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Nanoparticle transport phenomena in confined flows

机译:受限流中的纳米颗粒传输现象

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摘要

Nanoparticles submerged in confined flow fields occur in several technological applications involving heat and mass transfer in nanoscale systems. Describing the transport with nanoparticles in confined flows poses additional challenges due to the coupling between the thermal effects and fluid forces. Here, we focus on the relevant literature related to Brownian motion, hydrodynamic interactions and transport associated with nanoparticles in confined flows. We review the literature on the several techniques that are based on the principles of non-equilibrium statistical mechanics and computational fluid dynamics in order to simultaneously preserve the fluctuation-dissipation relationship and the prevailing hydrodynamic correlations. Through a review of select examples, we discuss the treatments of the temporal dynamics from the colloidal scales to the molecular scales pertaining to nanoscale fluid dynamics and heat transfer. As evident from this review, there, indeed has been little progress made in regard to the accurate modeling of heat transport in nanofluids flowing in confined geometries such as tubes. Therefore the associated mechanisms with such processes remain unexplained. This review has revealed that the information available in open literature on the transport properties of nanofluids is often contradictory and confusing. It has been very difficult to draw definitive conclusions. The quality of work reported on this topic is non-uniform. A significant portion of this review pertains to the treatment of the fluid dynamic aspects of the nanoparticle transport problem. By simultaneously treating the energy transport in ways discussed in this review as related to momentum transport, the ultimate goal of understanding nanoscale heat transport in confined flows may be achieved.
机译:浸没在有限流场中的纳米粒子出现在涉及纳米级系统中传热和传质的多种技术应用中。由于热效应和流体力之间的耦合,描述在受限流中纳米颗粒的运输带来了额外的挑战。在这里,我们专注于与布朗运动,流体动力相互作用以及与受限流中的纳米颗粒相关的运输相关的相关文献。我们回顾了基于非平衡统计力学和计算流体动力学原理的几种技术的文献,以同时保留波动-耗散关系和主要的水动力相关性。通过回顾一些示例,我们讨论了从胶体尺度到与纳米尺度流体动力学和传热有关的分子尺度的时间动力学的处理方法。从本次审查中可以明显看出,在以有限的几何形状(例如管)流动的纳米流体中,对传热的精确建模确实没有什么进展。因此,与这种过程相关的机制仍然无法解释。这项审查表明,公开文献中有关纳米流体传输特性的信息通常是矛盾且令人困惑的。得出明确的结论非常困难。在此主题上报告的工作质量不一致。该综述的重要部分涉及纳米颗粒运输问题的流体动力学方面的治疗。通过同时使用与动量传递相关的本篇综述中讨论的方式来处理能量传递,可以实现了解受限流中纳米级热传递的最终目标。

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