4.5 Article

Strong Gradients in Forest Sensitivity to Climate Change Revealed by Dynamics of Forest Fire Cycles in the Post Little Ice Age Era

期刊

JOURNAL OF GEOPHYSICAL RESEARCH-BIOGEOSCIENCES
卷 122, 期 10, 页码 2605-2616

出版社

AMER GEOPHYSICAL UNION
DOI: 10.1002/2017JG003826

关键词

forest fires; natural disturbances; dendrochronology; climate forcing; boreal biome; forest resilience

资金

  1. Canadian National Research Council Canada through Discovery Development Grant [DDG-2015-00026]
  2. Swedish Research Council FORMAS [239-2014-1866]
  3. EU Project PREREAL (Belmont Forum grant) [292-2015-11-30-13-43-09]
  4. Nordic Council of Ministers [12262]
  5. international consortiums GDRI Cold Forests and NordicDendro

向作者/读者索取更多资源

The length of the fire cycle is a critical factor affecting the vegetation cover in boreal and temperate regions. However, its responses to climate change remain poorly understood. We reanalyzed data from earlier studies of forest age structures at the landscape level, in order to map the evolution of regional fire cycles across Eastern North American boreal and temperate forests, following the termination of the Little Ice Age (LIA). We demonstrated a well-defined spatial pattern of post-LIA changes in the length of fire cycles toward lower fire activity during the 1800s and 1900s. The western section of Eastern North America (west of 77 degrees W) experienced a decline in fire activity as early as the first half of the 1800s. By contrast, the eastern section showed these declines as late as the early 1900s. During a regionally fire-prone period of the 1910s-1920s, forests in the western section of Eastern boreal North America burned more than forests in the eastern section. The climate appeared to dominate over vegetation composition and human impacts in shaping the geographical pattern of the post-LIA change in fire activity. Changes in the atmospheric circulation patterns following the termination of the LIA, specifically changes in Arctic Oscillation and the strengthening of the Continental Polar Trough, were likely drivers of the regional fire dynamics.

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