TY - JOUR
T1 - Aerostructural Comparative Study of Composite Strut-and Truss-Braced Wing Configurations
AU - Ma, Yiyuan
AU - Du, Yongqi
AU - Wang, Yue
AU - Zhang, Keshi
AU - Han, Zhonghua
N1 - Publisher Copyright:
© 2025 by Yiyuan Ma, Yongqi Du, Yue Wang, Keshi Zhang, and Zhonghua Han. Published by the Ameriwith permission. All can Institute of Aeronautics and Astronautics, Inc.
PY - 2026/7
Y1 - 2026/7
N2 - As the aviation industry seeks significant improvements in aerodynamic efficiency and emission reduction, ultrahigh-aspect-ratio wings have emerged as a promising solution for future transport aircraft. This study investigates the aerostructural performance of three configurations, that is, a conventional cantilever wing, a strut-braced wing (SBW), and a truss-braced wing (TBW), by employing both aluminum and carbon-fiberreinforced plastic (CFRP) structures. A midfidelity aerostructural analysis framework is developed, coupling a vortex lattice aerodynamic solver with a geometrically nonlinear Timoshenko beam model. Results indicate that, at a wing aspect ratio of 28, the SBW configuration with CFRP achieves a total wing mass below 6000 kg, as compared to nearly 10,000 kg for its aluminum concept. In the TBW configuration, CFRP leads to a smoother spanwise load distribution and an overall structural mass reduction of over 30%. The sensitivity study shows that increasing the aspect ratio and taper ratio leads to nonlinear mass growth in aluminum wings, whereas the CFRP configuration exhibits a more gradual increase and greater responsiveness to strut placement optimization. This study demonstrates the synergistic benefits of composite materials and braced-wing architectures for achieving lightweight, structurally efficient designs, and it offers a validated methodology suitable for early-stage conceptual evaluation of next-generation high-performance aircraft.
AB - As the aviation industry seeks significant improvements in aerodynamic efficiency and emission reduction, ultrahigh-aspect-ratio wings have emerged as a promising solution for future transport aircraft. This study investigates the aerostructural performance of three configurations, that is, a conventional cantilever wing, a strut-braced wing (SBW), and a truss-braced wing (TBW), by employing both aluminum and carbon-fiberreinforced plastic (CFRP) structures. A midfidelity aerostructural analysis framework is developed, coupling a vortex lattice aerodynamic solver with a geometrically nonlinear Timoshenko beam model. Results indicate that, at a wing aspect ratio of 28, the SBW configuration with CFRP achieves a total wing mass below 6000 kg, as compared to nearly 10,000 kg for its aluminum concept. In the TBW configuration, CFRP leads to a smoother spanwise load distribution and an overall structural mass reduction of over 30%. The sensitivity study shows that increasing the aspect ratio and taper ratio leads to nonlinear mass growth in aluminum wings, whereas the CFRP configuration exhibits a more gradual increase and greater responsiveness to strut placement optimization. This study demonstrates the synergistic benefits of composite materials and braced-wing architectures for achieving lightweight, structurally efficient designs, and it offers a validated methodology suitable for early-stage conceptual evaluation of next-generation high-performance aircraft.
UR - https://www.scopus.com/pages/publications/105047527195
U2 - 10.2514/1.C038551
DO - 10.2514/1.C038551
M3 - 文章
AN - SCOPUS:105047527195
SN - 0021-8669
VL - 63
SP - 1596
EP - 1606
JO - Journal of Aircraft
JF - Journal of Aircraft
IS - 4
ER -