以C2H6O2为基液,在垂直通道多孔介质中生成热磁纳米流体中血小板状Al2O3和TiO2的分析

S. Hazarika, Sahin Ahmed, Ali J. Chamkha
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引用次数: 3

摘要

本文研究了纳米颗粒Al2O3和TiO2在EG基液中通过两垂直表面的饱和多孔介质的非定常磁流动。用流动模型的非线性偏微分方程来表示初始条件和边界条件的物理性质。推导了纳米流体速度和温度随通道的解析表达式,并利用Matlab代码对物理变量的显著性结果进行了绘图。从纳米流体速度和温度结果的物理角度来看,基液C2H6O2具有比水更高的粘度和导热系数。在物理上,血小板形状的Al2O3纳米流体比TiO2纳米流体具有最高的速度。研究发现,纳米流体的速度提高了Al2O3 - EG和TiO2 - EG基纳米流体的孔隙率和纳米颗粒体积分数。然而,由于产生热量的影响,这种趋势是相反的。结果表明,随着纳米颗粒体积分数的增加,表面附近的表面摩擦会增加,但由于纳米颗粒的摩擦作用较小,表面的摩擦曲线逐渐变为线性。纳米颗粒体积分数越高,热导率越高,热边界层厚度越小。结果表明,该方法能较好地逼近非线性系统的解析解,具有较高的精度。金属氧化物纳米颗粒由于其体积小,在制药工业和生物医学工程等领域有着广泛的应用。在Couette和Poiseuille流动中,纳米颗粒在增强传热方面起着至关重要的作用,无限级数溶液已被用于求解非线性PDE。概述了Al2O3和TiO2在重要的传热应用中的用途。金属氧化物纳米颗粒的物理化学和结构特征具有多种生物医学应用
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analysis of Platelet Shape Al2O3 and TiO2 on Heat Generative Hydromagnetic Nanofluids for the Base Fluid C2H6O2 in a Vertical Channel of Porous Medium
An analytical investigation is performed on the unsteady hydromagnetic flow of nanoparticles Al2O3 and TiO2 in the EG base fluid through a saturated porous medium bounded by two vertical surfaces with heat generation and no-slip boundary conditions. The physics of initial and boundary conditions is designated with the flow model's non-linear partial differential equations. The analytical expressions of nanofluid velocity and temperature with the channel are derived, and Matlab Codes are used to plot the significant results for physical variables. From the physical point of view for nanofluid velocity and temperature results, the base fluid C2H6O2 has a higher viscosity and thermal conductivity than that of water. Physically, the platelet shape Al2O3 nanofluid has the highest velocity than TiO2 nanofluid. It is found that the velocity of nanofluid enhanced the porosity and nanoparticles volume fraction for Al2O3 - EG and TiO2 - EG base nanofluids. However, this trend is reversed for the effects of heat generation. Obtained results indicate that an increase in nanoparticles volume fraction raises the skin friction near the surface, but profiles gradually become linear, due to less frictional effects of nanoparticles. Moreover, due to higher values of nanoparticles volume fraction, the thermal conductivity is raised, and thus the thickness of the thermal boundary layer is declined. The results show that the method provides excellent approximations to the analytical solution of nonlinear system with high accuracy. Metal oxide nanoparticles have wide applications in various fields due to their small sizes, such as the pharmaceutical industry and biomedical engineering. HIGHLIGHTS Impact of platelet shape Al2O3 and TiO2 for base fluid C2H6O2 is studied In Couette and Poiseuille flow, nanoparticles play a vital role to enhance the heat transfer The infinite series solution has been used for solving the non-linear PDE’s The uses of Al2O3 and TiO2 in significant heat transfer applications is overviewed The physiochemical and structural features of metal oxide nanoparticles have diverse biomedical applications GRAPHICAL ABSTRACT
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