A Holistic Approach to Wildfire Suppression Aircraft Fleet Design Using Operational Considerations and Evaluation Metrics †
Abstract
1. Introduction
System-of-Systems Perspective of the Aerial Wildfire Fighting Operation
2. Aircraft Design Methodology
2.1. Mission Environment and Configuration
2.2. Conceptual Design Methodology of eVTOL Aircraft
2.3. Conventional Aircraft Design
3. Aircraft Acquisition and Operational Cost Estimation
3.1. Acquisition Costs
3.1.1. eVTOL Aircraft
3.1.2. CTOL and SEAT via DAPCA IV Model
3.2. Operational Costs
4. Fleet-Level Tactic Assignment
- select_poi: chooses the next target according to a prioritization rule (e.g., water, VIP, vegetation, topography, indirect);
- track_poi: defines how the agent moves toward or updates the target (direct to original point, follow the fastest-spreading edge, or align to an indirect fire line);
- suppress: specifies how drops are applied at the target (direct suppression, indirect fire line construction).
4.1. Design of Experiments for Fleet-Level Tactic Assignment
4.2. Fleet-Reduction Process to Assess Fleet-Related Expense
5. Results
5.1. Baseline Fleet Analysis
5.2. Impact of Fleet Reduction on Measure of Effectiveness
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Appendix A. Framework Diagrams



References
- Westerling, A.L. Increasing Western US Forest Wildfire Activity: Sensitivity to Changes in the Timing of Spring. Philos. Trans. R. Soc. B Biol. Sci. 2016, 371, 20150178. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- National Oceanic and Atmospheric Administration. U.S. Billion-Dollar Weather and Climate Disasters; Technical Report; NOAA National Centers for Environmental Information: Asheville, NC, USA, 2025. [CrossRef]
- National Interagency Fire Center. Historical Wildland Fire Information: Federal Firefighting Costs (Suppression Only); Technical Report; National Interagency Fire Center: Boise, ID, USA, 2022.
- Kalliatakis, N.; Naeem, N.; Prakasha, P.S. COLOSSUS X-Challenge Student Competition: Exploring Solutions to Wildfire Fighting Using System-of-Systems Analysis. In Proceedings of the 15th EASN Conference, Madrid, Spain, 14–17 October 2025. [Google Scholar]
- Prakasha, P.S.; Naeem, N. Establishing a Collaborative Open Source Agent Based Simulation Environment for System of Systems Aviation Problems. CEAS Aeronaut. J. 2026; Submitted.
- DeLaurentis, D.A. Understanding Transportation as a System-of-Systems Design Problem. In Proceedings of the 43rd AIAA Aerospace Sciences Meeting and Exhibit, Reno, NV, USA, 10–13 January 2005; pp. 15083–15096. [Google Scholar] [CrossRef] [Scilit]
- Das Biswas, S. Conceptual Design of Large Electric Vertical Take-off and Landing Aircraft for Urban Air Mobility Operations. Master’s Thesis, Purdue University Graduate School, West Lafayette, IN, USA, 2025. [Google Scholar]
- Walter, D.; Bond, K.; Butler-Sloss, S.; Speelman, L.; Numata, Y.; Atkinson, W. X-Change: Batteries, the Battery Domino Effect; Technical Report; Rocky Mountain Institute: Basalt, CO, USA, 2023. [Google Scholar]
- Archer Aviation. Archer Completes Midnight’s Transition Flight. 2024. Available online: https://investors.archer.com/news/news-details/2024/Archer-Completes-Midnights-Transition-Flight/default.aspx (accessed on 14 June 2024).
- Archer Aviation. Archer’s Midnight eVTOL Aircraft Transition Flight—Uncut Footage. 2024. Available online: https://www.youtube.com/watch?v=EKG-6rxXAXE (accessed on 16 March 2025).
- Raymer, D. Aircraft Design: A Conceptual Approach; American Institute of Aeronautics and Astronautics: Reston, VA, USA, 2012. [Google Scholar]
- Janes All the World’s Aircraft. Pratt & Whitney Canada PW100 Series; Technical Report, Specifications Summary for the PW100 Turboprop Engine Family; Janes Information Services: Croydon, UK, 2010. [Google Scholar]
- Howard, R.J.; Wright, E.; Mudumba, S.V.; Gunady, N.I.; Sells, B.E.; Maheshwari, A. Assessing the Suitability of Urban Air Mobility Vehicles for a Specific Aerodrome Network. In Proceedings of the AIAA AVIATION 2021 Forum, Virtual Event, 2–6 August 2021; p. 3208. [Google Scholar] [CrossRef] [Scilit]
- Brown, A.; Harris, W.L. Vehicle Design and Optimization Model for Urban Air Mobility. J. Aircr. 2020, 57, 1003–1013. [Google Scholar] [CrossRef] [Scilit]
- Kohlman, L.W.; Patterson, M.D.; Raabe, B.E. Urban Air Mobility Network and Vehicle Type-Modeling and Assessment; Technical Report ARC-E-DAA-TN64561, Document ID: 20190001282; NASA Ames Research Center: Moffett Field, CA, USA, 2019.
- Keating, E.G.; Morral, A.R.; Price, C.C.; Woods, D.; Norton, D.M.; Panis, C.; Saltzman, E.; Sanchez, R. Air Attack Against Wildfires: Understanding U.S. Forest Service Requirements for Large Aircraft; MG-1234-USDAFS; RAND Corporation: Santa Monica, CA, USA, 2012. [Google Scholar] [CrossRef] [Scilit]
- Boren, H.E.J. DAPCA: A Computer Program for Determining Aircraft Development and Production Costs; Memorandum RM-5221-PR, Prepared for the United States Air Force under Project RAND, Contract No. F44620-67-C-0045; RAND Corporation: Santa Monica, CA, USA, 1967. [Google Scholar]
- Forecast International. The Market for Aviation Turboprop Engines; Special Focused Market Segment Analysis Product Code F641, Market Analysis for Aviation Turboprop Engines 2010–2019; Forecast International: Sandy Hook, CT, USA, 2010. [Google Scholar]
- Wyndham, D. What Does It Cost to Operate a Turboprop? Operating Cost Breakdowns Based on Conklin & de Decker Data; AvBuyer: Thames Ditton, UK, 2020. [Google Scholar]
- The Professional Pilot Network. The Value of Aerial Firefighting and the Compensation You Could Earn; Overview of Aerial Firefighting Roles, Risks, and Pay Structures; The Professional Pilot Network: Alexandria, VA, USA, 2025. [Google Scholar]
- Los Angeles World Airports. Landing Fees at LAX (Fiscal Year 2024–25); Technical Report, Board-Adopted Landing Fees and Charges at LAX; Los Angeles World Airports: Los Angeles, CA, USA, 2024. [Google Scholar]
- Aéroport Tarbes Lourdes Pyrénées. Guide Tarifaire Spécial AG 2024: Handling & Charges—Aviation Générale et d’Affaires; Technical Report, Handling Rates and Airport Charges Applicable from 1 July 2024; Aéroport Tarbes Lourdes Pyrénées: Juillan, France, 2024. [Google Scholar]


| Level | Resource | Operation | Policy | Economics |
|---|---|---|---|---|
| CTOL & eVTOL aircraft | Individual suppression tactic | Flight operations | Per-vehicle acquisition and operating cost | |
| Fleet of aircraft | Fleet-level tactics | Fleet management systems | Fleet-level economics |
| Parameter | Value | Parameter | Value |
|---|---|---|---|
| MTOW [kg] | 5722 | Aspect Ratio [-] | 12 |
| L/D [-] | 11.43 | Wing Loading [kg/m2] | 170.9 |
| Payload [kg] | 2000 | Stall Velocity [m/s] | 46.77 |
| Battery [kWh] | 502.14 | Propellers [-] | 8 |
| Empty Weight [kg] | 2785 | Peak C-rate [-] | 7.83 |
| Cruise Speed [m/s] | 67.06 | Range [km] | 120 |
| Parameter | Twin-Engine CTOL | SEAT |
|---|---|---|
| MTOW [kg] | 25,000 | 10,656 |
| L/D [-] | 12 | 10 |
| Payload [kg] | 7829 | 3000 |
| Cruise Power [kW] | 2160 | 1680 |
| Takeoff Power [kW] | 3330 | 2370 |
| SFCBHP [kg/kW·h] | 0.48 | 0.48 |
| Propeller Efficiency () [-] | 0.85 | 0.85 |
| Fuel Estimation [-] | Hybrid | Hybrid |
| Cost ($/h) | eVTOL | SEAT | CTOL Air Tanker |
|---|---|---|---|
| Maintenance | 59.80 | 129.57 | 299.01 |
| Fuel/Energy | 83.72 | 442.54 | 867.14 |
| Pilot | 518.32 | 518.28 | 984.41 |
| Landing Fees | 106.58 | 105.65 | 203.33 |
| Ground Handling | 199.34 | 199.34 | 398.68 |
| Total | 967.76 | 1395.38 | 2752.57 |
| Normalized Metrics | Palisades | Salamis | Pyrenees |
|---|---|---|---|
| Cost Area | < | < | < |
| Burnt Area | 0.0026 | 0.0291 | 0.0009 |
| Emissions | 0.0005 | 0.0929 | 0.0035 |
| Fleet Operating Cost | 0.0207 | 0.0556 | 0.0175 |
| Fleet Acquisition Cost | 0.6134 | 0.6134 | 0.6134 |
| Measure of Effectiveness | 0.8133 | 0.7854 | 0.8134 |
| Normalized Metric | Palisades | Salamis | Pyrenees |
|---|---|---|---|
| Fleet Operating Cost | () | () | () |
| Fleet Acquisition Cost | () | () | () |
| Measure of Effectiveness | () | () | () |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
Share and Cite
Biswas, S.D.; Gerardus, J.; Edsel, A.; Inanc, E.; Kalliatakis, N.; Naeem, N.; Prakasha, P.S. A Holistic Approach to Wildfire Suppression Aircraft Fleet Design Using Operational Considerations and Evaluation Metrics. Eng. Proc. 2026, 133, 132. https://doi.org/10.3390/engproc2026133132
Biswas SD, Gerardus J, Edsel A, Inanc E, Kalliatakis N, Naeem N, Prakasha PS. A Holistic Approach to Wildfire Suppression Aircraft Fleet Design Using Operational Considerations and Evaluation Metrics. Engineering Proceedings. 2026; 133(1):132. https://doi.org/10.3390/engproc2026133132
Chicago/Turabian StyleBiswas, Somrick Das, Jonah Gerardus, Adler Edsel, Ece Inanc, Nikolaos Kalliatakis, Nabih Naeem, and Prajwal Shiva Prakasha. 2026. "A Holistic Approach to Wildfire Suppression Aircraft Fleet Design Using Operational Considerations and Evaluation Metrics" Engineering Proceedings 133, no. 1: 132. https://doi.org/10.3390/engproc2026133132
APA StyleBiswas, S. D., Gerardus, J., Edsel, A., Inanc, E., Kalliatakis, N., Naeem, N., & Prakasha, P. S. (2026). A Holistic Approach to Wildfire Suppression Aircraft Fleet Design Using Operational Considerations and Evaluation Metrics. Engineering Proceedings, 133(1), 132. https://doi.org/10.3390/engproc2026133132

