Department of Mechanical Engineering, Islamic Azad University, Science and Research Branch, Tehran, Iran.
Department of Chemistry, College of Science, University of Kerbala, Kerbala, Iraq.
J Therm Biol. 2023 Oct;117:103718. doi: 10.1016/j.jtherbio.2023.103718. Epub 2023 Oct 4.
The study of blood flow in obstructed arteries is a significant focus in computational fluid dynamics, particularly in the field of biomedicine. The primary objective of this research is to investigate the impact of pulsating blood velocity on heat transfer within biological systems, with a specific focus on blood flow in obstructed arteries. To achieve this goal, a comprehensive 3D model representing a straight, constricted blood vessel has been developed. This model incorporates periodic, unsteady, Newtonian blood flow along with the presence of gold and silver nanoparticles. Leveraging the Finite Element Method (FEM), the Navier-Stokes and energy equations have been rigorously solved. Through the investigation, it is aim to shed light on how alterations in the pulsation rate and the volume fraction of nanoparticles influence both temperature distribution and velocity profiles within the system. The present study findings unequivocally highlight that the behavior of pulsatile nanofluid flow significantly impacts the velocity field and heat transfer performance. However, it is imperative to note that the extent of this influence varies depending on the specific volume fractions involved. Specifically, higher volume fractions of nanofluids correlate with elevated velocities at the center of the vessel and decreased velocities near the vessel walls. This pattern also extends to the temperature distribution and heat flux within the vessel, further underscoring the paramount importance of pulsatile flow dynamics in biomedicine and computational fluid dynamics research. Besides, results revealed that the presence of occlusion significantly affects the heat transfer and fluid flow.
阻塞动脉血流的研究是计算流体动力学中的一个重要焦点,特别是在生物医学领域。这项研究的主要目的是研究脉动血流速度对生物系统内传热的影响,特别关注阻塞动脉中的血流。为了实现这一目标,开发了一个代表直的、狭窄的血管的全面的 3D 模型。该模型结合了周期性、非稳态、牛顿血流以及金和银纳米粒子的存在。利用有限元方法(FEM),严格求解了纳维-斯托克斯方程和能量方程。通过研究,旨在阐明脉动率和纳米粒子体积分数的变化如何影响系统内的温度分布和速度分布。本研究的结果明确表明,脉动纳米流体流动的行为显著影响速度场和传热性能。然而,必须注意的是,这种影响的程度取决于具体涉及的体积分数。具体而言,纳米流体的较高体积分数与血管中心的较高速度和靠近血管壁的较低速度相关。这种模式也扩展到了血管内的温度分布和热通量,进一步强调了脉动流动动力学在生物医学和计算流体动力学研究中的至关重要性。此外,结果表明,阻塞的存在显著影响传热和流动。