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Electro-osmotic flow of power-law fluid and heat transfer in a micro-channel with effects of Joule heating and thermal radiation

机译:幂律流体的电渗流和微通道中的热传递,具有焦耳热和热辐射的作用

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A mathematical model has been developed for studying the electro-osmotic flow and heat transfer of bio-fluids in a micro-channel in the presence of Joule heating effects. The flow of bio-fluid is governed by the non-Newtonian power-law fluid model. The effects of thermal radiation and velocity slip condition have been examined in the case of hydrophobic channel. The Poisson-Boltzmann equation governing the electrical double layer field and a body force generated by the applied electric potential field are taken into consideration. The results presented here pertain to the case where the height of the channel is much greater than the thickness of electrical double layer comprising the Stern and diffuse layers. The expressions for flow characteristics such as velocity, temperature, shear stress and Nusselt number have been derived analytically under the purview of the present model. The results estimated on the basis of the data available in the existing scientific literatures are presented graphically. The effects of thermal radiation have an important bearing on the therapeutic procedure of hyperthermia, particularly in understanding the heat transfer in micro-channel in the presence of electric potential. The dimensionless Joule heating parameter has a reducing impact on Nusselt number for both pseudo-plastic and dilatant fluids, nevertheless its impact on Nusselt number is more pronounced for dilatant fluid. Furthermore, the effect of viscous dissipation has a significant role in controlling heat transfer and should not be neglected. (C) 2016 Elsevier B.V. All rights reserved.
机译:已经开发出数学模型,用于在焦耳热效应存在的情况下研究微通道中生物流体的电渗流和热传递。生物流体的流动由非牛顿幂律流体模型控制。在疏水通道的情况下,已经研究了热辐射和速度滑移条件的影响。考虑了控制双电层场的Poisson-Boltzmann方程和由施加的电势场产生的体力。这里给出的结果与通道高度远大于包括船尾和扩散层的双电层的厚度的情况有关。在本模型的研究范围内,已通过分析得出了诸如速度,温度,剪切应力和Nusselt数等流动特性的表达式。根据现有科学文献中可用数据估算的结果以图形方式显示。热辐射的影响对热疗的治疗过程具有重要意义,特别是在了解存在电势时微通道中的热传递方面。无量纲焦耳加热参数对假塑性流体和膨胀流体的Nusselt值都有减小的影响,尽管如此,它对膨胀流体的Nusselt数的影响更明显。此外,粘性耗散的影响在控制热传递方面起着重要作用,因此不应忽略。 (C)2016 Elsevier B.V.保留所有权利。

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