Skip to content

To bring about breakthroughs in international space research

  • Home
  • Onderzoeksvragen
  • Pijlers
  • Missies
  • Over ons
  • Contact
Home
    Home

    SRON | Wetenschappelijk ruimteonderzoek Nederland

    To bring about breakthroughs in international space research

    Home
    • Onderzoeksvragen
    • Pijlers
      • Wetenschap
      • Technologie
      • Instrumentatie
      • Onze mensen
      • Impact
    • Missies
    • Over ons
    • Actueel
    • Contact
    • SRON Academy
    • Werken bij
    • Bezoek aan SRON
    Home
      • Onderzoeksvragen
        • Hoe ontrafelen we de fysica achter zwarte gaten?
        • Hoe kunnen we de zwakste exoplaneten waarnemen?
        • Waar worden broeikasgassen uitgestoten?
        • Hoe speciaal is de aarde in de context van het heelal?
        • Hoe ontstaan en groeien zwarte gaten?
        • Hoe beïnvloeden aerosolen het klimaat?
        • Hoe ontstaan sterren en planeten?
        • Hoe beïnvloedt klimaatverandering het leven op aarde?
      • Pijlers
        • Wetenschap
          • Aardobservatie
            • Methaan
            • Aerosolen en Wolken
            • CO2
            • Koolmonoxide
          • Astrofysica
            • Lage energie
            • Hoge energie
            • Exoplaneten
        • Technologie
        • Instrumentatie
          • Nanotechnologie
          • Cryogenica
          • Optica
          • Electronica
          • PA/QA kwaliteit
          • Mechanica / Realisatie
        • Onze mensen
        • Impact
      • Missies
        • Actief
          • ALMA
          • GUSTO
          • PACE
          • Sentinel-5p
          • SPEX airborne
          • XRISM
        • In ontwikkeling
          • ARIEL
          • LISA
          • Metop-SG A
        • Legacy
          • BeppoSAX
          • STO2
      • Over ons
        • Faciliteiten
        • Geschiedenis
      • Actueel
      • Contact
      • SRON Academy
      • Werken bij
      • Bezoek aan SRON
      • Privacy policy
      01/10/2010

      The global chemistry transport model TM5: description and evaluation of the tropospheric chemistry version 3.0

      We present a comprehensive description and benchmark evaluation of the tropospheric chemistry version of the global chemistry transport model TM5 (Tracer Model 5, version TM5-chem-v3.0). A full description is given concerning the photochemical mechanism, the interaction with aerosol, the treatment of the stratosphere, the wet and dry deposition parameterizations, and the applied emissions. We evaluate the model against a suite of ground-based, satellite, and aircraft measurements of components critical for understanding global photochemistry for the year 2006.

      The model exhibits a realistic oxidative capacity at a global scale. The methane lifetime is ~8.9 years with an associated lifetime of methyl chloroform of 5.86 years, which is similar to that derived using an optimized hydroxyl radical field.

      The seasonal cycle in observed carbon monoxide (CO) is well simulated at different regions across the globe. In the Northern Hemisphere CO concentrations are underestimated by about 20 ppbv in spring and 10 ppbv in summer, which is related to missing chemistry and underestimated emissions from higher hydrocarbons, as well as to uncertainties in the seasonal variation of CO emissions. The model also captures the spatial and seasonal variation in formaldehyde tropospheric columns as observed by SCIAMACHY. Positive model biases over the Amazon and eastern United States point to uncertainties in the isoprene emissions as well as its chemical breakdown.

      Simulated tropospheric nitrogen dioxide columns correspond well to observations from the Ozone Monitoring Instrument in terms of its seasonal and spatial variability (with a global spatial correlation coefficient of 0.89), but TM5 fields are lower by 25-40%. This is consistent with earlier studies pointing to a high bias of 0-30% in the OMI retrievals, but uncertainties in the emission inventories have probably also contributed to the discrepancy.

      TM5 tropospheric nitrogen dioxide profiles are in good agreement (within ~0.1 ppbv) with in situ aircraft observations from the INTEX-B campaign over (the Gulf of) Mexico.

      The model reproduces the spatial and seasonal variation in background surface ozone concentrations and tropospheric ozone profiles from the World Ozone and Ultraviolet Radiation Data Centre to within 10 ppbv, but at several tropical stations the model tends to underestimate ozone in the free troposphere.

      The presented model results benchmark the TM5 tropospheric chemistry version, which is currently in use in several international cooperation activities, and upon which future model improvements will take place.

      SRON Leiden

      Leiden

      Niels Bohrweg 4
      2333 CA Leiden
      The Netherlands
      +31 (0)88 777 56 00

      SRON Groningen

      Groningen

      Landleven 12
      9747 AD Groningen
      The Netherlands
      +31 (0)50 363 40 74

      • Onderzoeksvragen
      • Pijlers
        • Wetenschap
        • Technologie
        • Instrumentatie
        • Onze mensen
        • Impact
      • Missies
      • Over ons
      • Actueel
      • Contact
      SRON on bluesky SRON on Instagram SRON on LinkedIn

      Niels Bohrweg 4
      2333 CA Leiden
      The Netherlands
      +31 (0)88 777 56 00

      Landleven 12
      9747 AD Groningen
      The Netherlands
      +31 (0)50 363 40 74

      NWO-I

      SRON is onderdeel van de institutenorganisatie van NWO-I

      • Privacy policy
      Home

      What happens up there, starts down here.