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首页> 外文期刊>Journal of Molecular Liquids >Self-propelled nanofluids a coolant inspired from nature with enhanced thermal transport properties
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Self-propelled nanofluids a coolant inspired from nature with enhanced thermal transport properties

机译:自推进的纳米流体吸气的吸气感受到具有增强的热传输性质的自然

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Self-propelled nanofluids (SPNFs), are suspensions that contain active particles, that self-propel by converting some form of energy to mechanical work. This theoretical investigation considers the heat transfer mechanisms that may exist in an SPNF. Equations describing the effective mass diffusivity of spherical and rod-shaped particles were taken from the literature and used in analysis of particles of different shapes, aspect ratios, swimming velocities and suspended in water and in ethylene glycol. The analysis showed that the effective mass diffusivity of the particles was up to three orders of magnitude higher than the thermal diffusivity of the solvent. The enhancement of the mass diffusivity leads to a significant enhancement of thermal conductivity of up to an order of magnitude higher compared to that of the pure solvent. It is further discussed that in SPNFs, dispersion and clustering of particles and active turbulence mechanisms may add extra enhancement to the thermal transport. Recent experimental investigations supporting our findings are discussed. Combining this enhancement in thermal transport with the reported reduction of the viscosity observed for an SPNF consisting of Artificial Bacterial Flagella (ABF) particles, will help to create a highly efficient coolant. This can help to reduce energy consumption in a wide variety of the economic sectors, especially in the computing and data storage. (C) 2020 Elsevier B.V. All rights reserved.
机译:自推进纳米流体(SPNFS)是含有活性颗粒的悬浮液,通过将某种形式的能量转化为机械工作来自推进。该理论研究考虑了SPNF中可能存在的传热机制。从文献中取出描述球形和棒状颗粒的有效质量扩散性的方程,并用于分析不同形状,纵横比,游泳速度和悬浮在水中的颗粒和乙二醇中。分析表明,颗粒的有效质量扩散率高于溶剂的热扩散率高的三个数量级。与纯溶剂相比,质量扩散率的增强导致热导电率高的导热率高达峰值。进一步讨论的是,在SPNF中,粒子的分散和聚类和主动湍流机构可以增加热传输的额外增强。讨论了支持我们的研究结果的最新实验调查。将这种增强在热传输中与报道的SPNF中所观察到的SPNF减少相结合,将有助于产生高效的冷却剂。这有助于降低各种经济部门的能耗,特别是在计算和数据存储中。 (c)2020 Elsevier B.v.保留所有权利。

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