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Recent Arctic tundra fire initiates widespread thermokarst development

机译:最近的北极苔原大火引发了广泛的热岩溶发展

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Fire-induced permafrost degradation is well documented in boreal forests, but the role of fires in initiating thermokarst development in Arctic tundra is less well understood. Here we show that Arctic tundra fires may induce widespread thaw subsidence of permafrost terrain in the first seven years following the disturbance. Quantitative analysis of airborne LiDAR data acquired two and seven years post-fire, detected permafrost thaw subsidence across 34% of the burned tundra area studied, compared to less than 1% in similar undisturbed, ice-rich tundra terrain units. The variability in thermokarst development appears to be influenced by the interaction of tundra fire burn severity and near-surface, ground-ice content. Subsidence was greatest in severely burned, ice-rich upland terrain (yedoma), accounting for ~50% of the detected subsidence, despite representing only 30% of the fire disturbed study area. Microtopography increased by 340% in this terrain unit as a result of ice wedge degradation. Increases in the frequency, magnitude, and severity of tundra fires will contribute to future thermokarst development and associated landscape change in Arctic tundra regions.
机译:火灾引起的多年冻土退化在北方森林中得到了充分的记录,但是人们对火灾在北极冻原中促进热岩溶发展的作用了解得很少。在这里,我们表明,在干扰发生后的最初7年中,北极冻原大火可能引起多年冻土地形的广泛融化沉降。火灾后两年和七年获取的机载LiDAR数据的定量分析表明,在研究的34%的冻原苔原区域中检测到了多年冻土融化沉陷,而在类似的未扰动,富含冰冻的冻原地形单位中,冻土融化沉降不足1%。冻原发展的可变性似乎受到苔原火烧伤严重程度与近地表,地下冰含量的相互作用的影响。在严重燃烧,富含冰的高地地形(yedoma)中,沉陷最大,尽管仅占火灾困扰研究区域的30%,但仍占所检测沉陷的约50%。由于冰楔的退化,该地形单元的微地形增加了340%。苔原火灾的频率,强度和严重程度的增加,将为北极苔原地区未来的喀斯特地貌发展和相关的景观变化做出贡献。

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