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2023
Bernal AA, Kane JM, Knapp EE, Zald HSJ. Tree resistance to drought and bark beetle-associated mortality following thinning and prescribed fire treatments. Forest Ecology and Management. 2023;530. Available at: https://www.sciencedirect.com/science/article/pii/S0378112722007526.PDF icon Tree resistance to drought and bark beetle-associated mortality following thinning and prescribed fire treatments.pdf (7.81 MB)
Billings M, Carroll M, Paveglio T. Unprotected lands: A case study of a wildland-urban interface community in “No-Man's land”. Journal of Environmental Management. 2023;330.
Krueger ES, Levi MR, Achieng KO, et al. Using soil moisture information to better understand and predict wildfire danger: a review of recent developments and outstanding questions. International Journal of Wildland Fire. 2023;32(2).PDF icon WF22056.pdf (3.84 MB)
Ritter SM, Hoffman CM, Battaglia MA, Linn R, Mell WE. Vertical and Horizontal Crown Fuel Continuity Influences Group-Scale Ignition and Fuel Consumption. Fire. 2023;6(8).PDF icon fire-06-00321.pdf (2.34 MB)
Barnard DM, Green TR, Mankin KR, et al. Wildfire and climate change amplify knowledge gaps linking mountain source-water systems and agricultural water supply in the western United States. Agricultural Water Management. 2023;286.PDF icon Wildfire and climate change amplify knowledge gaps linking mountain source-water systems and agricultural water supply in the western United States.pdf (1.41 MB)
Brodie EG, Stewart JAE, Winsemius S, et al. Wildfire facilitates upslope advance in a shade-intolerant but not a shade-tolerant conifer. Ecological Applications. 2023.PDF icon Ecological Applications - 2023 - Brodie - Wildfire facilitates upslope advance in a shade%E2%80%90intolerant but not a-2.pdf (6.48 MB)
Taccaliti F, Marzano R, Bell TL, Lingua E. Wildland–Urban Interface: Definition and Physical Fire Risk Mitigation Measures, a Systematic Review. Fire. 2023;6(9). Available at: https://doi.org/10.3390/fire6090343.PDF icon fire-06-00343.pdf (1.68 MB)
2022
Champ PA, Brenkert-Smith H, Riley JP, et al. Actionable social science can guide community level wildfire solutions. An illustration from North Central Washington, US. International Journal of Disaster Risk Reduction. 2022;82.PDF icon 1-s2.0-S2212420922006070-main.pdf (2.48 MB)
Champ PA, Brenkert-Smith H, Riley JP, et al. Actionable social science can guide community level wildfire solutions. An illustration from North Central Washington, US. International Journal of Disaster Risk Reduction. 2022;82.PDF icon 1-s2.0-S2212420922006070-main.pdf (2.48 MB)
Li C, Handwerger AL, Wang J, et al. Augmentation of WRF-Hydro to simulate overland-flow- and streamflow-generated debris flow susceptibility in burn scars. Natural Hazards and Earth System Sciences. 2022;22:2317–2345.PDF icon Li et al_2022_NatHazards_Augmentation of WRF Hydro to simulate debris flow susceptibility in burn scars.pdf (1.36 MB)
Reilly MJ, Zuspan A, Halofsky JS, et al. Cascadia Burning: The historic, but not historically unprecedented, 2020 wildfires in the Pacific Northwest, USA. Ecosphere. 2022;13.PDF icon Reilly et al_2022_Cascadia Burning_Historic but not historically unprecedented 2022 wildfires in PNW.pdf (9.62 MB)
Snitker G, Roos CI, Sullivan, III AP, et al. A collaborative agenda for archaeology and fire science. Nature Ecology & Evolution. 2022.PDF icon Snitker_et_al_2022_NatureEcoEvo_A collaborative agenda for achaeology and fire science.pdf (2.99 MB)
Iniguez JM, Evans AM, Dadashi S, et al. Comparing Geography and Severity of Managed Wildfires in California and the Southwest USA before and after the Implementation of the 2009 Policy Guidance. Forests. 2022;13(793).PDF icon Iniguez et al_2022_Comparing geography and severity of managed wildfires in CA and SW USA before and after 2009 policy guidance.pdf (1.64 MB)
Weise DR, Johnson TJ, Myers TL, et al. Comparing two methods to measure oxidative pyrolysis gases in a wind tunnel and in prescribed burns. International Journal of Wildland Fire. 2022;32. Available at: https://www.publish.csiro.au/wf/pdf/WF22079.PDF icon Comparing two methods to measure oxidative pyrolysis gases in a wind tunnel and in prescribed burns.pdf (2.65 MB)
Weise DR, Johnson TJ, Myers TL, et al. Comparing two methods to measure oxidative pyrolysis gases in a wind tunnel and in prescribed burns. International Journal of Wildland Fire. 2022;32. Available at: https://www.publish.csiro.au/wf/pdf/WF22079.PDF icon Comparing two methods to measure oxidative pyrolysis gases in a wind tunnel and in prescribed burns.pdf (2.65 MB)
Weise DR, Johnson TJ, Myers TL, et al. Comparing two methods to measure oxidative pyrolysis gases in a wind tunnel and in prescribed burns. International Journal of Wildland Fire. 2022;32. Available at: https://www.publish.csiro.au/wf/pdf/WF22079.PDF icon Comparing two methods to measure oxidative pyrolysis gases in a wind tunnel and in prescribed burns.pdf (2.65 MB)
Shaw DC, Beedlow PA, E. Lee H, et al. The complexity of biological disturbance agents, fuels heterogeneity, and fire in coniferous forests of the western United States. Forest Ecology and Management. 2022;525.PDF icon Shaw et al_2022_ForEcolMgmt_Complexity of BDAs fuels heterogenity and fire in conifer forests of West US.pdf (1.25 MB)
Kearns EJ, Saah D, Levine CR, et al. The Construction of Probabilistic Wildfire Risk Estimates for Individual Real Estate Parcels for the Contiguous United States. Fire. 2022;5(117).PDF icon Kearns et al_2022_Fire_The Construction of ProbabilisticWildfire Risk Estimates for Individual Real Estate Parcels for US.pdf (7.09 MB)
Chavardès RD, Danneyrolles V, Portier J, et al. Converging and diverging burn rates in North American boreal forests from the Little Ice Age to the present. International Journal of Wildland Fire. 2022;31(12):1184-1193.PDF icon Chavardes et al 2022_IJWF_Converging and diverging burn rates in N American boreal forests from little ice age to present.pdf (2.54 MB)
Beeton TA, Cheng AS, Colavito MM. Cultivating Collaborative Resilience to Social and Ecological Change: An Assessment of Adaptive Capacity, Actions, and Barriers Among Collaborative Forest Restoration Groups in the United States. Journal of Forestry. 2022.PDF icon Beeton et al_2022_Collaborative Resilience CFLR Groups.pdf (9.88 MB)
Belavenutti P, Ager AA, Day MA, Chung W. Designing forest restoration projects to optimize the application of broadcast burning. Ecological Economics. 2022.PDF icon Belavenutti et al_2022_Ecological Econ_Designing forest restoration projects to optimize the application of broadcast burning.pdf (3.12 MB)
Palsa E, Bauer M, Evers C, Hamilton M, Nielsen-Pincus M. Engagement in local and collaborative wildfire risk mitigation planning across the western U.S.—Evaluating participation and diversity in Community Wildfire Protection Plans. Plos One. 2022;17(2).PDF icon Palsa et al 2022_Engagement_in_local_collaborative_wf_risk.pdf (1.3 MB)
Burke M, Heft-Neal S, Li J, et al. Exposures and behavioural responses to wildfire smoke. Nature Human Behavior. 2022.PDF icon Burke et al_2022_Nature Human Behavior_Exposures and behavioural responses to wildfire smoke.pdf (8.57 MB)
Burke M, Heft-Neal S, Li J, et al. Exposures and behavioural responses to wildfire smoke. Nature Human Behavior. 2022.PDF icon Burke et al_2022_Nature Human Behavior_Exposures and behavioural responses to wildfire smoke.pdf (8.57 MB)
Burke M, Heft-Neal S, Li J, et al. Exposures and behavioural responses to wildfire smoke. Nature Human Behavior. 2022.PDF icon Burke et al_2022_Nature Human Behavior_Exposures and behavioural responses to wildfire smoke.pdf (8.57 MB)

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