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非线性黏弹性生物材料:有意义的特征化和工程启发。

Nonlinear viscoelastic biomaterials: meaningful characterization and engineering inspiration.

机构信息

Hatsopoulos Microfluids Laboratory, Department of Mechanical Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.

出版信息

Integr Comp Biol. 2009 Jul;49(1):40-50. doi: 10.1093/icb/icp010. Epub 2009 Jun 3.

Abstract

Nonlinear mechanical properties play an important role in numerous biological functions, for instance the locomotion strategy used by terrestrial gastropods. We discuss the progress made toward bioinspired snail-like locomotion and the pursuit of an engineered fluid that imitates the nonlinear viscoelastic properties of native gastropod pedal mucus. The rheological behavior of native pedal mucus is characterized using an oscillatory deformation protocol known as large amplitude oscillatory shear, and we review recently developed techniques for appropriately describing nonlinear viscoelastic behavior. Although materials that exhibit purely elastic and purely viscous nonlinearities are amenable to standard techniques for characterization, pedal mucus samples (and biomaterials in general) are viscoelastic, exhibiting both elastic and viscous nonlinear responses simultaneously and requiring advanced techniques for characterization. We reveal the utility of these new methods by examining trail mucus from the terrestrial slug Limax maximus using oscillatory shear rheology. Material responses which previously could only be described mathematically, with little physical insight, can now be interpreted with familiar language such as strain-stiffening/softening and shear-thickening/thinning. The new methodology is applicable to any complex material that can be tested using imposed oscillatory deformations. We have developed data-analysis software to enable wider use of this framework within and beyond the biomaterials community. The functionality of this software is outlined here.

摘要

非线性力学特性在许多生物功能中起着重要作用,例如陆地腹足类动物的运动策略。我们讨论了仿生蜗牛式运动的进展,以及对模仿天然腹足类动物足垫黏液的非线性黏弹性特性的工程化流体的追求。使用称为大振幅振荡剪切的振荡变形方案来表征天然足垫黏液的流变行为,并回顾了最近开发的适当描述非线性黏弹性行为的技术。尽管表现出纯弹性和纯黏性非线性的材料易于进行标准的特性描述技术,但足垫黏液样本(以及一般的生物材料)是黏弹性的,同时表现出弹性和黏性非线性响应,需要先进的特性描述技术。我们通过使用振荡剪切流变学检查陆地蛞蝓 Limax maximus 的尾迹黏液来揭示这些新方法的实用性。以前只能用数学方法描述的材料响应,几乎没有物理洞察力,现在可以用熟悉的语言来解释,例如应变硬化/软化和剪切增稠/变薄。新方法适用于任何可以使用施加的振荡变形进行测试的复杂材料。我们已经开发了数据分析软件,以在生物材料界内外更广泛地使用该框架。这里概述了该软件的功能。

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