How Does a Delicate Insect Wing Resist Damage? Chitin Orientation Is Adapted to the Mechanical Demands at the Nanoscale
Abstract
Abstract Insect wings achieve an extraordinary balance between structural robustness and lightweight flexibility, enabling efficient and durable flight. This performance arises from their hierarchical composite architecture, where nanoscale chitin fiber orientations play a critical role in adapting to complex mechanical demands. Using scanning X‐ray micro‐ and nano‐diffraction, the spatial distribution and orientation of chitin fibers in the hindwing of the desert locust Schistocerca gregaria are systematically mapped. These findings reveal two distinct and functionally adaptive chitin orientation patterns in the membranes that vary regionally, optimizing mechanical resilience and deformation control. Finite element simulations further demonstrate how these nanoscale structural adaptations enhance crack resistance, structural integrity, and elastic strain energy distribution, reinforcing vein‐membrane connections for sustained functionality under various loadings. By integrating high‐resolution structural analysis with computational modeling, this study uncovers the sophisticated biomechanical strategies that enable insect wings to endure extreme flight conditions. These insights provide a foundation for bioinspired designs in micro air vehicles and advanced fiber‐reinforced materials.
Article Details
Authors (6)
Chuchu Li
State Key Laboratory of Vaccines for Infectious Diseases Xiang An Biomedicine Laboratory Fujian Provincial Key Laboratory of Innovative Drug Target Research MOE Key Laboratory of Spectrochemical Analysis and Instrumentation School of Pharmaceutical Sciences Xiamen University Xiamen Fujian China
Jiliang Liu
Manfred Burghammer
European Synchrotron Radiation Facility, 6 rue Jules Horowitz, BP220, Grenoble 38043 cedex 9, France
Chao Wan
Stanislav N. Gorb
Clemens F. Schaber
Functional Morphology and Biomechanics Zoological Institute Kiel University 24098 Kiel Germany