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Non-ideal effects in indentation testing of soft tissues

机译:软组织压痕测试中的非理想效果

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Indentation has several advantages as a loading mode for determining constitutive behavior of soft, biological tissues. However, indentation induces a complex, spatially heterogeneous deformation field that creates analytical challenges for the calculation of constitutive parameters. As a result, investigators commonly assume small indentation depths and large sample thicknesses to simplify analysis and then restrict indentation depth and sample geometry to satisfy these assumptions. These restrictions limit experimental resolution in some fields, such as brain biomechanics. However, recent experimental evidence suggests that conventionally applied limits are in fact excessively conservative. We conducted a parametric study of indentation loading with various indenter geometries, surface interface conditions, sample compressibility, sample geometry and indentation depth to quantitatively describe the deviation from previous treatments that results from violation of the assumptions of small indentation depth and large sample thickness.We found that the classical solution was surprisingly robust to violation of the assumption of small strain but highly sensitive to violation of the assumption of large sample thickness, particularly if the indenter was cylindrical. The ramifications of these findings for design of indentation experiments are discussed and correction factors are presented to allow future investigators to account for these effects without recreating our finite element models.
机译:压痕作为确定软的生物组织的本构行为的加载模式具有几个优点。但是,压痕会引起一个复杂的空间异质形变场,这会给计算本构参数带来挑战。结果,研究人员通常假定压痕深度较小,而样品厚度较大,以简化分析,然后限制压痕深度和样品几何形状以满足这些假设。这些限制限制了某些领域的实验分辨率,例如大脑生物力学。但是,最近的实验证据表明,常规应用的限制实际上过于保守。我们对压痕载荷进行了参数研究,该压痕载荷具有各种压头几何形状,表面界面条件,样品可压缩性,样品几何形状和压痕深度,以定量描述与先前处理的偏差,这些偏差是由于违反了较小压痕深度和较大样品厚度的假设而导致的。研究人员发现,经典的解决方案对于违反小应变的假设具有惊人的鲁棒性,但对于违反大样品厚度的假设非常敏感,特别是在压头为圆柱形的情况下。讨论了这些结果对压痕实验设计的影响,并提出了校正因子,以使将来的研究人员能够在不重建我们的有限元模型的情况下解决这些影响。

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