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Climate change has prompted the aviation industry to reduce greenhouse gas emissions. Variable-camber leading edges, with their adaptable aerodynamic shapes, hold significant potential for laminar flow wings and contribute to greener aviation. In response to this need, this paper proposes a design optimization method for a variable-camber leading edge featuring an outer variable-thickness composite compliant skin and an inner open-kinematic-chain mechanism. The optimization methodology employs a fiber continuity model based on a ply-drop sequence, a guiding sequence and a thickness sequence to describe the variable-thickness composite compliant skin structure, enabling direct generation of a composite layup sequence that meets fiber continuity criteria. Additionally, the design methodology for the inner open kinematic chain considers the rigid-flexible coupling effect and analyzes the number of driving ribs along the span-wise direction. Finally, a full-scale physical prototype for a large-scale civil aircraft is developed and experimented in the FL-10 wind tunnel, demonstrating that the variable-camber leading edge can smoothly and precisely achieve its target shape and hold its final profile under the corresponding aerodynamic loads, thereby validating the proposed design methodology.
This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
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