Thermal transport of biological base fluid with copper and iron oxide nanoparticles in wavy channel.

IF 3.1 4区 医学 Q2 BIOPHYSICS
Kamel Guedri, Aamar Abbasi, Kamel Al-Khaled, Waseh Farooq, Sami Ullah Khan, Muhammad Ijaz Khan, Ahmed M Galal
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引用次数: 0

Abstract

The nanoparticles are frequently used in biomedical science for the treatment of diseases like cancer and these nanoparticles are injected in blood which is transported in the cardiovascular system on the principle of peristalsis. This study elaborates the effects of Lorentz force and joule heating on the peristaltic flow of copper and iron oxide suspended blood based nanofluid in a complex wavy non-uniform curved channel. The Brinkman model is utilized for the temperature dependent viscosity and thermal conductivity. The problem is formulated using the fundamental laws in terms of coupled partial differential equations which are simplified using the creeping flow phenomenon. The graphical results for velocity, temperature, streamlines, and axial pressure are simulated numerically. The concluded observations deduce that the solid volume fraction of nanoparticles reduces the velocity and enhance the pressure gradient and accumulation of trapping bolus in the upper half of the curved channel is noticed for temperature dependent viscosity.

氧化铜和氧化铁纳米颗粒在波浪通道中的热传递。
纳米颗粒经常用于生物医学科学,用于治疗癌症等疾病,这些纳米颗粒被注射到血液中,血液根据蠕动原理在心血管系统中运输。本研究详细阐述了洛伦兹力和焦耳加热对铜和氧化铁悬浮性血基纳米流体在复杂波浪状非均匀弯曲通道中蠕动流动的影响。利用Brinkman模型计算黏度和导热系数。用基本定律表示耦合偏微分方程,用蠕变流动现象进行简化。对速度、温度、流线和轴向压力的图形结果进行了数值模拟。结果表明,纳米颗粒的固体体积分数降低了速度,增加了压力梯度,并且在温度依赖的粘度中,在弯曲通道的上半部分注意到捕获球的积累。
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来源期刊
Journal of Applied Biomaterials & Functional Materials
Journal of Applied Biomaterials & Functional Materials BIOPHYSICS-ENGINEERING, BIOMEDICAL
CiteScore
4.40
自引率
4.00%
发文量
36
审稿时长
>12 weeks
期刊介绍: The Journal of Applied Biomaterials & Functional Materials (JABFM) is an open access, peer-reviewed, international journal considering the publication of original contributions, reviews and editorials dealing with clinical and laboratory investigations in the fast growing field of biomaterial sciences and functional materials. The areas covered by the journal will include: • Biomaterials / Materials for biomedical applications • Functional materials • Hybrid and composite materials • Soft materials • Hydrogels • Nanomaterials • Gene delivery • Nonodevices • Metamaterials • Active coatings • Surface functionalization • Tissue engineering • Cell delivery/cell encapsulation systems • 3D printing materials • Material characterization • Biomechanics
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