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一种用于双相多孔粘弹性水凝胶材料参数识别的双重优化方法:在超顺应性软组织中的潜在应用。

A dual optimization method for the material parameter identification of a biphasic poroviscoelastic hydrogel: Potential application to hypercompliant soft tissues.

作者信息

Olberding Joseph E, Francis Suh J-K

机构信息

Department of Biomedical Engineering, Tulane University, Lindy Boggs Center, Suite 500, New Orleans, LA 70118, USA.

出版信息

J Biomech. 2006;39(13):2468-75. doi: 10.1016/j.jbiomech.2005.07.019. Epub 2005 Sep 8.

Abstract

A dual-indentation creep and stress relaxation methodology was developed and validated for the material characterization of very soft biological tissue within the framework of the biphasic poroviscoelastic (BPVE) constitutive model. Agarose hydrogel, a generic porous medium with mobile fluid, served as a mechanical tissue analogue for validation of the experimental procedure. Indentation creep and stress relaxation tests with a solid plane-ended cylindrical indenter were performed at identical sites on a gel sample with dimensions large enough with respect to indenter size in order to satisfy an infinite layer assumption. A finite element (FE) formulation coupled to a global optimization algorithm was utilized to simultaneously curve-fit the creep and stress relaxation data and extract the BPVE model parameters for the agarose gel. A numerical analysis with artificial data was conducted to validate the uniqueness of the computational procedure. The BPVE model was able to successfully cross-predict both creep and stress relaxation behavior for each pair of experiments with a single unique set of material parameters. Optimized elastic moduli were consistent with those reported in the literature for agarose gel. With the incorporation of appropriately-sized indenters to satisfy more stringent geometric constraints, this simple yet powerful indentation methodology can provide a straightforward means by which to obtain the BPVE model parameters of biological soft tissues that are difficult to manipulate (such as brain and adipose) while maintaining a realistic in situ loading environment.

摘要

在双相多孔粘弹性(BPVE)本构模型框架内,开发并验证了一种双压痕蠕变和应力松弛方法,用于非常柔软生物组织的材料表征。琼脂糖水凝胶是一种具有流动流体的通用多孔介质,用作机械组织类似物以验证实验程序。使用实心平面端圆柱形压头在凝胶样品上的相同位置进行压痕蠕变和应力松弛测试,凝胶样品的尺寸相对于压头尺寸足够大,以满足无限层假设。利用与全局优化算法耦合的有限元(FE)公式,同时对蠕变和应力松弛数据进行曲线拟合,并提取琼脂糖水凝胶的BPVE模型参数。进行了人工数据的数值分析,以验证计算过程的唯一性。BPVE模型能够使用一组唯一的材料参数成功地交叉预测每对实验的蠕变和应力松弛行为。优化后的弹性模量与文献中报道的琼脂糖水凝胶的弹性模量一致。通过加入尺寸合适的压头以满足更严格的几何约束,这种简单而强大的压痕方法可以提供一种直接的手段,通过它可以在保持实际原位加载环境的同时,获得难以操作的生物软组织(如大脑和脂肪组织)的BPVE模型参数。

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