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April 3, 2026Geoscientific model development0 citationsOpen Access

Introducing Volatile Organic Compound Model Intercomparison Project (VOCMIP)

GMGunnar MyhreØHØivind HodnebrogSKSrinath Krishnan

Key Points

  • The aim is to improve the representation of VOCs in global atmospheric chemistry models, addressing their impact on climate and health.
  • Introduced VOCMIP for collaborative modeling of VOCs.
  • Invited atmospheric chemistry modeling groups to participate.
  • Compared model outputs with in situ measurements from surface stations and aircraft.
  • Analyzed satellite data for key VOCs, focusing on formaldehyde.
  • Identified model consistencies and discrepancies in VOC representation.
  • Enhanced formulation of chemical mechanisms related to VOCs.
  • Advanced understanding of VOC-related processes in relation to air quality and climate.

Abstract

Abstract. Volatile organic compounds (VOCs) play an important role in atmospheric chemistry, influencing the cycling of peroxy and hydroxyl radicals, the formation of tropospheric ozone, hydrogen, secondary organic aerosol, and the lifetime of methane and other greenhouse gases. Their interactions shape overall atmospheric composition and air quality, with implications for both climate and human health. Given their significance, it is crucial for global atmospheric chemistry models to represent VOCs adequately for any given scientific question. In this context, we introduce the Volatile Organic Compound Model Intercomparison Project (VOCMIP) and invite atmospheric chemistry modelling groups to participate in this collaborative effort. VOCMIP aims to identify model consistencies and discrepancies, enhance the formulation of chemical mechanisms, and advance our understanding of VOC-related processes in the atmosphere. Global atmospheric chemistry model output will be compared to in situ measurements from surface stations and aircraft campaigns, plus satellite data for key VOCs. Special emphasis will be placed on formaldehyde (HCHO), examining its chemical sources and sinks given its central role as a radical source and as an intermediate in the photochemical destruction of VOCs.

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Cite This Study

Myhre et al. (2026) studied this question.

synapsesocial.com/papers/69cf5fe05a333a821460e9efhttps://doi.org/10.5194/gmd-19-2577-2026
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Also Consider

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

  1. 1Evaluation of modelled versus observed non-methane volatile organic compounds at European Monitoring and Evaluation Programme sites in Europe2024 · 4 citations
  2. 2Abundance of volatile organic compounds and their role in ozone pollution management: Evidence from multi-platform observations and model representations during the 2021–2022 field campaign in Hong Kong2025
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  4. 4Reconstructing the VOC–Ozone Research Framework Through a Systematic Review of Observation and Modeling2025 · 6 citations
  5. 5How does tropospheric VOC chemistry affect climate? Investigations using the Community Earth System Model Version 2.2024