Seasonal Cycles of Surface N2O Fluxes and Atmospheric N2O

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DOI
10.48620/77384
Publisher DOI
10.1029/2023GB008010
Abstract
Nitrous oxide (N<jats:sub>2</jats:sub>O) is a greenhouse gas and stratospheric ozone‐depleting substance with large and growing anthropogenic emissions. Previous studies identified the influx of N<jats:sub>2</jats:sub>O‐depleted air from the stratosphere to partly cause the seasonality in tropospheric N<jats:sub>2</jats:sub>O (aN<jats:sub>2</jats:sub>O), but other contributions remain unclear. Here, we combine surface fluxes from eight land and four ocean models from phase 2 of the Nitrogen/N<jats:sub>2</jats:sub>O Model Intercomparison Project with tropospheric transport modeling to simulate aN<jats:sub>2</jats:sub>O at eight remote air sampling sites for modern and pre‐industrial periods. Models show general agreement on the seasonal phasing of zonal‐average N<jats:sub>2</jats:sub>O fluxes for most sites, but seasonal peak‐to‐peak amplitudes differ several‐fold across models. The modeled seasonal amplitude of surface aN<jats:sub>2</jats:sub>O ranges from 0.25 to 0.80 ppb (interquartile ranges 21%–52% of median) for land, 0.14–0.25 ppb (17%–68%) for ocean, and 0.28–0.77 ppb (23%–52%) for combined flux contributions. The observed seasonal amplitude ranges from 0.34 to 1.08 ppb for these sites. The stratospheric contributions to aN<jats:sub>2</jats:sub>O, inferred by the difference between the surface‐troposphere model and observations, show 16%–126% larger amplitudes and minima delayed by ∼1 month compared to Northern Hemisphere site observations. Land fluxes and their seasonal amplitude have increased since the pre‐industrial era and are projected to grow further under anthropogenic activities. Our results demonstrate the increasing importance of land fluxes for aN<jats:sub>2</jats:sub>O seasonality. Considering the large model spread, in situ aN<jats:sub>2</jats:sub>O observations and atmospheric transport‐chemistry models will provide opportunities for constraining terrestrial and oceanic biosphere models, critical for projecting carbon‐nitrogen cycles under ongoing global warming.
Date Issued
2024-07
Publication Type
Article
Language(s)
en
Author(s)
Sun, Qing  
Physics Institute, Climate and Environmental Physics  
Physics Institute, Climate and Environmental Physics  
Physics Institute, Climate and Environmental Physics  
Physics Institute, Climate and Environmental Physics  
Joos, Fortunat  
Klima- und Umweltphysik (KUP) - Earth System Modelling: Biogeochemistry  
Physics Institute, Climate and Environmental Physics  
Lienert, Sebastian  
Physics Institute, Climate and Environmental Physics  
Berthet, Sarah
Carroll, Dustin
Gong, Cheng
Ito, Akihiko
Jain, Atul K.
Kou‐Giesbrecht, Sian
Landolfi, Angela
Manizza, Manfredi
Pan, Naiqing
Prather, Michael
Regnier, Pierre
Resplandy, Laure
Séférian, Roland
Shi, Hao
Suntharalingam, Parvadha
Thompson, Rona L.
Tian, Hanqin
Vuichard, Nicolas
Zaehle, Sönke
Zhu, Qing
Additional Credits
Physics Institute, Climate and Environmental Physics  
Physics Institute, Climate and Environmental Physics  
Klima- und Umweltphysik (KUP) - Earth System Modelling: Biogeochemistry  
Oeschger Centre for Climate Change Research (OCCR)  
Journal
Global Biogeochemical Cycles
Publisher
Wiley
ISSN
0886-6236
1944-9224
Access(Rights)
open.access
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