使用 Powell-Eyring 纳米流体的周期性边界层中的波振荡和湍流热流、非线性辐射以及通过有限差分法产生的熵

IF 5.6 1区 数学 Q1 MATHEMATICS, INTERDISCIPLINARY APPLICATIONS
Zia Ullah , Md. Mahbub Alam , Essam R. El-Zahar , Sana Shahab , Hanaa Abu-Zinadah , Laila F. Seddek , Abdelhalim Ebaid
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引用次数: 0

摘要

利用Powell-Eyring纳米流体研究周期性边界层的波动和沿垂直锥体的波动热质量分布是当前分析的新颖之处。运用熵生、热泳、非线性辐射和浮力对振荡传热强化的意义。建立了非定常偏微分公式,并将其简化为使用无单位变量的简单方程。在稳态和周期性条件下,探讨了热和质量分布、流线、等温线、流体速度、流体温度和浓度的振荡行为。为了得到稳定和波动的结果,利用斯托克斯振荡和原始因子建立了类似的能量、动量和质量关系方程。算法采用有限差分法隐式格式在FORTRAN工具中生成。用高斯消元法求出了未知的热量和流量。利用振荡公式探讨了振幅和相位角,计算了加热稳定性和质量/浓度循环的振荡量和周期量。注意到,在大辐射下,纳米流体的速度变化和壁温变化幅度较大。随着布朗运动和热泳力的增大,加热速率和浓度分布更加均匀。对于每一个热辐射值,在传热和传质过程中都观察到较大的振荡和振幅。随着Powell-Eyring参数的减小和混合对流参数的增大,流线变化量增大。等温线轮廓的最大尺度出现在热辐射增大和鲍威尔-埃林参数减小的时候。推导出混合对流参数增大对传质传热的显著改善。表面摩擦率随着鲍威尔-埃环材料系数的增大而增大。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Wave oscillation in periodic-boundary layers and turbulent heat flow using Powell-Eyring nanofluid, nonlinear radiation and entropy generation via finite-difference method
Wave oscillations of periodic boundary layers and enhancement of fluctuating heat and mass distribution along vertical cone using Powell-Eyring nanofluid aspects is the novelty of current analysis. The significance of entropy generation, thermophoresis, nonlinear radiation and buoyancy force is applied for oscillating heat transfer enhancement. The unsteady partial differential formulation is developed and reduced into simple equations using unit-less variables. The oscillation behavior of heat and mass distribution, streamlines, isothermal lines, fluid velocity, fluid temperature and concentration are explored using steady and periodic conditions. To obtain steady and fluctuating outcomes, the Stokes oscillations and primitive factors are used to make similar relation of energy, momentum and mass equations. The algorithm is generated in FORTRAN tool using the implicit scheme of finite difference approach. The unknown thermal and flow quantities are obtained using Gaussian elimination scheme. The amplitude and phase angles are explored using oscillation formula to calculate the oscillatory and periodical quantities of heating stability and mass/concentration circulation. It is noticed that higher amplitude in nanofluid-velocity variation and wall-temperature is observed for large radiations. The uniform heating rate and concentration distribution increases as Brownian motion and thermophoresis force increases. Large oscillations and amplitudes in heat and mass transfer are observed for each value of thermal radiation. It is depicted that the streamline variation increases as Powell-Eyring parameter decreases and mixed convection parameter increases. The maximum scale of isotherm contour is found as thermal radiation rises and Powell-Eyring parameter drops. The outstanding improvement in mass and heat transmission is deduced as mixed convection parameter enhances. The rate of skin friction is enhanced as Powell-Eyring material factor increases.
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来源期刊
Chaos Solitons & Fractals
Chaos Solitons & Fractals 物理-数学跨学科应用
CiteScore
13.20
自引率
10.30%
发文量
1087
审稿时长
9 months
期刊介绍: Chaos, Solitons & Fractals strives to establish itself as a premier journal in the interdisciplinary realm of Nonlinear Science, Non-equilibrium, and Complex Phenomena. It welcomes submissions covering a broad spectrum of topics within this field, including dynamics, non-equilibrium processes in physics, chemistry, and geophysics, complex matter and networks, mathematical models, computational biology, applications to quantum and mesoscopic phenomena, fluctuations and random processes, self-organization, and social phenomena.
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