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
      01/01/2016

      Can we explain the observed methane variability after the Mount Pinatubo eruption?

      The CH4 growth rate in the atmosphere showed large variations after the Pinatubo eruption in June 1991. A decrease of more than 10 ppb yr-1 in the growth rate over the course of 1992 was reported, and a partial recovery in the following year. Although several reasons have been proposed to explain the evolution of CH4 after the eruption, their contributions to the observed variations are not yet resolved. CH4 is removed from the atmosphere by the reaction with tropospheric OH, which in turn is produced by O3 photolysis under UV radiation. The CH4 removal after the Pinatubo eruption might have been affected by changes in tropospheric UV levels due to the presence of stratospheric SO2 and sulfate aerosols, and due to enhanced ozone depletion on Pinatubo aerosols. The perturbed climate after the eruption also altered both sources and sinks of atmospheric CH4. Furthermore, CH4 concentrations were influenced by other factors of natural variability in that period, such as El Niño-Southern Oscillation (ENSO) and biomass burning events. Emissions of CO, NOX and non-methane volatile organic compounds (NMVOCs) also affected CH4 concentrations indirectly by influencing tropospheric OH levels.<p class=”p”>Potential drivers of CH4 variability are investigated using the TM5 global chemistry model. The contribution that each driver had to the global CH4 variability during the period 1990 to 1995 is quantified. We find that a decrease of 8-10 ppb yr-1 CH4 is explained by a combination of the above processes. However, the timing of the minimum growth rate is found 6&nash;9 months later than observed. The long-term decrease in CH4 growth rate over the period 1990 to 1995 is well captured and can be attributed to an increase in OH concentrations over this time period. Potential uncertainties in our modelled CH4 growth rate include emissions of CH4 from wetlands, biomass burning emissions of CH4 and other compounds, biogenic NMVOC and the sensitivity of OH to NMVOC emission changes. Two inventories are used for CH4 emissions from wetlands, ORCHIDEE and LPJ, to investigate the role of uncertainties in these emissions. Although the higher climate sensitivity of ORCHIDEE improves the simulated CH4 growth rate change after Pinatubo, none of the two inventories properly captures the observed CH4 variability in this period.

      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.