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International Journal of Wildland Fire International Journal of Wildland Fire Society
Journal of the International Association of Wildland Fire
RESEARCH ARTICLE

The effect of mastication on surface fire behaviour, fuels consumption and tree mortality in pine flatwoods of Florida, USA

Jesse K. Kreye A B C and Leda N. Kobziar B
+ Author Affiliations
- Author Affiliations

A Current address: Forest and Wildlife Research Center, Mississippi State University, Box 9681, Mississippi State, MS, 39762, USA.

B School of Forest Resources and Conservation, University of Florida, Newins-Ziegler Hall, Gainesville, FL, 32611, USA.

C Corresponding author. Email: jesse.kreye@msstate.edu

International Journal of Wildland Fire 24(4) 573-579 https://doi.org/10.1071/WF14186
Submitted: 14 October 2014  Accepted: 15 December 2014   Published: 20 February 2015

Abstract

Mastication of understorey shrubs and small trees to reduce fire hazard has become a widespread forest management practice, but few empirical studies have quantified the effects of this mechanical treatment on actual fire behaviour and fire effects at the stand scale. We conducted experimental burns in masticated pine flatwoods with palmetto/gallberry understories, a common ecosystem of the Southern US Coastal Plain. Fire behaviour (flame height, rate of spread) and fire effects were compared between treated and untreated sites burned in the typical winter prescribed burning season. Mastication effectively reduced flame heights by 66%, but recovering shrubs (cover, height) influenced fire behaviour within six months following treatment, suggesting time-limited effectiveness. Trees had less crown scorch and bole char in masticated sites, but tree mortality was minimal on both treated and untreated sites. Consumption of masticated fuel was substantial across both treatments, but little duff was consumed under the moist soil conditions. When burning is conducted soon after treatment, mastication may effectively reduce fire behaviour in pine flatwoods sites, but the duration of treatment efficacy remains unclear.

Additional keywords: crown scorch, fire behaviour, fire effects, fuels treatments, prescribed fire.


References

Agee JK, Skinner CN (2005) Basic principles of forest fuel reduction treatments. Forest Ecology and Management 211, 83–96.
Basic principles of forest fuel reduction treatments.Crossref | GoogleScholarGoogle Scholar |

Battaglia MA, Rocca ME, Rhoades CC, Ryan MG (2010) Surface fuel loadings within mulching treatments in Colorado coniferous forests. Forest Ecology and Management 260, 1557–1566.
Surface fuel loadings within mulching treatments in Colorado coniferous forests.Crossref | GoogleScholarGoogle Scholar |

Bradley T, Gibson J, Bunn W (2006) Fire severity and intensity during spring burning in natural and masticated mixed shrub woodlands. In ‘Fuels Management – How to Measure Success: Conference Proceedings’, 28–30 March 2006, Portland, OR. (Eds PL Andrews, BW Butler) USDA Forest Service, Rocky Mountain Research Station, Proceedings RMRS-P-41, pp. 419–428. (Fort Collins, CO)

Brockway DG, Outcalt KW, Estes BL, Rummer RB (2009) Vegetation response to midstorey mulching and prescribed burning for wildfire hazard reduction and longleaf pine (Pinus palustris Mill.) ecosystem restoration. Forestry 82, 299–314.
Vegetation response to midstorey mulching and prescribed burning for wildfire hazard reduction and longleaf pine (Pinus palustris Mill.) ecosystem restoration.Crossref | GoogleScholarGoogle Scholar |

Brose P, Wade D (2002) Potential fire behavior in pine flatwoods forests following three different fuel reduction techniques. Forest Ecology and Management 163, 71–84.
Potential fire behavior in pine flatwoods forests following three different fuel reduction techniques.Crossref | GoogleScholarGoogle Scholar |

Brown JK (1974) Handbook for inventorying downed woody material. USDA Forest Service, Intermountain Forest and Range Experiment Station, General Technical Report GTR-INT-16. (Ogden, UT)

Brown JK (1981) Bulk densities of nonuniform surface fuels and their application to fire modeling. Forest Science 27, 667–683.

Busse MD, Bussea MD, Fiddler GO, Shestak CJ, Powers RF (2005) Lethal soil temperatures during burning of masticated forest residues. International Journal of Wildland Fire 14, 267–276.
Lethal soil temperatures during burning of masticated forest residues.Crossref | GoogleScholarGoogle Scholar |

Chen E, Gerber JF (1990) Climate. In ‘Ecosystems of Florida’. (Eds RL Myers, JJ Ewel) pp. 11–32. (University of Central Florida Press: Orlando, FL)

Dimitrakopoulos AP, Papaioannou KK (2001) Flammability assessment of Mediterranean forest fuels. Fire Technology 37, 143–152.
Flammability assessment of Mediterranean forest fuels.Crossref | GoogleScholarGoogle Scholar |

Gagnon PR, Passmore HA, Platt WJ, Myers JA, Paine CET, Harms KE (2010) Does pyrogenicity protect burning plants? Ecology 91, 3481–3486.
Does pyrogenicity protect burning plants?Crossref | GoogleScholarGoogle Scholar | 21302818PubMed |

Glitzenstein JS, Streng DR, Achtemeier GL, Naeher LP, Wade DD (2006) Fuels and fire behavior in chipped and unchipped plots: implications for land management near the wildland/urban interface. Forest Ecology and Management 236, 18–29.
Fuels and fire behavior in chipped and unchipped plots: implications for land management near the wildland/urban interface.Crossref | GoogleScholarGoogle Scholar |

Hintze J (2012) NCSS and PASS. Number-crunching Statistical Systems, Version 2008. (NCSS, LLC: Kaysville, UT.)

Hough WA, Albini FA (1978) Predicting fire behavior in palmetto–gallberry fuel complexes. USDA Forest Service. Southeast Forest Experiment Station, Research Paper SE-174. (Asheville, NC)

Johansen RW, Wade DD (1987) Effects of crown scorch on survival and diameter growth of slash pines. Southern Journal of Applied Forestry 11, 180–184.

Kane JM, Varner JM, Knapp EE (2009) Novel fuel bed characteristics associated with mechanical mastication treatments in northern California and south-western Oregon, USA. International Journal of Wildland Fire 18, 686–697.
Novel fuel bed characteristics associated with mechanical mastication treatments in northern California and south-western Oregon, USA.Crossref | GoogleScholarGoogle Scholar |

Knapp EE, Varner JM, Busse MD, Skinner CN, Shestak CJ (2011) Behaviour and effects of prescribed fire in masticated fuel beds. International Journal of Wildland Fire 20, 932–945.
Behaviour and effects of prescribed fire in masticated fuel beds.Crossref | GoogleScholarGoogle Scholar |

Kobziar LN, McBride JR, Stephens SL (2009) The efficacy of fire and fuels reduction treatments in a Sierra Nevada Pine plantation. International Journal of Wildland Fire 18, 791–801.
The efficacy of fire and fuels reduction treatments in a Sierra Nevada Pine plantation.Crossref | GoogleScholarGoogle Scholar |

Kreye JK (2012) Efficacy and ecological effects of mechanical fuel treatments in pine flatwoods ecosystems of Florida, USA. PhD thesis. University of Florida, Gainesville.

Kreye JK, Varner JM, Knapp EE (2011) Effects of particle fracturing and moisture content on fire behaviour in masticated fuel beds burned in a laboratory. International Journal of Wildland Fire 20, 308–317.
Effects of particle fracturing and moisture content on fire behaviour in masticated fuel beds burned in a laboratory.Crossref | GoogleScholarGoogle Scholar |

Kreye JK, Varner JM, Knapp EE (2012) Moisture desorption in mechanically masticated fuels: effects of particle fracturing and fuel bed compaction. International Journal of Wildland Fire 21, 894–904.
Moisture desorption in mechanically masticated fuels: effects of particle fracturing and fuel bed compaction.Crossref | GoogleScholarGoogle Scholar |

Kreye JK, Kobziar LN, Zipperer WC (2013) Effects of fuel load and moisture content on fire behaviour and heating in masticated litter-dominated fuels. International Journal of Wildland Fire 22, 440–445.
Effects of fuel load and moisture content on fire behaviour and heating in masticated litter-dominated fuels.Crossref | GoogleScholarGoogle Scholar |

Kreye JK, Kobziar LN, Camp JM (2014a) Immediate and short-term response of understory fuels following mechanical mastication in a pine flatwoods site of Florida, USA. Forest Ecology and Management 313, 340–354.
Immediate and short-term response of understory fuels following mechanical mastication in a pine flatwoods site of Florida, USA.Crossref | GoogleScholarGoogle Scholar |

Kreye JK, Brewer NW, Morgan P, Varner JM, Smith AMS, Hoffman CM, Ottmar RD (2014b) Fire behavior in masticated fuels: a revew. Forest Ecology and Management 314, 193–207.
Fire behavior in masticated fuels: a revew.Crossref | GoogleScholarGoogle Scholar |

Menges ES, Gordon DR (2010) Should mechanical treatments and herbicides be used as fire surrogates to manage Florida’s uplands? A review. Florida Scientist 73, 147–174.

Molina DM, Galan M, Fababu DD, Garcia D, Mora JB (2009) Prescribed fire use for cost-effective fuel management in Spain. In ‘Proceedings of the Third International Symposium on Fire Economics, Planning, and Policy: Common Problems and Approaches’, 29 April–2 May 2008, Carolina, Puerto Rico. (Ed. A Gonzalez-Caban) USDA Forest Service, Pacific Southwest Research Station, General Technical Report PSW-GTR-227, pp. 370–374 (Albany, CA)

Montiel C, Kraus D (Eds.) (2010) Best practices of fire use – prescribed burning and suppression fire programmes in selected case-study regions in Europe. European Forest Institute, Research Report 24. (Joensuu, Finland)

O’Brien JJ, Hiers JK, Mitchell RJ, Varner JM, Mordecai K (2010) Acute physiological stress and mortality following fire in a long-unburned longleaf pine ecosystem. Fire Ecology 6, 1–12.
Acute physiological stress and mortality following fire in a long-unburned longleaf pine ecosystem.Crossref | GoogleScholarGoogle Scholar |

Perchemlides KA, Muir PS, Hosten PE (2008) Responses of chaparral and oak woodland plant communities to fuel-reduction thinning in southwestern Oregon. Rangeland Ecology and Management 61, 98–109.
Responses of chaparral and oak woodland plant communities to fuel-reduction thinning in southwestern Oregon.Crossref | GoogleScholarGoogle Scholar |

Reiner AL, Vaillant NM, Fites-Kaufman J, Dailey SN (2009) Mastication and prescribed fire impacts on fuels in a 25-year old ponderosa pine plantation, southern Sierra Nevada. Forest Ecology and Management 258, 2365–2372.
Mastication and prescribed fire impacts on fuels in a 25-year old ponderosa pine plantation, southern Sierra Nevada.Crossref | GoogleScholarGoogle Scholar |

Scott JH, Burgan RE (2005) Standard fire behavior fuel models: a comprehensive set for use with Rothermel’s surface fire spread model. USDA Forest Service, Rocky Mountain Research Station, General Technical Report RMRS-GTR-153, (Fort Collins, CO)

van Mantgem PJ, Schwartz M, Keifer M (2001) Monitoring fire effects for managed burns and wildfires: coming to terms with pseudoreplication. Natural Areas Journal 21, 266–273.

Van Wagner CE (1973) Height of crown scorch in forest fires. Canadian Journal of Forest Research 3, 373–378.
Height of crown scorch in forest fires.Crossref | GoogleScholarGoogle Scholar |

Varner JM, Gordon DR, Putz FE, Hiers JK (2005) Restoring fire to long-unburned Pinus palustris ecosystems: novel fire effects and consequences for long-unburned ecosystems. Restoration Ecology 13, 536–544.
Restoring fire to long-unburned Pinus palustris ecosystems: novel fire effects and consequences for long-unburned ecosystems.Crossref | GoogleScholarGoogle Scholar |

Waldrop TA, Van Lear DH (1984) Effect of crown scorch on survival and growth of young loblolly pine. Southern Journal of Applied Forestry 8, 35–40.