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REFLOOD HEAT TRANSFER IN SIC AND GRAPHENE OXIDE COATED TUBES

机译:SIC和氧化石墨烯涂层的管中的换热

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摘要

Quenching experiments were conducted to investigate the effect of nanoparticle deposition on boiling heat transfer during rapid quenching in long vertical tubes. SiC and graphene oxide (GO) nanoparticles were deposited by boiling 0.01 vol% SiC/water and GO/water nanofluids in the vertical tube for 600 and 900 s to observe the repeatability of the nanoparticle deposition. Reflood tests were performed by passing water through bare tube and nanoparticle-coated tube at a constant flow rate (3 cm/s). Quenching curves (temperature vs. time) and saturated boiling curves were obtained at atmospheric pressure. We observed a more enhanced cooling performance in nanoparticle-coated tubes. The quenching time of tubes coated with SiC nanoparticles for 600 and 900 s were reduced by more than 20 and 25 s, respectively, compared to that of the bare tube. For the tubes boiled with GO nanoparticles for 600 and 900 s, the quenching times decreased by 10 and 12 s, respectively, compared to that of the bare tube. Scanning Electron Microscopy (SEM) images were acquired, and the contact angles were measured to observe the effects of surface structures and wettability on the cooling performance.
机译:进行淬火实验以研究纳米颗粒沉积对长垂直管中快速淬火过程中沸腾传热的影响。通过在垂直管中煮沸0.01 vol%的SiC /水和GO /水纳米流体600和900 s,沉积SiC和氧化石墨烯(GO)纳米颗粒,以观察纳米颗粒沉积的可重复性。通过使水以恒定流速(3 cm / s)通过裸管和纳米颗粒涂覆的管来进行防潮测试。在大气压下获得淬火曲线(温度与时间的关系)和饱和沸腾曲线。我们观察到纳米涂层管的冷却性能得到了增强。与裸管相比,涂有SiC纳米颗粒的管的淬火时间分别减少了600 s和900 s超过25 s。与GO纳米管煮沸600和900 s的管相比,与裸管相比,淬灭时间分别减少了10和12 s。获取扫描电子显微镜(SEM)图像,并测量接触角以观察表面结构和润湿性对冷却性能的影响。

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