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Nonlinear unsteady convection on micro and nanofluids with Cattaneo-Christov heat flux

机译:具有Cattaneo-Christov热流的微流体和纳米流体的非线性非稳态对流

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摘要

This is a theoretical study of unsteady nonlinear convection on magnetohydrodynamic fluid in a suspension of dust and graphene nanoparticles. For boosting the heat transport phenomena we consider the Cattaneo-Christov heat flux and thermal radiation. Dispersal of graphene nanoparticles in dusty fluids finds applications in biocompatibility, bio-imaging, biosensors, detection and cancer treatment, in monitoring stem cells differentiation etc. Initially the simulation is performed by amalgamation of dust (micron size) and nanoparticles into base fluid. Primarily existing partial differential system (PDEs) is changed to ordinary differential system (ODEs) with the support of usual similarity transformations. Consequently, the highly nonlinear ODEs are solved numerically through Runge-Kutta and Shooting method. The computational results for Non-dimensional temperature and velocity profiles are offered through graphs (?=0and?=0.05) cases. Additionally, the numerical values of friction factor and heat transfer rate are tabulated numerically for various physical parameters obtained. We also validated the current outcomes with previously available study and found to be extremely acceptable. From this study we conclude that in the presence of nanofluid heat transfer rate and temperature distribution is higher compared to micro fluid.
机译:这是对粉尘和石墨烯纳米颗粒悬浮液中的磁流体流体进行非稳态非线性对流的理论研究。为了增强热传递现象,我们考虑了Cattaneo-Christov的热通量和热辐射。石墨烯纳米粒子在粉尘状流体中的分散在生物相容性,生物成像,生物传感器,检测和癌症治疗,监测干细胞分化等方面都有应用。最初,模拟是通过将粉尘(微米大小)和纳米粒子混合成基础流体来进行的。在通常的相似性转换的支持下,原先存在的偏微分系统(PDE)更改为普通微分系统(ODE)。因此,通过Runge-Kutta和Shooting方法数值求解了高度非线性的ODE。无量纲温度和速度分布图的计算结果通过图表(?= 0和?= 0.05)情况提供。另外,对于获得的各种物理参数,将摩擦系数和传热速率的数值用数值表制成表格。我们还通过先前可用的研究验证了目前的结果,并被认为是可以接受的。从这项研究中我们得出结论,与微流体相比,在存在纳米流体的情况下,传热速率和温度分布更高。

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