Degradation of ice-wedge polygons leads to increased fluxes of water and DOC

被引:3
作者
Speetjens, Niek Jesse [1 ,2 ]
Berghuijs, Wouter R. [1 ]
Wagner, Julia [3 ]
Vonk, Jorien E. [1 ]
机构
[1] Vrije Univ Amsterdam, Dept Earth Sci, NL-1081 HV Amsterdam, Netherlands
[2] Univ Victoria, Sch Environm Studies ENVI, Victoria, BC V8W 2Y2, Canada
[3] Stockholm Univ SU, Dept Phys Geog, S-10691 Stockholm, Sweden
基金
欧盟地平线“2020”;
关键词
Permafrost; Hydrology; Ice -wedge polygon; Lateral carbon flux; Model; Dissolved organic carbon; WESTERN ARCTIC COAST; CLIMATE-CHANGE; PERMAFROST CARBON; ORGANIC-CARBON; TUNDRA; TEMPERATURE; SNOW; FLOW;
D O I
10.1016/j.scitotenv.2024.170931
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Ice-wedge polygon landscapes make up a substantial part of high-latitude permafrost landscapes. The hydrological conditions shape how these landscapes store and release organic carbon. However, their coupled water-carbon dynamics are poorly understood as field measurements are sparse in smaller catchments and coupled hydrology-dissolved organic carbon (DOC) models are not tailored for these landscapes. Here we present a model that simulates the hydrology and associated DOC export of high-centered and low-centered ice-wedge polygons and apply the model to a small catchment with abundant polygon coverage along the Yukon Coast, Canada. The modeled seasonal pattern of water and carbon fluxes aligns with sparse field data. These modeled seasonal patterns indicate that early-season runoff is mostly surficial and generated by low-centered polygons and snow trapped in troughs of high-centered polygons. High-centered polygons show potential for deeper subsurface flow under future climate conditions. This suggests that high-centered polygons will be responsible for an increasing proportion of annual DOC export compared to low-centered polygons. Warming likely shifts low-centered polygons to high-centered polygons, and our model shows that this shift will cause a deepening of the active layer and a lengthening of the thawing season. This, in turn, intensifies seasonal runoff and DOC flux, mainly through its duration. Our model provides a physical hypothesis that can be used to further quantify and refine our understanding of hydrology and DOC export of arctic ice-wedge polygon terrain.
引用
收藏
页数:12
相关论文
共 59 条
  • [1] Soil moisture and hydrology projections of the permafrost region a model intercomparison
    Andresen, Christian G.
    Lawrence, David
    Wilson, Cathy J.
    McGuire, A. David
    Koven, Charles
    Schaefer, Kevin
    Jafarov, Elchin
    Peng, Shushi
    Chen, Xiaodong
    Gouttevin, Isabelle
    Burke, Eleanor J.
    Chadburn, Sarah
    Ji, Duoying
    Chen, Guangsheng
    Hayes, Daniel
    Zhang, Wenxin
    [J]. CRYOSPHERE, 2020, 14 (02) : 445 - 459
  • [2] Can C-band synthetic aperture radar be used to estimate soil organic carbon storage in tundra?
    Bartsch, Annett
    Widhalm, Barbara
    Kuhry, Peter
    Hugelius, Gustaf
    Palmtag, Juri
    Siewert, Matthias Benjamin
    [J]. BIOGEOSCIENCES, 2016, 13 (19) : 5453 - 5470
  • [3] Lateral carbon export has low impact on the net ecosystem carbon balance of a polygonal tundra catchment
    Beckebanze, Lutz
    Runkle, Benjamin R. K.
    Walz, Josefine
    Wille, Christian
    Holl, David
    Helbig, Manuel
    Boike, Julia
    Sachs, Torsten
    Kutzbach, Lars
    [J]. BIOGEOSCIENCES, 2022, 19 (16) : 3863 - 3876
  • [4] Bintanja R, 2017, NAT CLIM CHANGE, V7, P263, DOI [10.1038/nclimate3240, 10.1038/NCLIMATE3240]
  • [5] Object based image analysis for remote sensing
    Blaschke, T.
    [J]. ISPRS JOURNAL OF PHOTOGRAMMETRY AND REMOTE SENSING, 2010, 65 (01) : 2 - 16
  • [6] Random forests
    Breiman, L
    [J]. MACHINE LEARNING, 2001, 45 (01) : 5 - 32
  • [7] Cryostratigraphy, paleogeography, and climate change during the early Holocene warm interval, western Arctic coast, Canada
    Burn, CR
    [J]. CANADIAN JOURNAL OF EARTH SCIENCES, 1997, 34 (07) : 912 - 925
  • [8] Spatial Variability of Dissolved Organic Carbon, Solutes, and Suspended Sediment in Disturbed Low Arctic Coastal Watersheds
    Coch, C.
    Ramage, J. L.
    Lamoureux, S. F.
    Meyer, H.
    Knoblauch, C.
    Lantuit, H.
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-BIOGEOSCIENCES, 2020, 125 (02)
  • [9] System for Automated Geoscientific Analyses (SAGA) v. 2.1.4
    Conrad, O.
    Bechtel, B.
    Bock, M.
    Dietrich, H.
    Fischer, E.
    Gerlitz, L.
    Wehberg, J.
    Wichmann, V.
    Boehner, J.
    [J]. GEOSCIENTIFIC MODEL DEVELOPMENT, 2015, 8 (07) : 1991 - 2007
  • [10] Copernicus Climate Change Service, 2019, ECMWR, DOI 10.24381/CDS.BC91EDC3