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Publishing Language: Chinese

Design, analysis, and experimentation of SMA-driven multi-state variable camber wing

Ziang WANG1Zhirong LU1Honghao LI1Wenya ZHOU2Xiaoming WANG1( )
School of Mechanical and Electrical Engineering,Guangzhou University,Guangzhou 510006,China
School of Mechanics and Aerospace Engineering,Dalian University of Technology,Dalian 116024,China
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Abstract

The most common type of morphing wing in the field of intelligent aircraft design for the future is variable camber, which offers a wealth of opportunities. This paper addresses the design requirements of a multi-state, continuously variable camber wing and proposes a novel design scheme integrating a modular rigid-flexible coupling structure, cross-leaf hinge, and multi-stage shape memory alloy (SMA) actuators. According to the scheme, the equivalent stiffness structural mechanics model of single-stage and multi-stage modular elements is derived by combining the equivalent stiffness calculation method of the cross-leaf hinge, and the comparison and verification are completed by finite element analysis. Furthermore, a quasi-static fluid-structure coupling analysis model was established, verifying the proposed variable camber wing scheme’s multi-state adjustment capability and adaptability under various conditions using SMA’s full phase transition driving, and providing the impact patterns of each deformation state on aerodynamic coefficients. Finally, a conceptual prototype was developed, and a testing platform was constructed. A feedforward open-loop control technique based on multi-state deformation control was successfully implemented, confirming the engineering feasibility of the suggested multi-state variable camber wing design.

CLC number: V221+.3;TB553 Document code: A Article ID: 1001-5965(2026)03-0917-09

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Journal of Beijing University of Aeronautics and Astronautics
Pages 917-925

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Cite this article:
WANG Z, LU Z, LI H, et al. Design, analysis, and experimentation of SMA-driven multi-state variable camber wing. Journal of Beijing University of Aeronautics and Astronautics, 2026, 52(3): 917-925. https://doi.org/10.13700/j.bh.1001-5965.2023.0844

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Received: 02 January 2024
Published: 03 April 2024
© Journal of Beijing University of Aeronautics and Astronautics