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Heat transfer enhancement in annulus cooling channel subjected to constant heat flux by using Nano-fluid

机译:纳米流体在恒定热通量下环空冷却通道内的传热增强

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摘要

The research investigates experimentally and theoretically the thermal behavior of Nano-fluid in annulus channel under forced convection at steady state condition. The Nano-fluid which flows in the test section is consisted from alumina Nano powder of 10nm mixed in distilled water as the cooling media. Heat flux density of (q"=20693W/m, q"=27752W/m) was subjected to the flowing fluid at different Nano particle volume fraction (0.13, 0.24,1, and 1.7%) during the experiments. Preparing the Nano-fluid is ensured by using ultrasonic probe (750W, 20 kHz) and magnetic stirrer for 6hours. The thermal conductivity of Nano-fluid was measured by Decagon KD2-sensor at the average operation temperature (37.87°C, and 44.23°C) at different Nano particle volume fraction. The thermal behavior of the Nano-fluid based on the heat transfer coefficient, thermal conductivity, pressure drop, safety boiling factor, and effectiveness of system with different Nano particle volume fractions, were recorded. The enhancement in the ratio of heat transfer coefficient and thermal conductivity were evaluated and showed an enhancement of about (1.2 - 4.7%) and (0.3 - 4.5%) respectively.
机译:该研究从理论和实验上研究了环形流体在稳态条件下强迫对流中的热行为。在测试部分中流动的纳米流体由10nm的氧化铝纳米粉末和冷却水混合而成。在实验期间,以不同的纳米颗粒体积分数(0.13、0.24、1和1.7%)对流动流体(q” = 20693W / m,q” = 27752W / m)进行热流密度测试。通过使用超声探头(750W,20 kHz)和磁力搅拌器6小时,可以确保制备纳米流体。通过Decagon KD2-传感器在不同的纳米颗粒体积分数下的平均操作温度(37.87°C和44.23°C)下测量纳米流体的热导率。根据传热系数,导热系数,压降,安全沸腾系数以及具有不同纳米颗粒体积分数的系统的有效性,记录了纳米流体的热行为。评估了传热系数和热导率之比的提高,分别显示出约(1.2-4.7%)和(0.3-4.5%)的提高。

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