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用于生物医学应用的琼脂和结冷胶的应变率和温度依赖性材料特性。

Strain-rate and temperature dependent material properties of Agar and Gellan Gum used in biomedical applications.

作者信息

Schiavi Alessandro, Cuccaro Rugiada, Troia Adriano

机构信息

INRiM - Istituto Nazionale di Ricerca Metrologica, Strada delle Cacce 91, 10135 Torino, Italy.

出版信息

J Mech Behav Biomed Mater. 2016 Jan;53:119-130. doi: 10.1016/j.jmbbm.2015.08.011. Epub 2015 Aug 13.

Abstract

Agar and Gellan Gum are biocompatible polymers extensively used in several fields of tissue engineering research (e.g. tissue replacement, tissue support, tissue mimicking), due to their mechanical behaviour effectively representative of actual biological tissues. Since mechanical properties of artificial tissues are related to biocompatibility and functionality of medical implants and significantly influence adhesion, growth and differentiation of cells in tissue-engineering scaffolds, an accurate characterization of Young׳s modulus and relaxation time processes is needed. In this study, the strain-rate and temperature dependent material properties of Agarose and one among the numerous kind of Gellan Gum commercially available, known as Phytagel(®), have been investigated. Nine hydrogel samples have been realized with different mechanical properties: the first one Agar-based as a reference material, the further eight samples Gellan Gum based in which the effect of dispersed solid particles like kieselguhr and SiC, as enhancing mechanical properties factors, have been investigated as a function of concentration. Stress-strain has been investigated in compression and relaxation time has been evaluated by means of the Kohlrausch-Williams-Watts time decay function. Mechanical properties have been measured as a function of temperature between 20 °C and 35 °C and at different strain rates, from ~10(-3)s(-1) and ~10(-2)s(-1) (or deformation rate from ~0.01 mms(-1) to ~0.1 mms(-1)). From experimental data, the combined temperature and strain-rate dependence of hydrogels Young׳s modulus is determined on the basis of a constitutive model. In addition to a dependence of Young׳s modulus on temperature, a remarkable influence of strain-rate has been observed, especially in the sample containing solid particles; in same ranges of temperature and strain-rate, also relaxation time variations have been monitored in order to identify a possible dependence of damping properties on temperature and strain-rate. The result is the impossibility to determine univocally mechanical properties of studied biomaterials without a proper definition of boundary conditions at which they have been obtained.

摘要

琼脂和结冷胶是生物相容性聚合物,因其力学行为能有效代表实际生物组织,所以广泛应用于组织工程研究的多个领域(如组织替代、组织支撑、组织模拟)。由于人工组织的力学性能与医用植入物的生物相容性和功能相关,且对组织工程支架中细胞的黏附、生长和分化有显著影响,因此需要准确表征杨氏模量和弛豫时间过程。在本研究中,对琼脂糖以及市售多种结冷胶中的一种(称为植物凝胶(®))的应变率和温度依赖性材料特性进行了研究。制备了九个具有不同力学性能的水凝胶样品:第一个以琼脂为基础材料作为参考,另外八个以结冷胶为基础的样品,研究了诸如硅藻土和碳化硅等分散固体颗粒作为增强力学性能因素时,其浓度对应力应变的影响。对压缩过程中的应力应变进行了研究,并通过科尔劳施 - 威廉姆斯 - 瓦茨时间衰减函数评估了弛豫时间。在20℃至35℃之间的不同温度以及从10(-3)s(-1)到10(-2)s(-1)的不同应变率(或变形率从0.01 mms(-1)到0.1 mms(-1))下测量了力学性能。根据实验数据,基于本构模型确定了水凝胶杨氏模量的温度和应变率联合依赖性。除了杨氏模量对温度的依赖性外,还观察到应变率有显著影响,特别是在含有固体颗粒的样品中;在相同的温度和应变率范围内,还监测了弛豫时间的变化,以确定阻尼特性对温度和应变率的可能依赖性。结果表明,如果没有对获取生物材料力学性能时的边界条件进行适当定义,就无法唯一确定所研究生物材料具有的力学性能。

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