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

Criteria and methodology for evaluating aerial wildfire suppression

Matt P. Plucinski A C and Elsa Pastor B
+ Author Affiliations
- Author Affiliations

A CSIRO Ecosystem Sciences and CSIRO Climate Adaptation Flagship, Black Mountain Laboratories, Clunies Ross Street, Black Mountain, ACT 2601, Australia.

B Department of Chemical Engineering, Centre for Technological Risk Studies, Universitat Politècnica de Catalunya, Diagonal 647, E-08028 Barcelona, Catalonia, Spain.

C Corresponding author. Email: matt.plucinski@csiro.au

International Journal of Wildland Fire 22(8) 1144-1154 https://doi.org/10.1071/WF13040
Submitted: 14 March 2013  Accepted: 22 May 2013   Published: 26 August 2013

Abstract

Aircraft are often used to drop suppressants and retardants to assist wildfire containment. Drop effectiveness has rarely been measured due to the difficulties in collecting data from wildfires and running field experiments and the absence of definitions and measures. This paper presents a set of criteria and methodologies for evaluating the effectiveness of aerial suppression drops. These consider drop placement, coverage and effect on fire behaviour. This paper also details drop site and delivery conditions that are required for determining causal factors that influence drop effectiveness and allow drops to be compared. Examples of drop impact evaluations made during experimental fires are used to demonstrate these methodologies. The main methods proposed are based on the analysis of orthorectified airborne infrared imagery of drops, which can be used to measure drop dimensions, proximity to fire perimeter and their effect on fire spread. These evaluations can be used to compare tactics, suppressants and delivery systems and to inform cost–benefit analyses of aerial suppression.

Additional keywords: aerial firefighting, firefighting effectiveness, infrared airborne monitoring, retardants, suppressants.


References

Àgueda A, Pastor E, Planas E (2008) Different scales for studying the effectiveness of long-term forest fire retardants. Progress in Energy and Combustion Science 34, 782–796.
Different scales for studying the effectiveness of long-term forest fire retardants.Crossref | GoogleScholarGoogle Scholar |

Amorim JH (2011a) Numerical modelling of the aerial drop of firefighting agents by fixed-wing aircraft. Part I: model development. International Journal of Wildland Fire 20, 384–393.
Numerical modelling of the aerial drop of firefighting agents by fixed-wing aircraft. Part I: model development.Crossref | GoogleScholarGoogle Scholar |

Amorim JH (2011b) Numerical modelling of the aerial drop of firefighting agents by fixed-wing aircraft. Part II: model validation. International Journal of Wildland Fire 20, 394–406.
Numerical modelling of the aerial drop of firefighting agents by fixed-wing aircraft. Part II: model validation.Crossref | GoogleScholarGoogle Scholar |

Ault R, Thomasson J, Mooney C (2012) Exploring the capabilities of helicopter bucket and helitank tracking systems. (FPInnovations Wildfire Operations Research: Hinton, AB) Available at http://wildfire.fpinnovations.ca/103/BucketTrackingSystems_Report_v5FINAL.pdf [Verified 8 May 2013]

Biggs H (2004) An evaluation of the performance of the Simplex 304 helicopter belly-tank. Department of Sustainability and Environment, Victoria, Research Report number 71. (Melbourne)

Byram GM (1959) Combustion of forest fuels. In ‘Forest Fire Control and Use’. (Ed. KP Davis) pp. 61–89. (McGraw-Hill: New York)

Calogine D, Rimbert N, Se’ro-Guillaume O (2007) Modelling of the deposition of retardant in a tree crown during fire fighting. Environmental Modelling & Software 22, 1654–1666.
Modelling of the deposition of retardant in a tree crown during fire fighting.Crossref | GoogleScholarGoogle Scholar |

Cheney NP, Fenwick R, Hutchings PT, Nicholson AJ (1982) Aerial suppression of bushfires: assessment of MAFFS/Hercules operations. CSIRO Division of Forest Research. (Canberra, ACT)

Cruz MG, Matthews S, Gould J, Ellis P, Henderson M, Knight I, Watters J (2010) Fire dynamics in mallee heath; fuel weather and fire behaviour prediction in South Australian semi-arid shrublands, Bushfire Cooperative Research Centre, Technical Report A.10.01. (Melbourne) Available at http://www.bushfirecrc.com/sites/default/files/firedynamicsinmalleeheathreport.pdf [Verified 9 July 2013]

Cruz MG, McCaw WL, Anderson WR, Gould JS (2013) Fire behaviour modelling in semi-arid mallee-heath shrublands of southern Australia. Environmental Modelling & Software 40, 21–34.
Fire behaviour modelling in semi-arid mallee-heath shrublands of southern Australia.Crossref | GoogleScholarGoogle Scholar |

Ganewatta G, Handmer J (2009) The cost-effectiveness of aerial firefighting in Australia. Bushfire Cooperative Research Centre, Technical Report A.09.01. (Melbourne)

George CW (1982) Measurements of airtanker drop conditions during fire fighting operations. USDA Forest Service, Intermountain Forest and Range Experimental Station, Research Paper INT-299. (Ogden, UT)

George CW (1985) An operational retardant effectiveness study. Fire Management Notes 46, 18–23.

George CW (1990) An update on the Operational Retardant Effectiveness (ORE) program. In ‘The Art and Science of Fire Management. Proceedings of the First Interior West Fire Council Annual Meeting and Workshop’, 24–27 October 1988, Kananaskis, AB, Canada. (Eds ME Alexander, GF Bisgrove) Forestry Canada, Northwest Region, Northern Forestry Centre, Information Report NOR-X-309, pp. 114–122. (Edmonton, AB)

George CW (2002) Coming soon: gum thickened fire retardants. Fire Management Today 62, 34–35.

George CW, Blakely AD (1973) An evaluation of the drop characteristics and ground distribution patterns of forest fire retardants. USDA Forest Service, Intermountain Forest and Range Experiment Station, Research Paper INT-134. (Ogden, UT)

George CW, Fuchs FA (1991) Improving airtanker delivery performance. Fire Management Notes 52, 30–37.

George CW, Johnson GM (1990) Developing air tanker performance guides. USDA Forest Service, Intermountain Research Station, General Technical Report INT-268. (Ogden, UT)

George CW, Ewart GF, Friauf WC (1989) FLIR: a promising tool for air-attack supervisors. Fire Management Notes 50, 26–29.

Gill AM, Knight IK (1991) Fire measurement. In ‘Conference on Bushfire Modelling and Fire Danger Rating Systems. Proceedings’, 11–13 July 1998, Canberra, ACT. (Eds NP Cheney, AM Gill) pp. 137–147. (CSIRO: Melbourne)

Giménez A, Pastor E, Zárate L, Planas E, Arnaldos J (2004) Long-term forest fire retardants: a review of quality, effectiveness, application and environmental considerations. International Journal of Wildland Fire 13, 1–15.
Long-term forest fire retardants: a review of quality, effectiveness, application and environmental considerations.Crossref | GoogleScholarGoogle Scholar |

Gould JS, McCaw WL, Cheney NP, Ellis PF, Matthews S (2007) Field guide – fuel assessment and fire behaviour prediction in dry eucalypt forest. Ensis–CSIRO (Canberra, ACT) and Department of Environment and Conservation (Perth, WA).

Gould JS, McCaw WL, Cheney NP (2011) Quantifying fine fuel dynamics and structure in dry eucalypt forest (Eucalyptus marginata) in Western Australia for fire management. Forest Ecology and Management 262, 531–546.
Quantifying fine fuel dynamics and structure in dry eucalypt forest (Eucalyptus marginata) in Western Australia for fire management.Crossref | GoogleScholarGoogle Scholar |

Hartley R, Zisserman A (2003). ‘Multiple View Geometry in Computer Vision’, 2nd edn. (Cambridge University Press: Cambridge)

Hodgson BS (1967) A procedure to evaluate ground distribution patterns for water dropping aircraft. Canadian Department of Forestry and Rural Development, Forest Fire Research Institute, FF-X-9. (Ottawa, ON)

Keating EG, Morral AR, Price CC, Woods D, Norton DM, Panis C, Saltzman E, Sanchez R (2012) ‘Air Attack against Wildfires: Understanding US Forest Service Requirements for Large Aircraft.’ (RAND Corporation: Santa Monica, CA).

Loane IT, Gould JS (1986) ‘Aerial Suppression of Bushfires: Cost–Benefit Study for Victoria.’ (CSIRO Division of Forest Research: Canberra)

Lovellette G (2004) How to conduct drop tests of aerial retardant delivery systems. USDA Forest Service, Missoula Technology and Development Center, Technology and Development Program, 0457 2813. (Missuola, MT).

Matthews AG (1997) FIRESCAN: a technique for airborne infra-red mapping of wildfires. PhD thesis, Monash University, Melbourne.

McArthur AG (1967) Fire behaviour in eucalypt forests. Department of National Development, Forestry and Timber Bureau, leaflet number 107. (Canberra, ACT)

McCarthy GJ, Plucinski MP, Gould JS (2012) Analysis of the resourcing and containment of multiple remote fires: the Great Divide Complex of fires, Victoria, December 2006. Australian Forestry 75, 54–63.
Analysis of the resourcing and containment of multiple remote fires: the Great Divide Complex of fires, Victoria, December 2006.Crossref | GoogleScholarGoogle Scholar |

McRae DJ, Jin JZ, Conard SG, Sukhinin AI, Ivanova GA, Blake TW (2005) Infrared characterization of fine-scale variability in behavior of boreal forest fires. Canadian Journal of Forest Research 35, 2194–2206.
Infrared characterization of fine-scale variability in behavior of boreal forest fires.Crossref | GoogleScholarGoogle Scholar |

NWCG (2011) Glossary of wildland fire terminology. National Wildfire Coordinating Group, PMS 205. (Boise, ID)

Ogilvie CJ, Liekovsky RJ, Young RW, Jaap G (1995) An evaluation of forward-looking infrared equipped air attack. Fire Management Notes 55, 17–20.

Pastor E, Àgueda A, Andrade-Cetto J, Muñoz M, Pérez Y, Planas E (2006) Computing the rate of spread of linear flame fronts by thermal image processing. Fire Safety Journal 41, 569–579.
Computing the rate of spread of linear flame fronts by thermal image processing.Crossref | GoogleScholarGoogle Scholar |

Pastor E, Pérez Y, Cubells M, Planas E, Plucinski M, Gould J (2010) Quantifiable assessment of aerial suppression tactics in wildland fires using airborne infrared imagery. In ‘Proceedings of the VI International Conference on Forest Fire Research’ 15–18 November 2010, Coimbra. (Ed. DX Viegas) (CD-ROM) (ADAI: Coimbra, Portugal)

Pérez Y, Pastor E, Planas E, Plucinski M, Gould J (2011) Computing forest fire aerial suppression effectiveness by IR monitoring. Fire Safety Journal 46, 2–8.
Computing forest fire aerial suppression effectiveness by IR monitoring.Crossref | GoogleScholarGoogle Scholar |

Planas E, Cubells M, Pastor E (2011a) Different approaches for the head fire perimeter definition in wildland fires. In ‘Fire Safety Science – Proceedings of the Tenth International Symposium’, 19–24 June 2011, University of Maryland, USA. pp. 1425–1436. (International Association for Fire Safety Science) Available at http://www.iafss.org/publications/fss/10/1425/view [Verified 9 July 2013]

Planas E, Pastor E, Cubells M, Cruz MG, Grenfell I (2011b). Fire behavior variability in mallee-heath shrubland fires. In ‘The 5th International Wildland Fire Conference’, 9–13 May 2011, Sun City, South Africa.

Plucinski MP (2010) Evaluation of the effectiveness of the 10 tanker air carrier DC-10 air tanker, Victoria 2010. Bushfire Cooperative Research Centre. (Melbourne) Available at http://www.bushfirecrc.com/managed/resource/dc-10_evaluation_final.pdf [Verified 9 July 2013]

Plucinski M, Gould J, McCarthy G, Hollis J (2007) The effectiveness and efficiency of aerial firefighting in Australia, Part 1. Bushfire Cooperative Research Centre, Technical Report A0701. (Melbourne)

Plucinski M, Cruz M, Gould J, Pastor E, Perez Y, Planas E, McCarthy G (2011) Project FuSE Aerial Suppression experiments. Bushfire Cooperative Research Centre. (Melbourne) Available at http://www.bushfirecrc.com/sites/default/files/managed/resource/project_fuse_aerial_suppression_final_report.pdf [Verified 9 July 2013]

Plucinski MP, McCarthy GJ, Hollis JJ, Gould JS (2012) The effect of aerial suppression on the containment time of Australian wildfires estimated by fire management personnel. International Journal of Wildland Fire 21, 219–229.
The effect of aerial suppression on the containment time of Australian wildfires estimated by fire management personnel.Crossref | GoogleScholarGoogle Scholar |

Pyne SJ, Andrews PL, Laven AR (1996) ‘Introduction to Wildland Fire’, 2nd edn. (Wiley: New York)

Suter A (2000) Drop testing airtankers: a discussion of the cup-and-grid method. USDA Forest Service, Technology & Development Program, 0057–2868-MTDC. (Missoula, MT).

Swanson DH, Luedecke AD, Helvig TN, Parduhn FJ (1975) Development of user guidelines for selected retardant aircraft. Honeywell Inc., Government and Aeronautical Products Division, Final Report, Contract 26–3332. (Hopkins, MI)

Swanson DH, Luedecke AD, Helvig TN (1978) Experimental tank and gating system (ETAGS). Honeywell Inc., Government and Aeronautical Products Division, Final Report, Contract 26–3425. (Hopkins, MI)

Thomasson J (2012) Use of precision GPS for air tanker drop testing. (FPInnovations Wildfire Operations Research: Hinton, AB) Available at http://wildfire.fpinnovations.ca/114/PrecisionGPSforAirtankerDrops.pdf [Verified 8 May 2013]

Thompson MP, Calkin DE, Herynk J, McHugh CW, Short KC (2013) Airtankers and wildfire management in the US Forest Service: examining data availability and exploring usage and cost trends. International Journal of Wildland Fire 22, 223–233.
Airtankers and wildfire management in the US Forest Service: examining data availability and exploring usage and cost trends.Crossref | GoogleScholarGoogle Scholar |

Trethewey D (2007) Development of an index for quick comparison of helicopter costs and benefits. International Journal of Wildland Fire 16, 444–449.
Development of an index for quick comparison of helicopter costs and benefits.Crossref | GoogleScholarGoogle Scholar |

USDI National Park Service (2003) Fire monitoring handbook. (National Interagency Fire Center, Fire Management Program Center: Boise, ID) Available at http://www.nps.gov/fire/wildland-fire/resources/documents/fire-effects-monitoring-handbook.pdf [Verified 8 May 2013]

Van Meter WP, George CW, Johnson CW (1985) Chemical analysis procedures for forest fire retardant constituents. USDA Forest Service, Intermountain Forest and Range Experiment Station, INT-181. (Ogden, UT)

Whight S, Bradstock R (1999) Indices of fire characteristics in sandstone heath near Sydney, Australia. International Journal of Wildland Fire 9, 145–153.
Indices of fire characteristics in sandstone heath near Sydney, Australia.Crossref | GoogleScholarGoogle Scholar |