A cross-site comparison of ecosystem- and plot-scale methane fluxes across multiple timescales

By:
  • Määttä, Tiia
  • Desai, Ankur R.
  • Ueyama, Masahito
  • Vargas, Rodrigo
  • Ward, Eric J.
  • Zhang, Zhen
  • Bohrer, Gil
  • Delwiche, Kyle
  • Fluet-Chouinard, Etienne
  • Järveoja, Järvi
  • Knox, Sara H.
  • Melling, Lulie
  • Nilsson, Mats B.
  • Peichl, Matthias
  • Tang, Angela Che Ing
  • Tuittila, Eeva-Stiina
  • Wang, Jinsong
  • Bansal, Sheel
  • Feron, Sarah
  • Helbig, Manuel
  • Korrensalo, Aino
  • Krauss, Ken W.
  • McNicol, Gavin
  • Niu, Shuli
  • Ouyang, Zutao
  • Savage, Kathleen
  • Sonnentag, Oliver
  • Jackson, Robert
  • Malhotra, Avni

Additional publication details

  • Journal Title Biogeosciences
  • Publication Date 2026-07-03
  • Volume 23
  • DOI 10.5194/bg-23-4379-2026
  • Abstract Abstract. Wetland and upland ecosystems play significant but opposing roles in the global methane (CH4) budget, acting as natural sources and sinks, respectively. Two of the most common approaches for measuring CH4 fluxes (FCH4) are chambers, which measure fluxes at fine spatial scales (ca. 1 m2), and eddy covariance (EC) towers, which integrate fluxes across larger footprints (ca. 100–10 000 m2). Although chamber and EC observations have been combined in various syntheses and databases to estimate CH4 budgets, a unified cross-site evaluation of FCH4 estimates at plot and ecosystem scales is lacking. As a first step toward a systematic spatiotemporal scaling of EC tower and chamber footprints, we quantified differences in site-level aggregate FCH4 between EC and chamber measurements (ΔFCH4) across ten wetland and upland sites at half-hourly, hourly, daily, weekly, monthly, and annual timescales. We found that ecosystem-scale median FCH4 was consistently higher than plot-scale FCH4 at all temporal scales, with the smallest difference at the daily timescale (multi-site median ΔFCH4: 1.36 nmol m−2 s−1; median ecosystem-scale FCH4 = 1.56 nmol m−2 s−1, median plot-scale FCH4 = 0.06 nmol m−2 s−1) and the largest at annual scales (2.58 nmol m−2 s−1; median ecosystem-scale FCH4 = 25.91 nmol m−2 s−1, median plot-scale FCH4 = 6.55 nmol m−2 s−1). In general, the agreement between ecosystem- and plot-scale FCH4 decreased with finer temporal resolution (from Spearman ρ = 0.95 at the annual scale to ρ = 0.65 at the half-hourly scale), while ΔFCH4 variation was greatest at daily-to-annual scales. Key environmental predictors of ΔFCH4 across the ten sites included plot-scale spatial heterogeneity, dominant vegetation type, vapor pressure deficit, atmospheric pressure, and friction velocity at the daily and monthly scales. Wind direction was a significant predictor only at the monthly scale, suggesting EC footprint effects at these sites. These findings suggest that accounting for variability in EC footprint extent, chamber measurement placement, and measurement artifacts is key to reconciling multi-scale FCH4 observations across diverse ecosystems and refining CH4 budgets.
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