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脑积水脑室扩张的非线性孔隙塑性模型

Nonlinear poroplastic model of ventricular dilation in hydrocephalus.

作者信息

Momjian Shahan, Bichsel Denis

机构信息

Department of Clinical Neurosciences/Service of Neurosurgery, Geneva University Hospitals and University of Geneva, Geneva, Switzerland.

出版信息

J Neurosurg. 2008 Jul;109(1):100-7. doi: 10.3171/JNS/2008/109/7/0100.

Abstract

OBJECT

The mechanism of ventricular dilation in normal-pressure hydrocephalus remains unclear. Numerical finite-element (FE) models of hydrocephalus have been developed to investigate the biomechanics of ventricular enlargement. However, previous linear poroelastic models have failed to reproduce the relatively larger dilation of the horns of the lateral ventricles. In this paper the authors instead elaborated on a nonlinear poroplastic FE model of the brain parenchyma and studied the influence of the introduction of these potentially more realistic mechanical behaviors on the prediction of the ventricular shape.

METHODS

In the proposed model the elasticity modulus varies as a function of the distension of the porous matrix, and the internal mechanical stresses are relaxed after each iteration, thereby simulating the probable plastic behavior of the brain tissue. The initial geometry used to build the model was extracted from CT scans of patients developing hydrocephalus, and the results of the simulations using this model were compared with the real evolution of the ventricular size and shape in the patients.

RESULTS

The authors' model predicted correctly the magnitude and shape of the ventricular dilation in real cases of acute and chronic hydrocephalus. In particular, the dilation of the frontal and occipital horns was much more realistic.

CONCLUSIONS

This finding suggests that the nonlinear and plastic mechanical behaviors implemented in the present numerical model probably occur in reality. Moreover, the availability of such a valid FE model, whose mechanical parameters approach real mechanical properties of the brain tissue, might be useful in the further modeling of ventricular dilation at a normal pressure.

摘要

目的

常压性脑积水脑室扩张的机制仍不清楚。已开发出脑积水的数值有限元(FE)模型来研究脑室扩大的生物力学。然而,先前的线性多孔弹性模型未能再现侧脑室角相对较大的扩张。在本文中,作者转而详细阐述了脑实质的非线性多孔塑性有限元模型,并研究了引入这些可能更符合实际的力学行为对脑室形状预测的影响。

方法

在所提出的模型中,弹性模量随多孔基质的扩张而变化,并且每次迭代后内部机械应力都会松弛,从而模拟脑组织可能的塑性行为。用于构建模型的初始几何形状是从脑积水患者的CT扫描中提取的,并将使用该模型的模拟结果与患者脑室大小和形状的实际演变进行了比较。

结果

作者的模型正确预测了急性和慢性脑积水实际病例中脑室扩张的大小和形状。特别是,额角和枕角的扩张更为逼真。

结论

这一发现表明,当前数值模型中实现的非线性和塑性力学行为可能在现实中发生。此外,这样一个有效的有限元模型,其力学参数接近脑组织的实际力学特性,可能有助于进一步模拟常压下的脑室扩张。

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