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Measuring Dissolved Methane in Aquatic Ecosystems Using An Optical Spectroscopy Gas Analyzer
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Estimating internal dissolved methane loading in rivers using a mass balance approach.

Kenji Tsuchiya1, Shingo Miura1, Ayato Kohzu1

  • 1Regional Environment Conservation Division, National Institute for Environmental Studies, Tsukuba, Ibaraki, Japan.

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|October 20, 2025
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Summary

This study presents a simple mass balance method to quantify internal methane loading in rivers. This approach aids in reducing riverine methane emissions, crucial for mitigating global warming.

Keywords:
Climate changeEmission to the atmosphereIrrigation weirMass balanceMethane oxidationMonitoringRiverbed

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Area of Science:

  • Environmental Science
  • Geochemistry
  • River Ecology

Background:

  • Riverine methane emissions contribute to global warming.
  • Quantifying internal methane loading is vital for effective mitigation strategies.
  • Current methods for measuring methane flux are complex and site-specific.

Purpose of the Study:

  • To develop and validate a simplified mass balance approach for estimating internal methane loading in rivers.
  • To assess the feasibility of this method for large-scale river system evaluations.
  • To provide accurate data for reducing riverine methane emissions.

Main Methods:

  • A mass balance approach was employed in selected river reaches of the Kokai River, Japan.
  • Dissolved methane concentrations were measured at upstream and downstream sampling points.
  • Methane oxidation rates, atmospheric emission fluxes, and net riverbed flux were calculated.

Main Results:

  • Dissolved methane concentrations varied significantly across river reaches.
  • Methane oxidation rates ranged from -1.2 ± 0.8 to 66 ± 19 µmol m⁻² h⁻¹.
  • Net flux of dissolved methane from the riverbed ranged from -33 to 160 µmol m⁻² h⁻¹.

Conclusions:

  • The proposed mass balance method is a simple and effective tool for quantifying internal methane loading.
  • This approach facilitates methane flux measurements across various sites and environmental conditions.
  • The method is suitable for large-scale assessments of riverine methane dynamics and mitigation efforts.