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Size Does Matter: Importance of Large Bubbles and Small-Scale Hot Spots for Methane Transport

机译:大小至关重要:甲烷运输中的大气泡和小规模热点的重要性

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摘要

Ebullition (bubbling) is an important mechanism for the transfer of methane (CH_4) from shallow waters to the atmosphere. Because of their stochastic nature, however, ebullition fluxes are difficult to accurately resolve. Hydro-acoustic surveys have the potential to significantly improve the spatiotemporal observation of emission fluxes, but knowledge of bubble size distribution is also necessary to accurately assess local, regional, and global water body CH_4 emission estimates. Therefore, we explore the importance of bubble size and small-scale flux variability on CH_4 transport in and emissions from a reservoir with a bubble-size-calibrated echosounder that can efficiently and economically survey greater areas while still resolving individual bubbles. Using a postprocessing method that resolves bubble density, we found that the largest 10% of the >6700 observed bubbles were responsible for more than 65% of the total CH_4 transport. Furthermore, the asymmetry of CH_4 ebullition flux distribution and the high spatial heterogeneity of those fluxes suggests that inadvertently omitting emission hot spots (i.e., areas of high flux) could lead to significant underestimations of CH_4 emissions from localized areas and potentially from entire water bodies. While the bubble sizes resolved by the hydroacoustic method may provide insight into the factors controlling ebullition (e.g., sediment type, carbon sedimentation), the better resolution of small-scale CH_4 emission hot spots afforded by hydroacoustics will bring us closer to the true CH_4 emission estimates from all shallow waters, be them lakes, reservoirs, or coastal oceans and seas.
机译:汽化(鼓泡)是甲烷(CH_4)从浅水向​​大气的转移的重要机制。但是,由于它们的随机性,很难准确解析出磁化通量。水声调查有可能显着改善排放通量的时空观测,但是对气泡大小分布的了解对于准确评估局部,区域和全球水体CH_4排放估算也是必要的。因此,我们探索了气泡大小和小流量通量变化对CH_4在带有气泡大小校准回声波的储层中的输运和排放的重要性,该回波声波能够有效,经济地勘测更大的面积,同时仍能解决单个气泡。使用解决气泡密度的后处理方法,我们发现观察到的> 6700个气泡中,最大的10%占总CH_4传输的65%以上。此外,CH_4沸腾通量分布的不对称性和这些通量的高度空间异质性表明,疏忽地忽略了排放热点(即高通量区域)可能导致严重低估了局部区域和整个水体的CH_4排放量。虽然通过水声方法解析出的气泡大小可以深入了解控制沸腾的因素(例如,沉积物类型,碳沉降),但水声技术提供的小范围CH_4排放热点的更好分辨率将使我们更接近真实的CH_4排放从所有浅水域进行估算,无论是湖泊,水库还是沿海大洋。

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  • 来源
    《Environmental Science & Technology》 |2015年第3期|1268-1276|共9页
  • 作者单位

    Eawag, Swiss Federal Institute of Aquatic Science and Technology, 6047 Kastanienbaum, Switzerland & Institute for Biogeochemistry and Pollutant Dynamics, ETH Zurich, 8092 Zurich, SwitzerIand,Departement des sciences biologiques, Universite du Quebec a Montreal, 8888, succ. Centre-ville, Montreal, Quebec H3C 3P8 Canada;

    GEOMAR, Helmholtz Centre for Ocean Research Kiel, Marine Geosystems, 24148 Kiel, Germany,Institute F.-A. Forel, Earth and Environmental Sciences, Faculty of Sciences, University of Geneva, 1227 Geneva, Switzerland;

    Eawag, Swiss Federal Institute of Aquatic Science and Technology, 6047 Kastanienbaum, Switzerland & Institute for Biogeochemistry and Pollutant Dynamics, ETH Zurich, 8092 Zurich, SwitzerIand;

    Israel Oceanographic & Limnological Research, Yigal Allon Kinneret Limnological Laboratory, Migdal 14950, Israel;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-17 13:59:39

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