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PLOS ONE  2014 

Using Unplanned Fires to Help Suppressing Future Large Fires in Mediterranean Forests

DOI: 10.1371/journal.pone.0094906

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Abstract:

Despite the huge resources invested in fire suppression, the impact of wildfires has considerably increased across the Mediterranean region since the second half of the 20th century. Modulating fire suppression efforts in mild weather conditions is an appealing but hotly-debated strategy to use unplanned fires and associated fuel reduction to create opportunities for suppression of large fires in future adverse weather conditions. Using a spatially-explicit fire–succession model developed for Catalonia (Spain), we assessed this opportunistic policy by using two fire suppression strategies that reproduce how firefighters in extreme weather conditions exploit previous fire scars as firefighting opportunities. We designed scenarios by combining different levels of fire suppression efficiency and climatic severity for a 50-year period (2000–2050). An opportunistic fire suppression policy induced large-scale changes in fire regimes and decreased the area burnt under extreme climate conditions, but only accounted for up to 18–22% of the area to be burnt in reference scenarios. The area suppressed in adverse years tended to increase in scenarios with increasing amounts of area burnt during years dominated by mild weather. Climate change had counterintuitive effects on opportunistic fire suppression strategies. Climate warming increased the incidence of large fires under uncontrolled conditions but also indirectly increased opportunities for enhanced fire suppression. Therefore, to shift fire suppression opportunities from adverse to mild years, we would require a disproportionately large amount of area burnt in mild years. We conclude that the strategic planning of fire suppression resources has the potential to become an important cost-effective fuel-reduction strategy at large spatial scale. We do however suggest that this strategy should probably be accompanied by other fuel-reduction treatments applied at broad scales if large-scale changes in fire regimes are to be achieved, especially in the wider context of climate change.

References

[1]  Keeley JE, Bond WJ, Bradstock RA, Pausas JG, Rundel PW (2012) Fire in Mediterranean Ecosystems. New York: Cambridge University Press. 515 p.
[2]  Pi?ol J, Beven K, Viegas DX (2005) Modelling the effect of fire-exclusion and prescribed fire on wildfire size in Mediterranean ecosystems. Ecol Model 183: 397–409. doi: 10.1016/j.ecolmodel.2004.09.001
[3]  Moreira F, Viedma O, Arianoutsou M, Curt T, Koutsias N, et al. (2011) Landscape–wildfire interactions in southern Europe: Implications for landscape management. J Environ Manage 92: 2389–2402. doi: 10.1016/j.jenvman.2011.06.028
[4]  Brotons L, Aquilué N, De Cáceres M, Fortin MJ, Fall A (2013) How fire history, fire suppression practices and climate change affect wildfire regimes in Mediterranean landscapes. PLoS ONE 8(5): e62392. doi: 10.1371/journal.pone.0062392
[5]  Pi?ol J, Terradas J, Lloret F (1998) Climate warming, wildfire hazard and wildfire occurrence in coastal eastern Spain. Clim Change 38: 345–357.
[6]  Reinhardt ED, Keane RE, Calkin DE, Cohen JD (2008) Objectives and considerations for wildland fuel treatment in forested ecosystems of the interior western United States. For Ecol Manage 256: 1997–2006. doi: 10.1016/j.foreco.2008.09.016
[7]  San-Miguel-Ayanz J, Moreno JM, Camia A (2013) Analysis of large fires in European Mediterranean landscapes: Lessons learned and perspectives. For Ecol Manage 294: 11–22.
[8]  Williams J (2013) Exploring the onset of high-impact mega-fires through a forest land management prism. For Ecol Manage 294: 4–10. doi: 10.1016/j.foreco.2012.06.030
[9]  Lloret F, Pi?ol J, Castellnou M (2009) Wildfires. In: Woodward JC, editor. The Physical Geography of the Mediterranean Basin. Oxford University Press, Oxford, pp. 541–558.
[10]  Loepfe L, Martinez-Vilalta J, Oliveres J, Pi?ol J, Lloret F (2010) Feedbacks between fuel reduction and landscape homogenisation determine fire regimes in three Mediterranean areas. For Ecol Manage 259: 2366–2374. doi: 10.1016/j.foreco.2010.03.009
[11]  Keeley JE, Fotheringham CJ, Morais M (1999) Reexamining fire suppression impacts on brushland fire regimes. Science 284: 1829–1832. doi: 10.1126/science.284.5421.1829
[12]  Pausas J, Fernández-Mu?oz S (2011) Fire regime changes in the Western Mediterranean Basin: from fuel-limited to drought-driven fire regime. Clim. Change 110: 215–216. doi: 10.1007/s10584-011-0060-6
[13]  Costa P, Castellnou M, Larra?aga A, Miralles M, Kraus D (2011) La Prevenció dels grans Incendis Forestals adaptada a l'Incendi Tipus. Unitat Tècnica del GRAF. Divisió de Grups Operatius Especials. Direcció General de Prevenció, Extinció d'Incendis i Salvaments. Departament d'Interior. Generalitat de Catalunya. 87 p.
[14]  McIver J, Erickson K, Youngblood A (2012) Principal Short-Term Findings of the National Fire and Fire Surrogates Study. Gen. Tech. Rep. PNW-GTR-860. Portland, OR: U.S. Department of Agriculture, Forest Service, Pacific Northwest Research Station. 210 p.
[15]  Price OF, Bradstock RA, Keeley JE, Syphard AD (2012) The impact of antecedent fire area on burned area in southern California coastal ecosystems. J Environ Manage 113: 301–307. doi: 10.1016/j.jenvman.2012.08.042
[16]  Price OF, Russell-Smith J, Watt F (2012) The influence of prescribed fire on the extent of unplanned fire in savanna landscapes of western Arnhem Land, Australia. Int J Wildland Fire 21: 297–302. doi: 10.1071/wf10079
[17]  Stephens SL, James D, Boerner J, Fettig J, Joseph B, et al.. (2012) The effects of forest fuel reduction treatments in the United States. BioScience 62: , 549–560.
[18]  McCaw WL (2013) Managing forest fuels using prescribed fire – A perspective from southern Australia. For Ecol Manage 294: 217–224. doi: 10.1016/j.foreco.2012.09.012
[19]  Navarro LM, Pereira HM (2012) Rewilding abandoned landscapes in Europe. Ecosystems 15: 900–912. doi: 10.1007/s10021-012-9558-7
[20]  Stellmes M, R?der A, Udelhoven T, Hill J (2013) Mapping syndromes of land change in Spain with remote sensing time series, demographic and climatic data. Land Use Policy 30: 685–702. doi: 10.1016/j.landusepol.2012.05.007
[21]  Boer MM, Sadler RJ, Wittkuhn R, McCaw L, Grierson PF (2009) Long-term impacts of prescribed burning on regional extent and incidence of wildfires–Evidence from 50 years of active fire management in SW Australian forests. For Ecol Manage 259: 132–142. doi: 10.1016/j.foreco.2009.10.005
[22]  Price OF, Bradstock R (2011) Quantifying the influence of fuel management and weather on the annual extent of unplanned fires in the Sydney region of Australia. Int J Wildland Fire 20: 142–151. doi: 10.1071/wf10016
[23]  Houtman RM, Montgomery CA, Gagnon AR, Calkin DE, Dietterich TG, et al.. (2013) Allowing a wildfire to burn: estimating the effect on future fire suppression costs. Int J Wildland Fire. Available: http://dx.doi.org/10.1071/WF12157.
[24]  Adams MA (2013) Mega-fires, tipping points and ecosystem services: Managing forests and woodlands in an uncertain future. For Ecol Manage 294: 250–261. doi: 10.1016/j.foreco.2012.11.039
[25]  Gracia C, Burriel C, Mata J, Ibanez T, Vayreda J (2000) Inventari Ecològic i Forestal de Catalunya. Centre de Recerca Ecològica i Aplicacions Forestals. Bellaterra: Centre de Recerca Ecològica i Aplicacions Forestals (CREAF).
[26]  CORINE (2006) Land-use land-cover database 1:250,000. European Environment Agency, Copenhagen, Denmark.
[27]  Díaz-Delgado R, Lloret F, Pons X (2004) Spatial patterns of fire occurrence in Catalonia, NE Spain. Landscape Ecol 19: 731–745. doi: 10.1007/s10980-005-0183-1
[28]  Debussche M, Lepart J, Dervieux A (1999) Mediterranean landscape changes: evidence from old postcards. Global Ecol Biogeogr 8: 3–15. doi: 10.1046/j.1365-2699.1999.00316.x
[29]  DARP (1999) Foc Verd II. Programa de gestió del risc d'incendi forestall. Generalitat de Catalunya, Barcelona, Spain.
[30]  De Cáceres M, Brotons L, Aquilué N, Fortin MJ (2013) The combined effects of land use legacies and novel fire regimes on bird distributions in the Mediterranean. J Biogeogr 40: 1535–1547. doi: 10.1111/jbi.12111
[31]  Fall A, Fall J (2001) A domain-specific language for models of landscape dynamics. Ecol Model 141: 1–18. doi: 10.1016/s0304-3800(01)00334-9
[32]  Castellnou M, Pagés J, Miralles M, Pique M (2009) Tipificación de los incendios forestales de Catalu?a. Elaboración del mapa de incendios de dise?o como herramienta para la gestión forestal, In: 5°Congreso Forestal. ávila. pp. 1–15.
[33]  Rodrigo A, Retana J, Picó FX (2004) Direct regeneration is not the only response of Mediterranean forests to large fires. Ecology 85: 716–729. doi: 10.1890/02-0492
[34]  R Core Team, 2013. R: A language and environment for statistical computing. R Foundation for Statistical Computing, Vienna, Austria. ISBN 3-900051-07-0. Available: http://www.R-project.org/.
[35]  Minnich R, Chou Y (1997) Wildland fire patch dynamics in the chaparral of Southern California and Northern Baja California. Int J Wildland Fire 7: 221–248. doi: 10.1071/wf9970221
[36]  Moritz MA, Keeley JE, Johnson EA, Schaffner AA (2004) Testing a basic assumption of shrubland fire management: how important is fuel age? Front Ecol Environ 2: 67–72. doi: 10.1890/1540-9295(2004)002[0067:tabaos]2.0.co;2
[37]  Minnich RA (1983) Fire mosaics in Southern California and Northern Baja California. Science 219: 1287–1294. doi: 10.1126/science.219.4590.1287
[38]  Minnich RA (2001) An integrated model of two fire regimes. Cons Biol 15: 1549–1553. doi: 10.1046/j.1523-1739.2001.01067.x
[39]  Pi?ol J, Castellnou M, Beven KJ (2007) Conditioning uncertainty in ecological models: assessing the impact of fire management strategies. Ecol Model 207: 34–44. doi: 10.1016/j.ecolmodel.2007.03.020
[40]  Lloret F, Calvo E, Pons X, Díaz-Delgado R (2002) Wildfires and landscape patterns in the Eastern Iberian Peninsula. Landscape Ecol 17: 745–759. doi: 10.1023/a:1022966930861
[41]  Bielsa I, Pons X, Bunce B (2005) Agricultural abandonment in the north Eastern Iberian Peninsula: the use of basic landscape metrics to support planning. J Environ Planning Manage 48: 85–102. doi: 10.1080/0964056042000308166
[42]  Vega-García C, Chuvieco E (2006) Applying local measures of spatial heterogeneity to Landsat-TM images for predicting wildfire occurrence in Mediterranean landscapes. Landscape Ecol 21: 595–605. doi: 10.1007/s10980-005-4119-5
[43]  Alcamo J, Moreno JM, Nováky B, Bindi M, Corobov R, et al.. (2007) Chapter 12: Europe. In: Parry ML, Canziani OF, Palutikof JP, Van der Linden PJ, Hanson C.E., editors. Climate Change 2007: impacts, adaptation and vulnerability. Contribution of Working Group II to the Fourth Assessment Report of the Intergovernmental Panel on Climate Change. Cambridge University Press. Cambridge. pp. 543–566.
[44]  Liu Y, Stanturf J, Goodrick S (2010) Trends in global wildfire potential in a changing climate. For Ecol Manage 259: 685–697. doi: 10.1016/j.foreco.2009.09.002
[45]  Loepfe L, Martinez-Vilalta J, Pi?ol J (2012) Management alternatives to offset climate change effects on Mediterranean fire regimes in NE Spain. Clim Change 115: 693–707. doi: 10.1007/s10584-012-0488-3
[46]  Pausas JG, Paula S (2012) Fuel shapes the fire–climate relationship: evidence from Mediterranean ecosystems. Global Ecol Biogeogr 21: 1074–1082. doi: 10.1111/j.1466-8238.2012.00769.x
[47]  Vilen T, Fernandes PM (2011) Forest fires in Mediterranean countries: CO2 emissions and mitigation possibilities through prescribed burning. Environ Manage 48: 558–567. doi: 10.1007/s00267-011-9681-9
[48]  Finney MA, Seli RC, McHugh CW, Ager AA, Bahro B, et al. (2007) Simulation of long-term landscape-level fuel treatment effects on large wildfires. Int J Wildland Fire 16: 712–727. doi: 10.1071/wf06064
[49]  Terradas J, Pi?ol J (1996) Els grans incendis: condicions meteorològiques i de vegetació per al seu desenvolupament, In: Terradas J., editor. Ecologia del Foc. Proa. Barcelona. Espa?a. pp. 63–75.
[50]  Gonzalez-Olabarria JR, Brotons L, Gritten D, Tudela A, Teres JA (2012) Identifying location and causality of fire ignition hotspots in a Mediterranean region. Int J Wildland Fire 21: 905–914. doi: 10.1071/wf11039
[51]  Liang J, Calkin DE, Gebert KM, Venn TJ, Silverstein RP (2008) Factors influencing large wildland fire suppression expenditures. Int J Wildland Fire 17: 650–659. doi: 10.1071/wf07010
[52]  Román MV, Azqueta D, Rodrígues M (2013) Methodological approach to assess the socio-economic vulnerability to wildfires in Spain. For Ecol Manage 294: 158–165. doi: 10.1016/j.foreco.2012.07.001
[53]  Houtman RM (2011) Letting wildfires burn: modeling the change in future suppression costs as the result of a suppress versus a let-burn management choice. MSc thesis. Oregon State University. Corvallis, OR.

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