首页> 外文期刊>Journal of thermal analysis and calorimetry >Comparative study of heat transfer and friction characteristics of water-based Alumina-copper and Alumina-CNT hybrid nanofluids in laminar flow through pipes
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Comparative study of heat transfer and friction characteristics of water-based Alumina-copper and Alumina-CNT hybrid nanofluids in laminar flow through pipes

机译:水基氧化铝 - 铜和氧化铝 - CNT杂交纳米流动管中的热传递和摩擦特性的比较研究

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In this experimental work, a comparative study of convective heat transfer and drop in pressure characteristics of Alumina-Cu/water and Alumina-CNT/water hybrid nanofluids in fully developed laminar flow in a uniformly heated tube with circular cross section is presented. For this, Alumina-Cu hybrid nanoparticles (90:10 proportion was taken. Below this proportion for, e.g., 80:20, the nanofluid was not stable. Coagulation was happening) were prepared by using a hydrogen reduction technique. Characterization was done for the prepared powder through XRD and scanning electron microscope (SEM) to validate the chemical constitution, to establish the size of the particle and to investigate the morphology of surface. The synthesized Alumina-Cu hybrid nanopowder is dispersed in deionized water in an ultrasonic bath to form a well-dispersed 0.1% volume concentration of hybrid nanofluid. Carbon nanotube (CNT) functionalization was done by acid treatment method to convert the CNT surface from hydrophobic to hydrophilic. Scanning electron microscope was used for characterization of the aluminum oxide particles and functionalized multi-walled carbon nanotubes. To prepare 0.1% volume fraction of Alumina-CNT/water nanofluid, required quantities of Alumina powder and functionalized CNT were dispersed in deionized water in 90:10 proportion. Experiments were conducted in the laminar flow range with water, Alumina/water and hybrid nanofluids, and the results obtained have been compared. The convective heat transfer experimental results showed greater enhancement with Alumina-CNT/water hybrid fluid compared to Alumina-Cu/water hybrid fluid. The maximum enhancements of 30.65% and 20.48% in Nusselt number have been obtained for 0.3% volume fraction of Alumina-CNT/water hybrid nanofluid and Alumina-Cu/water hybrid nanofluid, respectively, at Reynolds number of 1350 as compared to the Nusselt number of water.
机译:在该试验工作,在氧化铝 - 铜/水和氧化铝-CNT的压力特性的对流热传递和压降的比较研究/在具有圆形横截面的均匀地加热管充分发展层流水混合纳米流体被呈现。对于这一点,氧化铝 - 铜纳米颗粒混合(90:10比例溶解。下面这一比例为,例如,80:20,纳米流体并不稳定。凝固是发生)通过使用氢还原技术制备。表征通过XRD所​​制备的粉末进行,扫描电子显微镜(SEM)来验证化学结构,以建立所述颗粒的大小,并调查表面的形态。将合成的氧化铝 - 铜混合纳米粉末分散在去离子水中在超声浴中,以形成混合纳米流体的良好分散的0.1%的体积浓度。碳纳米管(CNT)官能化通过酸处理法进行的CNT表面转化从疏水性到亲水性的。使用扫描电子显微镜对氧化铝颗粒的表征和官能化多壁碳纳米管。为了制备氧化铝-CNT /水纳米流体的0.1%体积分数,需要氧化铝粉的量和官能化的CNT分散在去离子水中在90:10的比例。实验是在层流范围内与水,氧化铝/水和混合纳米流体进行的,并且所获得的结果进行了比较。对流热传递实验结果显示出与氧化铝-CNT /相比氧化铝 - 铜/水混合流体的混合水流体更大的增强。已经获得了氧化铝-CNT /水混合纳米流体和氧化铝 - 铜/水混合纳米流体,分别在1350雷诺数的0.3%的体积分数在努塞尔数的30.65%和20.48%的最高的增强相比,努塞尔数水。

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