Materials and Structures Inspired by Human Heel Pads for Advanced Biomechanical Function.

IF 3.4 3区 医学 Q1 ENGINEERING, MULTIDISCIPLINARY
Zhiqiang Zhuang, Congtian Gu, Shunlin Li, Hu Shen, Ning Liu, Ziwei Li, Dakai Wang, Cong Wang, Linpeng Liu, Kaixian Ba, Bin Yu, Guoliang Ma
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Abstract

The heel pad, located under the calcaneus of the human foot, is a hidden treasure that has been subjected to harsh mechanical conditions such as impact, vibration, and cyclic loading. This has resulted in a unique compartment structure and material composition, endowed with advanced biomechanical functions including cushioning, vibration reduction, fatigue resistance, and touchdown stability, making it an ideal natural bionic prototype in the field of bionic materials. It has been shown that the highly specialized structure and material composition of the heel pad endows it with biomechanical properties such as hyperelasticity, viscoelasticity, and mechanical anisotropy. These complex biomechanical properties underpin its advanced functions. Although it is known that these properties interact with each other, the detailed influence mechanism remains unclear, which restricts its application as a bionic prototype in the field of bionic materials. Therefore, this study provides a comprehensive review of the structure, materials, biomechanical properties, and functions of the heel pad. It focuses on elucidating the relationships between the structure, materials, biomechanical properties, and functions of heel pads and proposes insights for the study of bionic materials using the heel pad as a bionic prototype. Finally, a research idea to analyze the advanced mechanical properties of heel pads by integrating sophisticated technologies is proposed, aiming to provide directions for further in-depth research on heel pads and inspiration for the innovative design of advanced bionic materials.

受人类脚垫启发的先进生物力学功能材料和结构。
脚后跟垫位于人足跟骨下方,是一个隐藏的宝藏,它经历了冲击、振动和循环载荷等恶劣的机械条件。这导致了独特的隔室结构和材料组成,具有先进的生物力学功能,包括缓冲、减振、抗疲劳和着陆稳定性,使其成为仿生材料领域理想的天然仿生原型。研究表明,足跟垫高度专业化的结构和材料组成使其具有超弹性、粘弹性和力学各向异性等生物力学特性。这些复杂的生物力学特性支撑着它的先进功能。虽然已知这些特性之间存在相互作用,但具体的影响机制尚不清楚,这限制了其作为仿生原型在仿生材料领域的应用。因此,本研究对足跟垫的结构、材料、生物力学性能和功能进行了全面的综述。重点阐述了鞋垫的结构、材料、生物力学性能和功能之间的关系,并提出了以鞋垫为仿生原型的仿生材料研究的见解。最后,提出了整合尖端技术分析鞋垫先进力学性能的研究思路,旨在为鞋垫的进一步深入研究提供方向,并为先进仿生材料的创新设计提供灵感。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Biomimetics
Biomimetics Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
3.50
自引率
11.10%
发文量
189
审稿时长
11 weeks
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