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Experimental Investigation of Convective Heat Transfer in Circulating Water System

机译:循环水系统中对流换热的实验研究

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The laminar convective heat transfer behavior of CuO nanoparticle dispersions in water with three different particle sizes (23 nm, 51 nm, and 76 nm) is investigated experimentally in a flow loop with constant heat flux. The main purpose of this study is to evaluate the effect of particle size on convective heat transfer in laminar region. The experimental results show that the suspended nanoparticles remarkably increase the convective heat transfer coefficient of the base fluid, and the nanofluid with 23nm particles shows higher heat transfer coefficient than nanofluids containing the other two particle sizes about 10% under the same Re. Based on the effective medium approximation and the fractal theory, the effective thermal conductivity of suspension is obtained. It is shown that if the new effective thermal conductivity correlation of the nanofluids is used in calculating the Prandtl and Nusselt numbers, the new correlation accurately reproduces the convective heat transfer behavior in tubes.
机译:在具有恒定热通量的流动回路中,实验研究了CuO纳米颗粒分散体在三种不同粒径(23 nm,51 nm和76 nm)的水中的层流对流传热行为。这项研究的主要目的是评估粒径对层流区域对流传热的影响。实验结果表明,悬浮的纳米粒子显着提高了基础流体的对流传热系数,并且在相同的Re下,具有23nm粒子的纳米流体比包含其他两种粒径约10%的纳米流体表现出更高的传热系数。基于有效介质近似和分形理论,获得了悬浮液的有效导热系数。结果表明,如果使用纳米流体的新有效导热系数相关性来计算Prandtl和Nusselt数,则新的相关性将准确地再现管中的对流传热行为。

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