Quantifying the effects of wildfire on changes in soil properties by surface burning of soils from the Boulder Creek Critical Zone Observatory

Study region: This study used intact soil cores collected at the Boulder Creek Critical Zone Observatory near Boulder, Colorado, USA to explore fire impacts on soil properties. Study focus: Three soil scenarios were considered: unburned control soils, and low- and high-temperature burned soils. We e...

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Main Authors: Celeste Wieting, Brian A. Ebel, Kamini Singha
Format: Article
Language:English
Published: Elsevier 2017-10-01
Series:Journal of Hydrology: Regional Studies
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2214581817301209
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spelling doaj-227485d856fe4454a297218aa4d96f062020-11-25T01:12:47ZengElsevierJournal of Hydrology: Regional Studies2214-58182017-10-0113C435710.1016/j.ejrh.2017.07.006Quantifying the effects of wildfire on changes in soil properties by surface burning of soils from the Boulder Creek Critical Zone ObservatoryCeleste Wieting0Brian A. Ebel1Kamini Singha2Hydrologic Science and Engineering Program, Colorado School of Mines, 1500 Illinois St., Golden, CO 80401, USAU.S. Geological Survey, National Research Program, Kipling St, Lakewood, CO 80225, USAHydrologic Science and Engineering Program, Colorado School of Mines, 1500 Illinois St., Golden, CO 80401, USAStudy region: This study used intact soil cores collected at the Boulder Creek Critical Zone Observatory near Boulder, Colorado, USA to explore fire impacts on soil properties. Study focus: Three soil scenarios were considered: unburned control soils, and low- and high-temperature burned soils. We explored simulated fire impacts on field-saturated hydraulic conductivity, dry bulk density, total organic carbon, and infiltration processes during rainfall simulations. New hydrological insights for the region: Soils burned to high temperatures became more homogeneous with depth with respect to total organic carbon and bulk density, suggesting reductions in near-surface porosity. Organic matter decreased significantly with increasing soil temperature. Tension infiltration experiments suggested a decrease in infiltration rates from unburned to low-temperature burned soils, and an increase in infiltration rates in high-temperature burned soils. Non-parametric statistical tests showed that field-saturated hydraulic conductivity similarly decreased from unburned to low-temperature burned soils, and then increased with high-temperature burned soils. We interpret these changes result from the combustion of surface and near-surface organic materials, enabling water to infiltrate directly into soil instead of being stored in the litter and duff layer at the surface. Together, these results indicate that fire-induced changes in soil properties from low temperatures were not as drastic as high temperatures, but that reductions in surface soil water repellency in high temperatures may increase infiltration relative to low temperatures.http://www.sciencedirect.com/science/article/pii/S2214581817301209WildfireSoil coreBulk densityHydraulic conductivityInfiltrationBoulder creek critical zone observatory
collection DOAJ
language English
format Article
sources DOAJ
author Celeste Wieting
Brian A. Ebel
Kamini Singha
spellingShingle Celeste Wieting
Brian A. Ebel
Kamini Singha
Quantifying the effects of wildfire on changes in soil properties by surface burning of soils from the Boulder Creek Critical Zone Observatory
Journal of Hydrology: Regional Studies
Wildfire
Soil core
Bulk density
Hydraulic conductivity
Infiltration
Boulder creek critical zone observatory
author_facet Celeste Wieting
Brian A. Ebel
Kamini Singha
author_sort Celeste Wieting
title Quantifying the effects of wildfire on changes in soil properties by surface burning of soils from the Boulder Creek Critical Zone Observatory
title_short Quantifying the effects of wildfire on changes in soil properties by surface burning of soils from the Boulder Creek Critical Zone Observatory
title_full Quantifying the effects of wildfire on changes in soil properties by surface burning of soils from the Boulder Creek Critical Zone Observatory
title_fullStr Quantifying the effects of wildfire on changes in soil properties by surface burning of soils from the Boulder Creek Critical Zone Observatory
title_full_unstemmed Quantifying the effects of wildfire on changes in soil properties by surface burning of soils from the Boulder Creek Critical Zone Observatory
title_sort quantifying the effects of wildfire on changes in soil properties by surface burning of soils from the boulder creek critical zone observatory
publisher Elsevier
series Journal of Hydrology: Regional Studies
issn 2214-5818
publishDate 2017-10-01
description Study region: This study used intact soil cores collected at the Boulder Creek Critical Zone Observatory near Boulder, Colorado, USA to explore fire impacts on soil properties. Study focus: Three soil scenarios were considered: unburned control soils, and low- and high-temperature burned soils. We explored simulated fire impacts on field-saturated hydraulic conductivity, dry bulk density, total organic carbon, and infiltration processes during rainfall simulations. New hydrological insights for the region: Soils burned to high temperatures became more homogeneous with depth with respect to total organic carbon and bulk density, suggesting reductions in near-surface porosity. Organic matter decreased significantly with increasing soil temperature. Tension infiltration experiments suggested a decrease in infiltration rates from unburned to low-temperature burned soils, and an increase in infiltration rates in high-temperature burned soils. Non-parametric statistical tests showed that field-saturated hydraulic conductivity similarly decreased from unburned to low-temperature burned soils, and then increased with high-temperature burned soils. We interpret these changes result from the combustion of surface and near-surface organic materials, enabling water to infiltrate directly into soil instead of being stored in the litter and duff layer at the surface. Together, these results indicate that fire-induced changes in soil properties from low temperatures were not as drastic as high temperatures, but that reductions in surface soil water repellency in high temperatures may increase infiltration relative to low temperatures.
topic Wildfire
Soil core
Bulk density
Hydraulic conductivity
Infiltration
Boulder creek critical zone observatory
url http://www.sciencedirect.com/science/article/pii/S2214581817301209
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