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Multiobjective Optimization for the Aero-Structural Design of Adaptive Compliant Wing Devices

Alessandro De Gaspari

2020Applied Sciences17 citationsDOIOpen Access PDF

Abstract

The design of morphing structures must combine conflicting structural requirements and multiple load conditions that are related to the aerodynamic shapes aimed at optimizing aircraft performance. This article proposes a multilevel approach for the design of adaptive compliant wing devices. A set of aerodynamic shapes, and associated their loads, is defined by a shape optimization, coupled with a three-dimensional parametric technique, that can identify only feasible shape changes due to the morphing. A topology and sizing multiobjective optimization drives the Pareto-optimal structural design of the compliant structure, which is able to deform itself to match, once actuated, all of the previously defined aerodynamic shapes. Next two design levels produce a more detailed solution which is extended until the definition of the complete device. A 90 pax, twin prop green regional aircraft is used as an innovative aircraft demonstration platform for the design of the morphing droop nose to be installed on the wing. The results show the structural capabilities of this device in terms of the external shape quality and the strain requirements. This work enables the validation of the design method and prove the functionality of compliant structures when accounting for the aeroelastic effects due to the interaction with the wing-box.

Topics & Concepts

MorphingAerodynamicsAeroelasticityWingSizingMulti-objective optimizationComputer scienceParametric statisticsTopology optimizationEngineeringStructural engineeringFinite element methodAerospace engineeringMathematicsStatisticsVisual artsArtMachine learningComputer visionAeroelasticity and Vibration ControlTopology Optimization in EngineeringComposite Structure Analysis and Optimization