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人半月板在受压条件下的应力松弛响应。

Stress-relaxation response of human menisci under confined compression conditions.

机构信息

Institute of Orthopaedic Research and Biomechanics, Centre of Musculoskeletal Research Ulm, University of Ulm, Ulm 89081, Germany.

出版信息

J Mech Behav Biomed Mater. 2013 Oct;26:68-80. doi: 10.1016/j.jmbbm.2013.05.027. Epub 2013 Jun 13.

Abstract

The objective of this study was to determine the viscoelastic properties of human meniscal tissue during stress-relaxation under confined compression conditions. Lateral and medial longitudinal meniscus plugs of 25 donor knees (ntotal=150) were exposed to stress-relaxation tests under confined compression conditions at three compression levels (ε=0.1; 0.15; 0.2). Mathematical modelling using an exponential 1D-diffusion equation was used to predict the viscoelastic properties. Subsequently, finite element (FE) models were created using identical geometry, properties and test conditions as used for the in-vitro tests. Two constitutively different underlying mathematical formulations were applied to the FE models to reveal possible differences in their predictions for the relaxation response. While the first FE model mimicked the analytical model (FE1), the second FE model used a different biphasic, non-linear approach (FE2). Regression analyses showed promising coefficients of determination (R(2)>0.73) between the experimental data and the predictions obtained from the diffusion equation and the two FE models. Mean aggregate modulus, predicted with the diffusion equation (HA=64.0 kPa) was lower than those obtained with the two FE analyses (HA,FE1=91.9 kPa; HA,FE2=81.5 kPa). Mean hydraulic permeability (kFE2=1.5×10(-15)m(4)/Ns) of the second FE2 approach was statistically lower (p<0.01) than the other permeability values (k=3.9×10(-15)m(4)/Ns; kFE1=3.4×10(-15)m(4)/Ns). These differences are mainly due to the different underlying mathematical models used. However, when compared with corresponding literature, the results of the present study indicated good agreement. The results of the present study contribute to a better understanding of the complex nature of meniscal tissue and might also have an impact on the design of future meniscal substitutes.

摘要

本研究旨在确定在约束压缩条件下,人半月板组织在应力松弛过程中的粘弹性特性。在三个压缩水平(ε=0.1;0.15;0.2)下,对 25 个供体膝关节(ntotal=150)的外侧和内侧纵向半月板栓进行约束压缩条件下的应力松弛测试。使用指数 1D 扩散方程的数学建模用于预测粘弹性特性。随后,使用相同的几何形状、特性和测试条件创建有限元(FE)模型,以进行体外测试。将两种不同的基本数学公式应用于 FE 模型,以揭示它们对松弛响应的预测可能存在的差异。第一个 FE 模型模拟了分析模型(FE1),而第二个 FE 模型使用了不同的双相、非线性方法(FE2)。回归分析表明,实验数据与扩散方程和两个 FE 模型的预测之间具有很好的相关性(R(2)>0.73)。扩散方程预测的平均综合模量(HA=64.0 kPa)低于两个 FE 分析(HA,FE1=91.9 kPa;HA,FE2=81.5 kPa)获得的值。第二个 FE2 方法的平均液压渗透率(kFE2=1.5×10(-15)m(4)/Ns)统计学上低于其他渗透率值(k=3.9×10(-15)m(4)/Ns;kFE1=3.4×10(-15)m(4)/Ns)。这些差异主要是由于使用了不同的基本数学模型。然而,与相应的文献相比,本研究的结果表明具有很好的一致性。本研究的结果有助于更好地理解半月板组织的复杂性质,也可能对未来半月板替代品的设计产生影响。

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