Publications Library
Fire weather conditions and fire-atmosphere interactions observed during low-intensity prescribed fires - RxCADRE 2012 International Journal of Wildland Fire. 2016;25.
. The Fire Weather Accuracy and Lightning Ignition Probability System . ( ).; 2015:26 p. JFSP 10-1-07-29_final_report.pdf (1.38 MB)
. Fire severity in southwestern Colorado unaffected by spruce beetle outbreak Ecological Applications. 2015;In Press.
. Fire severity and tree regeneration following bark beetle outbreaks: the role of outbreak stage and burning conditions Ecological Applications. 2014;24.
. Fire severity and cumulative disturbance effects in the post-mountain pine beetle lodgepole pine forests of the Pole Creek Fire Forest Ecology and Management. 2016;366.
. Fire Science Exchange Network.; 2017. FINAL_FSEN_Factsheet-072017.pdf (1.76 MB)
. Fire Science Core Curriculum. ( ). Corvallis, OR: OSU Extension Service; 2017:197 p. Available at: https://catalog.extension.oregonstate.edu/em9172.
. Fire regimes of quaking aspen in the Mountain West. Forest Ecology and Management. 2013;299:12.
. Fire Refugia: What Are They, and Why Do They Matter for Global Change? BioScience. 2018;68(12).
. The fire pulse: wildfire stimulates flux of aquatic prey to terrestrial habitats driving increase in riparian consumers Canadian Journal of Fisheries and Aquatic Sciences. 2010;67.
. Fire Learning Network Field Guide. The Nature Conservancy; 2014. FLN-Field-Guide-Nov2014.pdf (2.97 MB)
Fire History and Forest Structure along an Elevational Gradient in the Southern Cascade Range, Oregon, USA Fire Ecology. 2017;13(1).
. Fire, Fuels, and Streams: The Effects and Effectiveness of Riparian Treatments.; 2015. FSDigest21.pdf (968.4 KB)
. The fire frequency-severity relationship and the legacy of fire suppression in California forests Ecosphere. 2015;6(1).
. Fire frequency drives decadal changes in soil carbon and nitrogen and ecosystem productivity Nature. 2018;553.
. Fire enhances whitebark pine seedling establishment, survival, and growth. Fire Ecology. 2015;11(2).
. Fire Effects on the Spatial Patterning of Soil Properties in Sagebrush Steppe, USA: A Meta-Analysis. International Journal of Wildland Fire. 2012;21(5):12. Available at: http://bcal.geology.isu.edu/docs/Sankey_et_al_IJWF_2012.pdf.
. Fire effects on aquatic ecosystems: an assessment of the current state of the science Freshwater Science. 2015;34(4). Available at: http://www.jstor.org/stable/10.1086/684073 . Bixby_et_al_2015_1_.pdf (252 KB)
. Fire deficits have increased drought‐sensitivity in dry conifer forests; fire frequency and tree‐ring carbon isotope evidence from Central Oregon Global Change Biology. 2019.
. Fire, CO2, and climate effects on modeled vegetation and carbon dynamics in western Oregon and Washington PloS One. 2019;14(1).
. Fire behaviour and smoke modelling: model improvement and measurement needs for next-generation smoke research and forecasting systems International Journal of Wildland Fire. 2019;28(8).
. Fire behavior in masticated fuels: A review. Forest Ecology and Management. 2014;314.
Fire as a restoration tool: A decision framework for predicting the control or enhancement of plants using fire. Restoration Ecology. 2010;18(3):10. j.1526-100X.2010.00658.x.pdf (556.61 KB)
. Fire and tree death: understanding and improving modeling of fire-induced tree mortality Environmental Research Letters. 2018;13(11). Available at: http://iopscience.iop.org/article/10.1088/1748-9326/aae934/meta.
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