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首页> 外文期刊>Global change biology >Conversion of coastal wetlands, riparian wetlands, and peatlands increases greenhouse gas emissions: A global meta-analysis
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Conversion of coastal wetlands, riparian wetlands, and peatlands increases greenhouse gas emissions: A global meta-analysis

机译:沿海湿地,河岸湿地和泥炭地转换增加温室气体排放量:全球性荟萃分析

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摘要

Land-use/land-cover change (LULCC) often results in degradation of natural wetlands and affects the dynamics of greenhouse gases (GHGs). However, the magnitude of changes in GHG emissions from wetlands undergoing various LULCC types remains unclear. We conducted a global meta-analysis with a database of 209 sites to examine the effects of LULCC types of constructed wetlands (CWs), croplands (CLs), aquaculture ponds (APs), drained wetlands (DWs), and pastures (PASs) on the variability in CO2, CH4, and N2O emissions from the natural coastal wetlands, riparian wetlands, and peatlands. Our results showed that the natural wetlands were net sinks of atmospheric CO2 and net sources of CH4 and N2O, exhibiting the capacity to mitigate greenhouse effects due to negative comprehensive global warming potentials (GWPs; -0.9 to -8.7 t CO2-eq ha(-1) year(-1)). Relative to the natural wetlands, all LULCC types (except CWs from coastal wetlands) decreased the net CO2 uptake by 69.7%-456.6%, due to a higher increase in ecosystem respiration relative to slight changes in gross primary production. The CWs and APs significantly increased the CH4 emissions compared to those of the coastal wetlands. All LULCC types associated with the riparian wetlands significantly decreased the CH4 emissions. When the peatlands were converted to the PASs, the CH4 emissions significantly increased. The CLs, as well as DWs from peatlands, significantly increased the N2O emissions in the natural wetlands. As a result, all LULCC types (except PASs from riparian wetlands) led to remarkably higher GWPs by 65.4%-2,948.8%, compared to those of the natural wetlands. The variability in GHG fluxes with LULCC was mainly sensitive to changes in soil water content, water table, salinity, soil nitrogen content, soil pH, and bulk density. This study highlights the significant role of LULCC in increasing comprehensive GHG emissions from global natural wetlands, and our results are useful for improving future models and manipulative experiments.
机译:土地使用/陆地覆盖变化(LULCC)经常导致天然湿地的退化,影响温室气体的动态(GHGS)。然而,来自经历各种LULCC类型的湿地的温室气体排放量的变化幅度仍不清楚。我们与209个站点的数据库进行了全球荟萃分析,以检查Lulcc类型的建造湿地(CWS),农田(CLS),水产养殖池(APS),排水湿地(DWS)和牧场(通过)的影响来自天然沿海湿地,河岸湿地和泥炭地的二氧化碳,CH4和N2O排放的可变性。我们的研究结果表明,天然湿地是大气二氧化碳的净水槽和CH4和N2O的净来源,表现出由于负面综合全球变暖电位(GWPS; -0.9至-8.7 T CO2-EQ HA( - )引起减轻温室效应的能力1)年(-1))。相对于天然湿地,由于生态系统呼吸较高相对于总初级生产的微小变化,所有Lulcc类型(来自沿海湿地的CWS除外)降低了69.7%-456.6%。与沿海湿地相比,CWS和APS显着增加了CH4排放。与河岸湿地相关的所有Lulcc类型都显着降低了CH4排放。当泥炭地转化为通行证时,CH4排放显着增加。 CLS以及来自泥炭地的DWS,显着增加了天然湿地的N2O排放量。因此,与天然湿地的垃圾相比,所有LULCC类型(河岸湿地除外)导致GWP的显着较高65.4%-2,948.8%。具有LULCC的GHG通量的变异主要敏感土壤含水量,水位,盐度,土壤氮含量,土壤pH和散装密度的变化。本研究强调了LULCC在越来越多的全球天然湿地综合温室气体排放中的重要作用,我们的结果对于改善未来的模型和操纵实验有用。

著录项

  • 来源
    《Global change biology》 |2020年第3期|共16页
  • 作者单位

    East China Normal Univ Inst Ecochongming State Key Lab Estuarine &

    Coastal Res Shanghai Peoples R China;

    East China Normal Univ Inst Ecochongming State Key Lab Estuarine &

    Coastal Res Shanghai Peoples R China;

    East China Normal Univ Shanghai Key Lab Urban Ecol Proc &

    Ecorestorat Tiantong Natl Field Stn Forest Ecosyst Res Ctr Global Change &

    Ecol Forecasting Sch Ecol &

    E Shanghai Peoples R China;

    East China Normal Univ Inst Ecochongming State Key Lab Estuarine &

    Coastal Res Shanghai Peoples R China;

    East China Normal Univ Inst Ecochongming State Key Lab Estuarine &

    Coastal Res Shanghai Peoples R China;

    East China Normal Univ Inst Ecochongming State Key Lab Estuarine &

    Coastal Res Shanghai Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 物候学;生物科学;
  • 关键词

    coastal wetland; global warming potential; greenhouse gas emission; inland wetland; land-use change; meta-analysis;

    机译:沿海湿地;全球变暖潜力;温室气体排放;内陆湿地;土地利用变化;荟萃分析;

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