Temperature regimes of northern taiga soils in the isolated permafrost zone of Western Siberia

被引:0
作者
O. Yu. Goncharova
G. V. Matyshak
A. A. Bobrik
N. G. Moskalenko
O. E. Ponomareva
机构
[1] Lomonosov Moscow State University,Faculty of Soil Science
[2] Siberian Branch of the Russian Academy of Sciences,Institute of the Earth Cryosphere
[3] Russian State Geological Prospecting University,undefined
来源
Eurasian Soil Science | 2015年 / 48卷
关键词
annual soil temperature characteristics; climate change; cryogenic soils; thermal diffusivity; peatlands; N-factor; Stagnic Albic Podzol; Histic Oxyaquic Turbic Cryosol (Arenic); Cryic Histosol;
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摘要
Soil temperature regimes were studied in three ecosystems of the north of Western Siberia in the zone of isolated permafrost: the forest ecosystem with gleyic loamy sandy podzol (Stagnic Albic Podzol), the flat-topped peat mound ecosystem with humus-impregnated loamy sandy to light loamy peat cryozem (Histic Oxyaquic Turbic Cryosol (Arenic)), and the peat mound (palsa) ecosystem with oligotrophic destructive permafrost-affected peat soil (Cryic Histosol). Annual temperature measurements in the soil profiles demonstrated that these soils function under different temperature regimes: very cold permafrost regime and cold nonpermafrost regime. The following annual temperature characteristics proved to be informative for the studied soils: sums of above-zero temperatures at the depths of 10 and 20 cm, the maximum depth of penetration of temperatures above 10°C, and the number of days with daily soil temperatures above (or below) 0°C at the depth of 20 cm. On the studied territory, the insulating effect of the snow cover in winter was at least two times more pronounced than the insulating effect of the vegetation cover in summer. Cryogenic soils of the studied region are characterized by the high buffering towards changing climatic parameters. This is explained by the presence of the litter and peat horizons with a very low thermal diffusivity and by the presence of permafrost at a relatively shallow depth with temperature gradients preventing penetration of heat to the permafrost table.
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页码:1329 / 1340
页数:11
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共 56 条
[1]  
Bykhovets S. S.(2007)Long-term observations of soil temperatures within the network of Russian meteorological stations Kriosfera Zemli 11 7-20
[2]  
Sorokovikov V. A.(2014)Production of carbon dioxide by soils of northern taiga of Western Siberia (Nadym Station) Kriosfera Zemli 2 66-71
[3]  
Martuganov R. A.(2008)Soil temperature regimes in the discontinuous permafrost zone in the east European Russian arctic Eurasian Soil Sci. 41 48-62
[4]  
Mamykin V. G.(2001)Thermal regime of soil in the north of Western Siberia Kriosfera Zemli 5 11-19
[5]  
Gilichinskii D. A.(2012)Interactions between seasonal snow cover, ground surface temperature and topography (Andes of Santiago, Chile, 33.5 S) Permafrost Periglacial Process 23 277-291
[6]  
Goncharova O. Yu.(1988)Observations of the’ thermal offset’ in near-surface mean annual ground temperatures at several sites near Mayo, Yukon Territory, Canada Arctic 41 99-104
[7]  
Matyshak G. V.(2009)Influence of vegetation on the ground thermal regime in continental Antarctica Geoderma 151 215-223
[8]  
Bobrik A. A.(2008)Active layer thermal regime under different vegetation conditions in permafrost areas. A case study at Signy Island (Maritime Antarctica) Geoderma 144 73-85
[9]  
Moskalenko N. G.(2006)Spatial distribution of ground surface temperatures and active layer depths in the Hövsgöl area, northern Mongolia Permafrost Periglacial Processes 17 357-369
[10]  
Mazhitova G. G.(1994)Identification of heat transfer processes during soil cooling, freezing, and thawing in Central Alaska Permafrost Periglacial Processes 5 217-235