Review on monitoring methods for greenhouse gases fluxes in freshwater ecosystems

被引:1
|
作者
Li H. [1 ,3 ]
Wang X. [1 ,2 ,3 ]
Yuan X. [1 ,2 ,4 ]
Wang J. [1 ,3 ,5 ]
Li X. [1 ,3 ]
Zhou T. [1 ,3 ]
机构
[1] Chongqing Key Laboratory of Wetland Science Research of the Upper Reaches of the Yangtze River, Chongqing Normal University, Chongqing
[2] Three Gorges Reservoir Area Earth Surface Ecological Processes of Chongqing Observation and Research Station, Chongqing Normal University, Chongqing
[3] School of Geography and Tourism, Chongqing Normal University, Chongqing
[4] Faculty of Architecture and Urban Planning, Chongqing University, Chongqing
[5] School of Earth System Science, Tianjin University, Tianjin
来源
Hupo Kexue/Journal of Lake Sciences | 2023年 / 35卷 / 04期
关键词
Freshwater; greenhouse gas fluxes; influencing factors; monitoring methods; research progress;
D O I
10.18307/2023.0402
中图分类号
学科分类号
摘要
Freshwater ecosystems, as active components in global biogeochemical cycles, are known to be important sources of atmospheric greenhouse gases (GHGs). The quantification of GHGs budget from freshwaters has been subject to intensive research in recent years, while current assessments still exist enormous uncertainties due to their strong spatial and temporal heterogeneity. Particularly, uncertainties relating to methodology of monitoring GHGs fluxes in freshwater ecosystems might further constraint the accurate assessment for total contributions of freshwater ecosystems to global GHGs inventory. Previous reports used different methods for GHGs fluxes measurement can also strongly restrict the comparisons between global or regional freshwater ecosystem fluxes. However, previous studies have rarely focused on the systematic summarization of theory, algorithm and influencing factors of different monitoring methods for CHCs fluxes in freshwaters. This study summarized ihe general characteristics of GHCs emissions from freshwater ecosystems, and then sketched the basic theory, general algorithms and models of different GHCs fluxes monitoring methods, including floating chamber method, boundary layer model based method, micrometeorology method, and bubble traps method, which have been commonly used in freshwater ecosystems. We further analyzed the application environment and advantages and disadvantages of each method, respectively. Meanwhile, the main influencing factors being related to observation accuracy of floating chamber method and boundary layer model-based method were reviewed in detail. We highlighted that there were many inconsistent programs of chamber size, installation, sampling interval for iloating chamber method, would influence the monitoring results. Uniform crilerion and standard for floating chamber melhod and boundary layer model-based melhod should been developed in different aquatic environment. Furthermore, the comparative studies of the different monitoring methods were integrated. The results showed generally overestimaled GHCs fluxes using ihe floating chamber methods compared with those deriving from ihe boundary layer model-based method. Moreover, the consistency between the observations using micrometeorological method and floating chamber melhod were still controversial. Our study suggests thai ihe effect of ihe monitoring methods on the GHGs fluxes in freshwaters and their deviation source is an important challenge. Comprehensive assessment and comparison of various methods can improve the accuracy of GHGs measurement in freshwater ecosystems. Methodology of CHG fluxes measurement should be given priority al-lenlion in the further studies. © 2023 Science Press. All rights reserved.
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收藏
页码:1153 / 1172
页数:19
相关论文
共 129 条
  • [31] Wang DQ, Chen ZL, Sun WW, Et al., Methane and nitrous oxide concentration and emission flux of Yangtze Delta plain river net, Science in China Series B: Chemistry, 52, 5, pp. 652-661, (2009)
  • [32] Borges A, Darchambeau F, Lambert T, Et al., Effects of agricultural land use on fluvial carbon dioxide, methane and nitrous oxide concentrations in a large European River, the Meuse (Belgium), Science of the Total Environment, 610, 611, pp. 342-355, (2018)
  • [33] Wang X, He Y, Yuan X, Et al., Greenhouse gases concentrations and fluxes from subtropical small reservoirs in relation with watershed urbanization, Atmospheric Environment, 154, pp. 225-235, (2017)
  • [34] Tang W, Xu YJ, Ma YM, Et al., Hot spot of CH<sub>4</sub> production and diffusive flux in rivers with high urbanization, Water Research, 204, (2021)
  • [35] Wang XF, Yuan XZ, Chen H, Et al., Review of CO<sub>2</sub> and CH<sub>4</sub> emissions from rivers, Environmental Science, 38, 12, pp. 5352-5366, (2017)
  • [36] Liss PS, Slater PC., Flux of gases across the air-sea interface, Nature, 247, 5438, pp. 181-184, (1974)
  • [37] Liu D., Xiang J, Et al., Methane and nitrous oxide have separated production zones and distinct emission pathways in freshwater aqua-culture ponds, Water Research, 190, (2021)
  • [38] Crawford JT, Stanley EH, Spawn SA, Et al., Ebullitive methane emissions from oxygenated wetland streams, Global Change Biology, 20, 11, pp. 3408-3422, (2014)
  • [39] Tremblav A, Varfalvy L, Garneau M, Et al., Greenhouse gas emissions-fluxes and processes
  • [40] Hydroelectric reservoirs and natural environments, (2005)