An Integrated Approach for the Multidisciplinary Design of Optimum Rotorcraft Operations

Author:

Goulos Ioannis1,Pachidis Vassilios1,d’Ippolito Roberto2,Stevens Jos3,Smith Chrissy4

Affiliation:

1. Department of Power & Propulsion Cranfield University, Bedfordshire MK43 0AL, UK

2. NOESIS Solutions, Gaston Geenslaan, 11, B4, 3001 Leuven, BE

3. National Aerospace Laboratory NLR, Anthony Fokkerweg 2, 1059 CM Amsterdam, NL

4. AgustaWestland, Westland Works, Lysander Road, Yeovil BA20 2YB, UK

Abstract

This work focuses on the development and application of a generic methodology targeting the design of optimum rotorcraft operations in terms of fuel burn, gaseous emissions, and ground noise impact. An integrated tool capable of estimating the performance and emitted noise of any defined rotorcraft configuration within any designated mission has been deployed. A comprehensive and cost-effective optimization strategy has been structured. The methodology has been applied to two generic, baseline missions representative of current rotorcraft operations. Optimally designed operations for fuel burn, gaseous emissions, and ground noise impact have been obtained. A comparative evaluation has been waged between the acquired optimum designs. The respective trade-off arising from the incorporation of flight paths optimized for different objectives has been quantified. Pareto front derived models for fuel burn and emitted noise have been structured for each mission. The Pareto models have been subsequently deployed for the design of operations optimized in a multidisciplinary manner. The results have shown that the proposed methodology is promising with regards to achieving simultaneous reduction in fuel burn, gaseous emissions, and ground noise impact for any defined mission. The obtainable reductions are found to be dependent on the designated mission. Finally, the potential to design optimum operations in a multidisciplinary fashion using only a single design criterion is demonstrated.

Publisher

ASME International

Subject

Mechanical Engineering,Energy Engineering and Power Technology,Aerospace Engineering,Fuel Technology,Nuclear Energy and Engineering

Reference23 articles.

1. A Multidisciplinary Simulation Framework for Optimization of Rotorcraft Operations and Evironmental Impact;d’Ippolito

2. The Role of Advanced Air Traffic Management in Reducing the Impact of Aircraft Noise and Enabling Aviation Growth;Clarke;J. Air Transp. Manag.

3. Civil Aircraft Design Priorities: Air Quality? Climate Change? Noise?;Brooker;Aeronaut. J.

4. On Trajectory Optimization for Reducing the Impact of Commercial Aircraft Operations on the Environment;Celis

5. Simulation Framework Development for Aircraft Mission Analysis;Goulos

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