Toohey K S, Kalyanam S, Palaniappan J, Insana M F
Bioengineering, University of Illinois at Urbana-Champaign, MC-278, 1304 Springfield Ave, Urbana, IL 61801.
Mech Mater. 2016 Jan 1;92:175-184. doi: 10.1016/j.mechmat.2015.09.010.
Mechanical properties of soft biological materials are dependent on the responses of the two phases of which they are comprised: the solid matrix and interstitial fluid. Indentation techniques are commonly used to measure properties of such materials, but comparisons between different experimental and analytical techniques can be difficult. Most models relating load and time during spherical indentation are based on Hertzian contact theory, but the exact limitation of this theory for soft materials are unclear. Here, we examine the response of gelatin hydrogels to shear and indentation loading to quantify combined effects of the solid and fluid phases. The instantaneous behavior of the hydrogels is different for each test geometry and loading rate, but the relaxed response, measured by the relaxed modulus, is the same for all tests, within 17%. Additionally, indentation depths from 15-25% of the radius of the spherical indenter are found to minimize error in the estimate of relaxed modulus.
固体基质和间质液。压痕技术通常用于测量此类材料的性能,但不同实验和分析技术之间的比较可能很困难。大多数关于球形压痕过程中载荷与时间关系的模型都基于赫兹接触理论,但该理论对软材料的确切局限性尚不清楚。在此,我们研究明胶水凝胶对剪切和压痕加载的响应,以量化固相和液相的综合效应。水凝胶的瞬时行为因每种测试几何形状和加载速率而异,但通过松弛模量测量的松弛响应在所有测试中相同,误差在17%以内。此外,发现压痕深度为球形压头半径的15 - 25%时,可使松弛模量估计中的误差最小化。