Turbulent blood flow in a cerebral artery with an aneurysm

IF 2.4 3区 医学 Q3 BIOPHYSICS
R.D. Luciano , B.L. da Silva , X.B. Chen , D.J. Bergstrom
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引用次数: 0

Abstract

Unruptured intracranial aneurysms are common in the general population, and many uncertainties remain when predicting rupture risks and treatment outcomes. One of the cutting-edge tools used to investigate this condition is computational fluid dynamics (CFD). However, CFD is not yet mature enough to guide the clinical management of this disease. In addition, recent studies have reported significant flow instabilities when refined numerical methods are used. Questions remain as to how to properly simulate and evaluate this flow, and whether these instabilities are really turbulence. The purpose of the present study is to evaluate the impact of the simulation setup on the results and investigate the occurrence of turbulence in a cerebral artery with an aneurysm. For this purpose, direct numerical simulations were performed with up to 200 cardiac cycles and with data sampling rates of up to 100,000 times per cardiac cycle. Through phase-averaging or triple decomposition, the contributions of turbulence and of laminar pulsatile waves to the velocity, pressure and wall shear stress fluctuations were distinguished. For example, the commonly used oscillatory shear index was found to be closely related to the laminar waves introduced at the inlet, rather than turbulence. The turbulence energy cascade was evaluated through energy spectrum estimates, revealing that, despite the low flow rates and Reynolds number, the flow is turbulent near the aneurysm. Phase-averaging was shown to be an approach that can help researchers better understand this flow, although the results are highly dependent on simulation setup and post-processing choices.

有动脉瘤的脑动脉中的湍流血流。
未破裂的颅内动脉瘤在普通人群中很常见,在预测破裂风险和治疗效果时仍存在许多不确定性。计算流体动力学(CFD)是研究这种情况的尖端工具之一。然而,计算流体动力学尚未成熟到足以指导这种疾病的临床治疗。此外,最近有研究报告称,在使用精细的数值方法时,会出现明显的流动不稳定性。如何正确模拟和评估这种流动,以及这些不稳定性是否真的是湍流,这些问题依然存在。本研究的目的是评估模拟设置对结果的影响,并调查动脉瘤脑动脉中湍流的发生情况。为此,我们进行了多达 200 个心动周期的直接数值模拟,每个心动周期的数据采样率高达 100,000 次。通过相位平均或三重分解,区分了湍流和层流脉动波对速度、压力和壁剪应力波动的贡献。例如,研究发现常用的振荡剪切指数与入口处引入的层流波而不是湍流密切相关。通过能谱估计评估了湍流能量级联,发现尽管流速和雷诺数较低,但动脉瘤附近的流动是湍流。研究表明,相位平均法可以帮助研究人员更好地理解这种流动,尽管其结果在很大程度上取决于模拟设置和后处理选择。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of biomechanics
Journal of biomechanics 生物-工程:生物医学
CiteScore
5.10
自引率
4.20%
发文量
345
审稿时长
1 months
期刊介绍: The Journal of Biomechanics publishes reports of original and substantial findings using the principles of mechanics to explore biological problems. Analytical, as well as experimental papers may be submitted, and the journal accepts original articles, surveys and perspective articles (usually by Editorial invitation only), book reviews and letters to the Editor. The criteria for acceptance of manuscripts include excellence, novelty, significance, clarity, conciseness and interest to the readership. Papers published in the journal may cover a wide range of topics in biomechanics, including, but not limited to: -Fundamental Topics - Biomechanics of the musculoskeletal, cardiovascular, and respiratory systems, mechanics of hard and soft tissues, biofluid mechanics, mechanics of prostheses and implant-tissue interfaces, mechanics of cells. -Cardiovascular and Respiratory Biomechanics - Mechanics of blood-flow, air-flow, mechanics of the soft tissues, flow-tissue or flow-prosthesis interactions. -Cell Biomechanics - Biomechanic analyses of cells, membranes and sub-cellular structures; the relationship of the mechanical environment to cell and tissue response. -Dental Biomechanics - Design and analysis of dental tissues and prostheses, mechanics of chewing. -Functional Tissue Engineering - The role of biomechanical factors in engineered tissue replacements and regenerative medicine. -Injury Biomechanics - Mechanics of impact and trauma, dynamics of man-machine interaction. -Molecular Biomechanics - Mechanical analyses of biomolecules. -Orthopedic Biomechanics - Mechanics of fracture and fracture fixation, mechanics of implants and implant fixation, mechanics of bones and joints, wear of natural and artificial joints. -Rehabilitation Biomechanics - Analyses of gait, mechanics of prosthetics and orthotics. -Sports Biomechanics - Mechanical analyses of sports performance.
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