Tang Di, Chen Kai, Dai Yanbin, Liu Yang, Zhao Yibo, Wang Kunpeng, Wang Siyu, Fan Zhongyong
College of Mechanical Engineering, Zhejiang University of Technology, Hangzhou 310014, China.
Department of Life Sciences, Zhejiang Museum of Natural History, Hangzhou 310014, China.
Biol Open. 2025 Apr 15;14(4). doi: 10.1242/bio.061859. Epub 2025 Apr 10.
Falco peregrinus can achieve highly maneuverable flight through their morphing wing structure, which has significant research value. However, there has been limited research on the F. peregrinus wing musculoskeletal system. In this study, musculoskeletal modeling, flapping movement, and muscle function of F. peregrinus wing were studied through computer modeling and simulation to better understand the biomechanics of F. peregrinus wing flapping. Using anatomical data and the musculoskeletal modeling method based on OPENSIM, a three-dimensional model of the F. peregrinus wing was developed. Based on the experimental data, the flapping movements were reconstructed, muscle movements during different stages of flapping were simulated, and the function of muscles in the flapping process was analyzed. While this study provides valuable insights into the muscle function of F. peregrinus wing during flapping, it also highlights certain limitations, such as the simplification of musculoskeletal structures and joints in the modeling approach and deviations from actual F. peregrinus wing movements. This study provides both experimental and analytical methods for raptor wing flapping research, potentially reducing the need for live experiments and offering valuable insights into the mechanisms of raptor flapping.
矛隼能够通过其可变形的翅膀结构实现高度灵活的飞行,这具有重要的研究价值。然而,关于矛隼翅膀肌肉骨骼系统的研究却很有限。在本研究中,通过计算机建模与模拟,对矛隼翅膀的肌肉骨骼建模、扑翼运动及肌肉功能进行了研究,以更好地理解矛隼翅膀扑动的生物力学原理。利用解剖学数据和基于OPENSIM的肌肉骨骼建模方法,构建了矛隼翅膀的三维模型。基于实验数据,重构了扑翼运动,模拟了扑翼不同阶段的肌肉运动,并分析了扑翼过程中肌肉的功能。虽然本研究为矛隼翅膀扑动过程中的肌肉功能提供了有价值的见解,但也凸显了一些局限性,例如建模方法中肌肉骨骼结构和关节的简化以及与矛隼实际翅膀运动的偏差。本研究为猛禽翅膀扑动研究提供了实验和分析方法,可能减少对活体实验的需求,并为猛禽扑动机制提供有价值的见解。