Pilot Assistance Systems for Energy-Optimized Approaches: Is It Possible to Reduce Fuel Consumption and Noise at the Same Time?
Abstract
:1. Introduction
[…] noise resulting from a departure can only be redistributed in the airport environment. However, approach procedures offer an additional real noise reduction potential because the force of gravity supports the descent process. Taking advantage of this and minimizing aerodynamic drag can result in local noise reductions of 5 dB or more compared to standard approach procedures.
For an aircraft to descend from cruise altitude to touchdown with the lowest possible fuel consumption and noise signature, an approach is required that is both at idle thrust in the ideal speed and follows an ideal vertical profile without using speed brakes, extending the landing gear too early, or flying unnecessary level segments with high thrust settings.
2. Methods
2.1. Test Scenario and Description of Flights
2.2. Fuel Consumption
2.3. Noise
3. Results
3.1. Fuel Consumption
3.2. Noise
3.3. Combined Analysis of Fuel Consumption and Noise
4. Discussion
5. Conclusions and Outlook
It will take incorporation of flight, airspace, and ATC procedure changes and improvements in aircraft equipage on a wide-spread basis, adopted by the pilots, air carriers, air navigation service providers and airport operators for these benefits to be fully realized.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
AAL | Above Airfield Level |
ATC | Air Traffic Control |
ATCo | Air Traffic Controller |
CDA | Continuous Descent Approach |
DYNCAT | Dynamic Configuration Adjustment in the TMA |
FDR | Flight Data Recorder |
FMS | Flight Management System |
ICAO | International Civil Aviation Organization |
LAE | A-weighted sound exposure level |
LAS | A-weighted sound pressure level with time constant SLOW (1 s) |
LNAS | Low-Noise Augmentation System |
N1 | Rotational speed of the jet engine’s low pressure shaft |
NM | Nautical Miles |
TMA | Terminal Manoeuvring Area |
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Wunderli, J.M.; Meister, J.; Boyer, J.; Gerber, M.; Bauer, T.; Abdelmoula, F. Pilot Assistance Systems for Energy-Optimized Approaches: Is It Possible to Reduce Fuel Consumption and Noise at the Same Time? Aerospace 2024, 11, 450. https://doi.org/10.3390/aerospace11060450
Wunderli JM, Meister J, Boyer J, Gerber M, Bauer T, Abdelmoula F. Pilot Assistance Systems for Energy-Optimized Approaches: Is It Possible to Reduce Fuel Consumption and Noise at the Same Time? Aerospace. 2024; 11(6):450. https://doi.org/10.3390/aerospace11060450
Chicago/Turabian StyleWunderli, Jean Marc, Jonas Meister, Johan Boyer, Martin Gerber, Tobias Bauer, and Fethi Abdelmoula. 2024. "Pilot Assistance Systems for Energy-Optimized Approaches: Is It Possible to Reduce Fuel Consumption and Noise at the Same Time?" Aerospace 11, no. 6: 450. https://doi.org/10.3390/aerospace11060450
APA StyleWunderli, J. M., Meister, J., Boyer, J., Gerber, M., Bauer, T., & Abdelmoula, F. (2024). Pilot Assistance Systems for Energy-Optimized Approaches: Is It Possible to Reduce Fuel Consumption and Noise at the Same Time? Aerospace, 11(6), 450. https://doi.org/10.3390/aerospace11060450