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鸵鸟肢体骨骼结构揭示的智能生物力学适应性

Smart Biomechanical Adaptation Revealed by the Structure of Ostrich Limb Bones.

作者信息

Conti Simone, Sala Giuseppe, Mateus Octavio

机构信息

GEOBIOTEC, Department of Earth Sciences, NOVA School of Science and Technology, Campus de Caparica, 2829-516 Caparica, Portugal.

Department of Aerospace Science and Technology, Politecnico di Milano, Via La Masa 34, 20156 Milano, Italy.

出版信息

Biomimetics (Basel). 2023 Feb 28;8(1):98. doi: 10.3390/biomimetics8010098.

Abstract

Ostriches are known to be the fastest bipedal animal alive; to accomplish such an achievement, their anatomy evolved to sustain the stresses imposed by running at such velocities. Ostriches represent an excellent case study due to the fact that their locomotor kinematics have been extensively studied for their running capabilities. The shape and structure of ostrich bones are also known to be optimized to sustain the stresses imposed by the body mass and accelerations to which the bones are subjected during movements. This study focuses on the limb bones, investigating the structure of the bones as well as the material properties, and how both the structure and material evolved to maximise the performance while minimising the stresses applied to the bones themselves. The femoral shaft is hollowed and it presents an imbricate structure of fused bone ridges connected to the walls of the marrow cavity, while the tibial shaft is subdivided into regions having different mechanical characteristics. These adaptations indicate the optimization of both the structure and the material to bear the stresses. The regionalization of the material highlighted by the mechanical tests represents the capability of the bone to adapt to external stimuli during the life of an individual, optimizing not only the structure of the bone but the material itself.

摘要

鸵鸟是现存已知速度最快的两足动物;为了实现这一成就,它们的解剖结构不断进化,以承受高速奔跑时所产生的压力。鸵鸟是一个绝佳的案例研究对象,因为它们的运动学因其奔跑能力而得到了广泛研究。众所周知,鸵鸟骨骼的形状和结构经过优化,以承受运动过程中身体质量和骨骼所受加速度施加的压力。本研究聚焦于四肢骨骼,研究骨骼的结构以及材料特性,以及结构和材料如何共同进化,以在将施加于骨骼自身的压力降至最低的同时,最大限度地提高性能。股骨干是中空的,呈现出一种由融合的骨嵴组成的叠瓦状结构,与骨髓腔壁相连,而胫骨干则被细分为具有不同力学特性的区域。这些适应性变化表明结构和材料在承受压力方面都得到了优化。力学测试所突出显示的材料区域化体现了骨骼在个体生命过程中适应外部刺激的能力,不仅优化了骨骼结构,还优化了材料本身。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4a5d/10046004/2ae7fbdc5c65/biomimetics-08-00098-g001.jpg

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