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Natural convective heat transfer of suspensions of titanium dioxide nanoparticles (nanofluids)

机译:二氧化钛纳米颗粒(纳米流体)悬浮液的自然对流换热

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This paper reports an experimental study on the natural convective heat transfer of nanofluids, an area in which little work has been carried out in the past. Aqueous-based titanium-dioxide nanofluids of various concentrations are formulated by using the two-step method and a high shear homogenizer is used to break large aggregates. Instead of the use of dispersant and/or surfactant, the electrostatic repulsion mechanism is adopted to stabilize nanoparticles. The resulting nanofluids are found to be very stable, although the actual measured particle size is much larger than the primary nanoparticle size. The stable nanofluids are then used for both the transient and steady-state heat transfer experiments under natural convection conditions. The results show that the presence of nanoparticles systematically decreases the natural convective heat transfer coefficient under the conditions of this study, which is an observation that contrasts with the previous expectation. Discussion of the results suggests that changes in the nanofluids' thermal conductivity and viscosity could not explain the observed decrease in the heat transfer coefficient, and particle-surface interactions may play an important role.
机译:本文报道了关于纳米流体自然对流传热的实验研究,该领域过去很少进行研究。通过使用两步法配制各种浓度的水基二氧化钛纳米流体,并使用高剪切均质机破碎大的聚集体。代替使用分散剂和/或表面活性剂,采用静电排斥机理来稳定纳米颗粒。尽管实际测量的粒度远大于初级纳米粒度,但发现所得纳米流体非常稳定。然后将稳定的纳米流体用于自然对流条件下的瞬态和稳态传热实验。结果表明,在本研究条件下,纳米颗粒的存在会系统地降低自然对流换热系数,这一观察结果与先前的预期相反。对结果的讨论表明,纳米流体的热导率和粘度的变化不能解释所观察到的传热系数的降低,并且颗粒-表面相互作用可能起重要作用。

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