Hydrocephalic cerebrospinal fluid flowing rotationally with pulsatile boundaries: A mathematical simulation of the thermodynamical approach

IF 3.2 3区 工程技术 Q2 MECHANICS Theoretical and Applied Mechanics Letters Pub Date : 2023-01-01 DOI:10.1016/j.taml.2022.100418
Hemalatha Balasundaram , Senthamilselvi Sathyamoorthi , Unai Fernandez-Gamiz , Samad Noeiaghdam , Shyam Sundar Santra
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引用次数: 1

Abstract

To study the kinematics of flow rate and ventricular dilatation, an analytical perturbation approach of hydrocephalus has been devised. This research provides a comprehensive investigation of the characteristics of cerebrospinal fluid (CSF) flow and pressure in a hydrocephalic patient. The influence of hydrocephalic CSF, flowing rotationally with realistic dynamical characteristics on pulsatile boundaries of subarachnoid space, was demonstrated using a nonlinear controlling system of CSF. An analytical perturbation method of hydrocephalus has been developed to investigate the biomechanics of fluid flow rate and the ventricular enlargement. In this paper presents a detailed analysis of CSF flow and pressure dynamics in a hydrocephalic patient. It was elaborated with a nonlinear governing model of CSF to show the influence of hydrocephalic CSF, flowing rotationally with realistic dynamical behaviors on pulsatile boundaries of subarachnoid space. In accordance with the suggested model, the elasticity factor changes depending on how much a porous layer, in this case the brain parenchyma, is stretched. It was improved to include the relaxation of internal mechanical stresses for various perturbation orders, modelling the potential plasticity of brain tissue. The initial geometry that was utilised to create the framework of CSF with pathological disease hydrocephalus and indeed the output of simulations using this model were compared to the actual progression of ventricular dimensions and shapes in patients. According to this observation, the non - linear and elastic mechanical phenomena incorporated into the current model are probably true. Further modelling of ventricular dilation at a normal pressure may benefit from the existence of a valid model whose parameters approximate genuine mechanical characteristics of the cerebral cortex.

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以脉动边界旋转流动的脑积水脑脊液:热力学方法的数学模拟
为了研究脑积水的血流速率和心室扩张的运动学,提出了一种分析脑积水的摄动方法。本研究提供了脑积水患者脑脊液(CSF)流量和压力特征的全面调查。利用脑脊液非线性控制系统,研究了脑脊液旋转流动对蛛网膜下腔脉动边界的影响。本文提出了一种分析摄动脑积水的方法来研究脑积水的流体流速和脑室增大的生物力学。本文详细分析了脑积水患者脑脊液的流动和压力动力学。利用脑脊液的非线性控制模型,阐述了脑脊液旋转流动对蛛网膜下腔脉动边界的影响。根据建议的模型,弹性因子的变化取决于多孔层(在这种情况下是脑实质)被拉伸的程度。它被改进为包括内部机械应力的各种扰动的松弛,模拟大脑组织的潜在可塑性。用于创建病理性脑积水脑脊液框架的初始几何形状,以及使用该模型的模拟输出,与患者心室尺寸和形状的实际进展进行了比较。根据这一观察,纳入当前模型的非线性和弹性力学现象可能是正确的。进一步模拟正常压力下的心室扩张可能受益于有效模型的存在,其参数接近真实的大脑皮层力学特性。
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来源期刊
CiteScore
6.20
自引率
2.90%
发文量
545
审稿时长
12 weeks
期刊介绍: An international journal devoted to rapid communications on novel and original research in the field of mechanics. TAML aims at publishing novel, cutting edge researches in theoretical, computational, and experimental mechanics. The journal provides fast publication of letter-sized articles and invited reviews within 3 months. We emphasize highlighting advances in science, engineering, and technology with originality and rapidity. Contributions include, but are not limited to, a variety of topics such as: • Aerospace and Aeronautical Engineering • Coastal and Ocean Engineering • Environment and Energy Engineering • Material and Structure Engineering • Biomedical Engineering • Mechanical and Transportation Engineering • Civil and Hydraulic Engineering Theoretical and Applied Mechanics Letters (TAML) was launched in 2011 and sponsored by Institute of Mechanics, Chinese Academy of Sciences (IMCAS) and The Chinese Society of Theoretical and Applied Mechanics (CSTAM). It is the official publication the Beijing International Center for Theoretical and Applied Mechanics (BICTAM).
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