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首页> 外文期刊>Case Studies in Thermal Engineering >Thermophysical properties of chemotactic microorganisms in bio-convective peristaltic rheology of nano-liquid with slippage, Joule heating and viscous dissipation
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Thermophysical properties of chemotactic microorganisms in bio-convective peristaltic rheology of nano-liquid with slippage, Joule heating and viscous dissipation

机译:纳米液体生物对流蠕动流变学的趋化性微生物热物理性质,焦耳加热和粘性耗散

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摘要

Credibility of numerical results for peristaltic mechanism of conductive nanofluid flowing through an asymmetric channel is evaluated sponsoring heat and mass transfer mechanism. The phenomenon of non-magnetic chemotactic microorganisms is employed to increase the stability of nanofluid. The fluid behavior is affected by wall slip and convective boundary conditions along with magnetic field. The impacts of Joule heating, viscous dissipation, thermal radiations, Brownian and thermophoresis motion are treated as well. The model is used as a computationally efficient design tool to obtain the system of nonlinear partial differential equations which is then fabricated by means of zero wave number and creeping Stokesian approach. Dimensionless governing model is solved numerically by Runge-Kutta 4 method and the outcomes are interpreted graphically. Moreover, tables and bar-charts are displayed for deep physical insight. Finite Considerable role of viscous dissipation in diffusion of momentum of the wall and entropy generation in system is observed. Moreover, Bi1 and ω1 show dominant influence on Be while η1 has no affect.
机译:通过不对称通道流过不对称通道的导电纳米流体的蠕动机理的可信度是评估的热量和传质机制。非磁性化学微生物的现象用于增加纳米流体的稳定性。流体行为受壁滑和对流边界条件以及磁场的影响。焦耳加热,粘性耗散,热辐射,布朗和热孔运动的影响也得到了处理。该模型用作计算有效的设计工具,以获得非线性偏微分方程的系统,然后通过零波数和爬行的斯托卡斯方法制造。无量纲的控制模型通过Runge-Kutta 4方法用runge-kutta来解决,结果被图示解释。此外,显示表格和条形图以用于深度物理洞察力。观察到有限的粘性耗散在墙壁动量扩散中的相当大作用和系统中的熵产生。此外,BI1和ω1显示了主导影响,而η1没有影响。

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