Rotational-Stiffness Sensitivity of a Low-Frequency Aeroelastic Branch in a Wingtip-Connected Modular UAV

This study examines how the rotational stiffness of two wingtip interfaces changes the low-frequency aeroelastic response of a free–free, three-module unmanned aerial vehicle. A finite-element model coupled with doublet-lattice aerodynamics is analyzed using the p–k method. The response associated with the lowest retained oscillatory crossing of the locked reference is followed along single-channel and prescribed multi-channel stiffness paths using complex-eigenvector modal assurance criteria. Competing crossings and discrete unequal-interface cases are reported separately. Rotation about the spanwise joint axis (DOF 5) produces the largest target migration, from approximately 11.7 to 31.7 m/s; the other two channels affect this target less, although DOF 4 can introduce a lower-speed competing response. Unequal-interface cases change candidate ordering without establishing a universal asymmetry law. A five-case Nastran–ZAERO comparison reproduces the selected stiffness trends, with an approximately 10.2% difference in low-frequency crossing speeds. The contribution is a comparison of channel-dependent target migration and candidate competition under common modeling assumptions. The results constitute a branch-specific numerical sensitivity analysis under linear, zero-structural-damping assumptions; they do not establish a global or experimentally validated flutter boundary.

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Publication Details

Journal
Aerospace
Published
2026-09-24
DOI
https://doi.org/10.3390/aerospace13100861
Primary Topic
Aeroelasticity and Vibration Control
Type
article
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article

Rotational-Stiffness Sensitivity of a Low-Frequency Aeroelastic Branch in a Wingtip-Connected Modular UAV

Chen Zhu, Jian Zhang, Ying Bi, Zhu Zijian et al.
Aerospace
Aeroelasticity and Vibration Control
article

Rotational-Stiffness Sensitivity of a Low-Frequency Aeroelastic Branch in a Wingtip-Connected Modular UAV

Chen Zhu, Jian Zhang, Ying Bi, Zhu Zijian, Zhuolin Ying
article en

Abstract

This study examines how the rotational stiffness of two wingtip interfaces changes the low-frequency aeroelastic response of a free–free, three-module unmanned aerial vehicle. A finite-element model coupled with doublet-lattice aerodynamics is analyzed using the p–k method. The response associated with the lowest retained oscillatory crossing of the locked reference is followed along single-channel and prescribed multi-channel stiffness paths using complex-eigenvector modal assurance criteria. Competing crossings and discrete unequal-interface cases are reported separately. Rotation about the spanwise joint axis (DOF 5) produces the largest target migration, from approximately 11.7 to 31.7 m/s; the other two channels affect this target less, although DOF 4 can introduce a lower-speed competing response. Unequal-interface cases change candidate ordering without establishing a universal asymmetry law. A five-case Nastran–ZAERO comparison reproduces the selected stiffness trends, with an approximately 10.2% difference in low-frequency crossing speeds. The contribution is a comparison of channel-dependent target migration and candidate competition under common modeling assumptions. The results constitute a branch-specific numerical sensitivity analysis under linear, zero-structural-damping assumptions; they do not establish a global or experimentally validated flutter boundary.

AerospaceVol. 13(10)
Chinese Academy of Sciences (CN), Trinity College Dublin (IE), National Space Science Center (CN), Institute of Engineering Thermophysics (CN), Space Engineering University (CN), University of Chinese Academy of Sciences (CN)
Openalex Percentile: Top 8%
Aeroelasticity and Vibration Control
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Rotational-Stiffness Sensitivity of a Low-Frequency Aeroelastic Branch in a Wingtip-Connected Modular UAV — Chen Zhu, Jian Zhang, et al. · Aerospace (2026) | TGRS Research Map | TGRS