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Flow Boiling Heat Transfer and Two-Phase Flow Instability of Nanofluids In a Minichannel

机译:Miniocannel中纳米流体的流沸热和两相流不稳定性

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Recent studies of single-phase convective heat transfer of nanofluids reveal that, unlike the promising hypohesis in the early works, there is no significant improvement in the overall thermal performance of nanofluids over that of the base fluids when both heat transfer and hydrodynamic characteristics are considered. Meanwhile, very few studies have been devoted to investigating two-phase heat transfer of nanofluids, and it remains inconclusive whether the same pessimistic outlook should be expected. In this work, an experimental study of forced convective flow boiling and two-phase flow was conducted for Al_2O_3-water nanofluids through a minichannel. General flow boiling heat transfer characteristics were measured, and the effects of nanofluids on the onset of nucleate boiling (ONB) were studied. Two-phase flow instabilities were also explored with an emphasis on the transition boundaries of onset of flow instabilities (OFI). It was found that the presence of nanoparticles delays ONB and suppresses OFI, and the extent is correlated to the nanoparticle volume concentration. These effects were attributed to the change of surface wettability and the thinning of thermal boundary layer in the nanofluid flow. Additionally, it was observed that the pressure-drop type flow instability prevails in nanofluid two-phase flow, however, the oscillation amplitudes of the pressure, temperature and mass flux measurements are reduced.
机译:纳米流体单相对流传热的最新研究表明,与早期作品中有前途的乳房不同,当考虑传热和流体动力学特征时,纳米流体的总热性能没有显着提高。同时,致力于研究纳米流体的两相热传递很少,并且仍然应该预期相同的悲观前景,它仍然不确定。在这项工作中,对强制性流动沸腾和两相流流过少宣布的Al_2O_3-水纳米流体进行了实验研究。测量了一般流动沸腾传热特性,研究了纳米流体对核心沸腾(ONB)发作的影响。还探讨了两相流动不稳定性,重点是流动不稳定性发作(OFI)的转换边界。发现纳米颗粒的存在延迟ONB并抑制,并且该程度与纳米颗粒体积浓度相关。这些效应归因于表面润湿性的变化和纳米流体流动中的热边界层的变薄。另外,观察到纳米流体两相流中的压降式流量不稳定性,然而,降低了压力,温度和质量磁通测量的振荡幅度。

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