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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 (Open Access)

Numerical simulation of aerial liquid drops of Canadair CL-415 and Dash-8 airtankers

Corentin Calbrix A B , Alexei Stoukov A , Axelle Cadiere B , Benoit Roig B and Dominique Legendre A *
+ Author Affiliations
- Author Affiliations

A Institut de Mécanique des Fluides de Toulouse (IMFT) – Université de Toulouse, CNRS-INPT-UPS, 31400 Toulouse, France.

B UPR Chrome University of Nimes, Rue du Dr G. Salan, CEDEX 1, Nimes 30021, France.

* Correspondence to: legendre@imft.fr

International Journal of Wildland Fire 32(11) 1515-1528 https://doi.org/10.1071/WF22147
Submitted: 6 July 2022  Accepted: 8 September 2023  Published: 6 October 2023

© 2023 The Author(s) (or their employer(s)). Published by CSIRO Publishing on behalf of IAWF. This is an open access article distributed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License (CC BY-NC-ND)

Abstract

Background

Airtankers are able to drop volumes of liquid (suppressant or fire retardant) varying from less than 1 m3 to several tens of cubic metres directly on a fire or with the objective to form barriers of retardant to stop or reduce fire propagation.

Aims

The objective of this work is to demonstrate that Computational Fluid Dynamics can be used to provide a deep understanding of liquid fragmentation and dispersion when liquid is dropped from an aircraft.

Methods

A numerical investigation based on the Volume of Fluid method is used for the analysis of airtanker performance and applied here to the biggest airtankers used in Europe: the Canadair CL-415 and Dash-8.

Key results

Numerical simulations are used to provide an accurate description of tank discharge as well as to study liquid ejection, fragmentation and atomisation in air. From the results, the vertical penetration and lateral expansion of the liquid are described using simple modelling.

Conclusions

From the numerical simulation, the main characteristics of liquid atomisation and dispersion in air are described and modelled.

Implications

Computational Fluid Dynamics is an efficient tool that may help to optimise airtanker performance.

Keywords: aerial drop, airtanker, Canadair CL-415, Computational Fluid Dynamics (CFD), Dash-8, drop pattern, fluid mechanic, liquid atomisation and dispersion, tank discharge.

References

Abarzhi SI (2010) Review of theoretical modelling approaches of Rayleigh–Taylor instabilities and turbulent mixing. Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences 368, 1809-1828.
| Crossref | Google Scholar | PubMed |

Amorim JH (2008) Numerical modelling of the aerial drop of products for forest firefighting. PhD thesis, University of Aveiro, Portugal.

Amorim JH (2011) 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.
| Crossref | Google Scholar |

Broumand M, Birouk M (2016) Liquid jet in a subsonic gaseous crossflow: Recent progress and remaining challenges. Progress in Energy and Combustion Science 57, 1-29.
| Crossref | Google Scholar |

George A, Cho IH (2020) Anti-sloshing effects of a vertical porous baffle in a rolling rectangular tank. Ocean Engineering 214, 107871.
| Crossref | Google Scholar |

Gómez-Goñi J, Garrido-Mendoza CA, Cercós JL, González L (2013) Two-phase analysis of sloshing in a rectangular container with Volume of Fluid (VOF) methods. Ocean Engineering 73, 208-212.
| Crossref | Google Scholar |

Ito T, Kato H, Goda Y, Tagawa S, Negishi E (2010) Water‐dropping aerodinamics for firefighting amphibian. In ‘Proceedings of the 27th International Congress of the Aeronautical Sciences, Nice, France, 19–24 September 2010’. Available at https://www.icas.org/ICAS_ARCHIVE/ICAS2010/PAPERS/333.PDF [Accessed 6 October 2022]

Iyogun C-O, Birouk M, Popplewell N (2006) Trajectory of water jet exposed to low subsonic cross-flow. Atomization and Sprays 16, 963-980.
| Crossref | Google Scholar |

Legendre D, Becker R, Alméras E, Chassagne A (2014) Air tanker drop patterns. International Journal of Wildland Fire 23(2), 272-280.
| Crossref | Google Scholar |

Lin K-C, Kennedy P-J, Jackson T-A (2002) A review on penetration heights of transverse liquid jet in high-speed flows. 40th AIAA Aerospace Sciences Meeting & Exhibit, Aerospace Sciences Meetings, American Institute of Aeronautics and Astronautics. https://doi.org/10.2514/6.2002-873

McFayden CB, Wotton BM, Robinson JW, Johnston JM, Cantin A, Jurko NM, Boucher J, Wheatley M, Ansell M, Boychuk D, Russo B (2023) Reference Guide to the Drop Effectiveness of Skimmer and Rotary Wing Airtankers. Information Report No. G:C-X-35. (Natural Resources Canada: Sault Ste Marie)

No SY (2015) A review on empirical correlations for jet/spray trajectory of liquid jet in uniform cross flow. International Journal of Spray and Combustion Dynamics 7, 283-313.
| Crossref | Google Scholar |

Plucinski MP, Pastor E (2013) Criteria and methodology for evaluating aerial wildfire suppression. International Journal of Wildland Fire 22, 1144-1154.
| Crossref | Google Scholar |

Qureshi S, Altman A (2018) Studying fluid breakup and dispersion to predict aerial firefighting ground drop patterns. AIAA Aerospace Sciences Meeting, AIAA SciTech Forum, American Institute of Aeronautics and Astronautics. https://doi.org/10.2514/6.2018-1047

Rayleigh L (1883) Investigation of the character of the equilibrium of an incompressible heavy fluid of variable density. Proceedings of the London Mathematical Society s1–14, 170-177.
| Crossref | Google Scholar |

Rimbert N (2003) Contribution à l’étude de la pulvérisation et de la dispersion dans l’air de fluides Newtoniens et non-Newtoniens. Application au largage aérien d’eau et de mélanges retardants, PhD thesis, Institut National Polytechnique de Lorraine, Nancy, France. [In French]

Rivas E, Rojas E, Bayón R, Gaggioli W, Rinaldi L, Fabrizi F (2014) CFD Model of a Molten Salt Tank with Integrated Steam Generator. Energy Procedia 49, 956-964.
| Crossref | Google Scholar |

Rouaix C, Stoukov A, Bury Y, Joubert D, legendre D (2023) Liquid jet breakup in gaseous crossflow injected through a large diameter nozzle. International Journal of Multiphase Flow 163, 104419.
| Crossref | Google Scholar |

Siemens (2015) Star-CCM+ User Guide. Available at https://fr.scribd.com/doc/193836790/Star-CCM- User-Guide

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

Wu P-K, Kirkendall KA, Fuller RP, Nejad AS (1997) Breakup processes of liquid jets in subsonic crossflows. Journal of Propulsion and Power 13, 64-73.
| Crossref | Google Scholar |

Wu P-K, Kirkendall KA, Fuller RP, Nejad AS (1998) Spray structures of liquid jets atomized in subsonic crossflows. Journal of Propulsion and Power 14, 173-182.
| Crossref | Google Scholar |

Zhao X, Zhou P, Yan X, Weng Y, Yang X-L (2018) Numerical simulation of the aerial drop of water for fixed-wing airtankers. In ‘31st International congress of the aeronautical science (ICAS 2018)’ Available at https://www.icas.org/ICAS_ARCHIVE/ICAS2018/data/papers/ICAS2018_0474_paper.pdf

Zheng X, You Y, Ma Q, Khayyer A, Shao S (2018) A comparative study on violent sloshing with complex baffles using the ISPH method. Applied Sciences 8(6), 904.
| Crossref | Google Scholar |