INRiM - Istituto Nazionale di Ricerca Metrologica, Strada Delle Cacce 91, 10135, Torino, Italy.
J Mech Behav Biomed Mater. 2022 Feb;126:105066. doi: 10.1016/j.jmbbm.2021.105066. Epub 2022 Jan 5.
The accurate identification and determination of elastic modulus and toughness, as well as other functional mechanical attributes of artificial tissues, are of paramount importance in several fields of tissue science, tissue engineering and technology, since biomechanical and biophysical behavior is strongly linked to biological features of the medical implants and tissue-engineering scaffolds. When soft or ultra-soft materials are investigated, a relevant dispersion of elastic modulus values can be achieved, due to the strain-stiffening effects, inducing a typical non-linear behavior of these materials, as a function of strain-range. In this short communication, the Apparent elastic modulus strain-range dependence is estimated from a segmentation of the strain stiffening curve, and the related compressive toughness is investigated and discussed, based on experimental evidence, for 6 different kinds of gels, used for artificial tissue fabrication; experimental results are compared to mechanical properties of native human tissues.
准确识别和确定人工组织的弹性模量和韧性,以及其他功能机械属性,在组织科学、组织工程和技术的多个领域都至关重要,因为生物力学和生物物理行为与医学植入物和组织工程支架的生物学特征密切相关。当研究软质或超软材料时,由于应变硬化效应,可以实现弹性模量值的相关分散,从而导致这些材料的典型非线性行为,作为应变范围的函数。在本简短通讯中,根据实验证据,通过对应变硬化曲线的分段,估计了表观弹性模量应变范围依赖性,并对相关压缩韧性进行了研究和讨论,用于人工组织制造的 6 种不同凝胶;实验结果与天然人体组织的机械性能进行了比较。