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Type: Journal Article
Author(s): Brandon M. Collins; Maggi Kelly; Jan W. van Wagtendonk; Scott L. Stephens
Publication Date: 2007

The effects of fire on vegetation vary based on the properties and amount of existing biomass (or fuel) in a forest stand, weather conditions, and topography. Identifying controls over the spatial patterning of fire-induced vegetation change, or fire severity, is critical in understanding fire as a landscape scale process. We use gridded estimates of fire severity, derived from Landsat ETM+ imagery, to identify the biotic and abiotic factors contributing to the observed spatial patterns of fire severity in two large natural fires. Regression tree analysis indicates the importance of weather, topography, and vegetation variables in explaining fire severity patterns between the two fires. Relative humidity explained the highest proportion of total sum of squares throughout the Hoover fire (Yosemite National Park, 2001). The lowest fire severity corresponded with increased relative humidity. For the Williams fire (Sequoia/Kings Canyon National Parks, 2003) dominant vegetation type explains the highest proportion of sum of squares. Dominant vegetation was also important in determining fire severity throughout the Hoover fire. In both fires, forest stands that were dominated by lodgepole pine (Pinus contorta) burned at highest severity, while red fir (Abies magnifica) stands corresponded with the lowest fire severities. There was evidence in both fires that lower wind speed corresponded with higher fire severity, although the highest fire severity in the Williams fire occurred during increased wind speed. Additionally, in the vegetation types that were associated with lower severity, burn severity was lowest when the time since last fire was fewer than 11 and 17 years for the Williams and Hoover fires, respectively. Based on the factors and patterns identified, managers can anticipate the effects of management ignited and naturally ignited fires at the forest stand and the landscape levels. © Springer Science+Business Media B.V. 2007.

Citation: Collins, B. M., M. Kelly, J. W. van Wagtendonk, and S. L. Stephens. 2007. Spatial patterns of large natural fires in Sierra Nevada wilderness areas. Landscape Ecology, v. 22, no. 4, p. 545-557. 10.1007/s10980-006-9047-5.

Cataloging Information

Regions:
Keywords:
  • Abies concolor
  • Abies magnifica
  • Abies spp.
  • biomass
  • dNBR - differenced (or delta) Normalized Burn Ratio
  • ecosystem dynamics
  • fire case histories
  • fire frequency
  • fire intensity
  • fire management
  • fire size
  • forest management
  • grasslands
  • humidity
  • Juniperus occidentalis
  • national parks
  • Nevada
  • Normalized Burn Ratio
  • Pinus contorta
  • Pinus jeffreyi
  • prescribed fires (chance ignition)
  • prescribed natural fire
  • regression tree
  • remote sensing
  • shrublands
  • Sierra Nevada
  • sloping terrain
  • statistical analysis
  • temperature
  • topography
  • vegetation surveys
  • wilderness areas
  • wildfires
  • wildland fire use
  • wind
  • Yosemite National Park
Tall Timbers Record Number: 21714Location Status: In-fileCall Number: Fire FileAbstract Status: Fair use, Okay, Reproduced by permission
Record Last Modified:
Record Maintained By: FRAMES Staff (https://www.frames.gov/contact)
FRAMES Record Number: 46057

This bibliographic record was either created or modified by Tall Timbers and is provided without charge to promote research and education in Fire Ecology. The E.V. Komarek Fire Ecology Database is the intellectual property of Tall Timbers.