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QUENCHING PERFORMANCE IN NANOFLUIDS AND NANOPARTICLES-DEPOSITED SURFACES

机译:纳米流体和纳米颗粒沉积表面的淬火性能

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Quenching experiments were conducted to investigate the effect of SiC and Graphene Oxide (GO) nanoparticles on the heat transfer during rapid cooling in vertical tubes. Temperature histories during the quenching were measured for each test section to confirm the effects of nanoparticles-coated layer and nanofluids on the quenching performance. The quenching time was decreased for nanoparticles-coated tubes about 20-31 % compared to bare tube. Also, SiC/water and GO/water nanofluid enhanced the quenching performance. Better quenching performance was observed for GO/water nanofluid compared to GO-coated tubes, while SiC/water nanofluid showed similar quenching performance with SiC-coated tubes. And scanning electron microscope (SEM) images of inner surfaces of tubes after experiments were acquired, and the contact angles were measured to observe the effect of surface structures and wettability on the quenching performance. In case of tubes coated with GO nanoparticles for 900 s, the quenching performance was enhanced although the contact angle increased. To confirm the surface effect on the enhanced quenching performance of GO-coated tubes, the FC-72 refrigerant was used as working fluid of quenching experiment to reduce the wettability effect on the heat transfer.
机译:进行淬火实验以研究SiC和氧化烯氧化物(GO)纳米颗粒对垂直管快速冷却过程中的热传递的影响。测量淬火过程中的温度历史,针对每个测试部分测量纳米颗粒涂层和纳米流体对淬火性能的影响。与裸管相比,对于纳米颗粒涂覆的管,纳米颗粒的猝灭时间减少了约20-31%。此外,SiC /水和去/水纳米流体增强了淬火性能。与覆盖管相比,对于Go /水纳米流体观察到更好的淬火性能,而SiC /水纳米流体显示出与SiC涂层管相似的淬火性能。获取实验后管内表面的扫描电子显微镜(SEM)图像,测量接触角以观察表面结构和润湿性对淬火性能的影响。在涂有900秒的纳米颗粒的管的情况下,尽管接触角增加,因此提高了淬火性能。为了确认表面效果对覆盖管的增强淬火性能,Fc-72制冷剂被用作淬火实验的工作流体,以降低对热传递的润湿性效应。

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