Aircraft Noise Prediction: from Trajectory to Synthesis
Doktorsavhandling, 2024
An important factor in making effective design choices in these efforts is the early noise impact assessment, ideally not only through conventional metrics but also through perception-based evaluation. One of the objectives of this work was to develop an aircraft noise prediction framework, capable of performing such assessments. At its core, this framework consists of trajectory modelling with aircraft and engine design and performance evaluation, source noise prediction, and propagation to a receiver. Incorporating the calculation of noise contours provided a more accurate representation of community noise impact across entire areas, facilitating the evaluation of noise from various scenarios. Nevertheless, the implemented conventional
metrics could not fully capture the sound characteristics and perceived annoyance. To address this limitation, auralization was used to synthesize the predicted noise into audible sounds, providing a deeper understanding of the perceived noise. This comprehensive framework, starting with trajectory modelling and concluding with noise synthesis, facilitated a thorough assessment of different scenarios and their noise impact.
The selected scenarios primarily focused on flight path management, but the possibility of noise reduction at the source during the early design stages of conventional aircraft was also explored. Through a system-level analysis, new propulsion system designs were established indicating improvement in noise and NOx emissions, for a minimum penalty in fuel consumption. Additional mitigation possibilities were explored through the operational aspect, aiming to establish quieter procedures, particularly during approach, through procedure design and optimization. The operational aspect was further investigated using experimental data to examine how variations in flight parameters influence noise across different approach configurations.
In most of the aforementioned studies, interdependencies between noise, CO2, and non-CO2 emissions were assessed, highlighting the importance of considering trade-offs to avoid counteracting the benefits of noise mitigation with adverse effects on air quality. Overall, it was demonstrated that significant reduction can be achieved by designing feasible procedures within the current regulatory frameworks.
aircraft noise
interdependencies
semi-empirical model
model validation
noise mapping
auralization
noise mitigation
trajectory modelling
noise synthesis
Författare
Evangelia Maria Thoma
Chalmers, Mekanik och maritima vetenskaper, Strömningslära
Quantifying the Environmental Design Trades for a State-of-the-Art Turbofan Engine
Aerospace,;Vol. 7(2020)p. 1-16
Artikel i vetenskaplig tidskrift
Environmental Assessment of Noise Abatement Approach Trajectories
33rd Congress of the International Council of the Aeronautical Sciences, ICAS 2022,;Vol. 7(2022)p. 5308-5320
Paper i proceeding
Assessment of an Open-Source Aircraft Noise Prediction Model Using Approach Phase Measurements
Journal of Aircraft,;Vol. 61(2024)p. 745-760
Artikel i vetenskaplig tidskrift
Thoma, E. M., Johansson, A., Lin, X., Otero, E. Flight Configuration-Based Analysis of Emissions and Noise Interdependencies
Noise from Flight Procedure Designed with Statistical Wind: Auralization and Psychoacoustic Evaluation
30th AIAA/CEAS Aeroacoustics Conference,;(2024)
Paper i proceeding
studies have been performed using the developed framework and available measurements to explore noise mitigation solutions through flight path modifications and engine design optimization for conventional aircraft.
CIDER
Trafikverket (TRV2019/95826), 2019-09-02 -- 2023-10-01.
Drivkrafter
Hållbar utveckling
Styrkeområden
Transport
Ämneskategorier
Rymd- och flygteknik
ISBN
978-91-8103-014-3
Doktorsavhandlingar vid Chalmers tekniska högskola. Ny serie: 5472
Utgivare
Chalmers
HA4, Hörsalsvägen 4, Chalmers campus Johanneberg
Opponent: Mirjam Snellen, Delft University of Technology