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Approaches for modelling of industrial energy systems: correlation of heat transfer characteristics between magnetohydrodynamics hybrid nanofluids and performance analysis of industrial length-scale heat exchanger

机译:工业能源系统建模方法:磁性流体动力学杂交纳米流体与工业长度型热交换器性能分析的传热特性相关性

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摘要

Numerical analysis is carried out on heat transfer performance of industrial-length double-tube heat exchanger, by using hybrid nanofluid as a coolant with the effect of external magnetic field. The double-tube heat exchanger contains two tubes, namely inner and outer, and has lengths of 1.39 m and 1.03 m, respectively. The hot oil passes into the outer tube, and the coolant (hybrid nanofluid) passes into the inner tube. Two types of hybrid nanofluids are used for this investigation: (a) CNT-Al2O3/water and (b) CNT-Fe3O4/water. Volume fraction and Reynolds number are considered as 0.1% to 0.5% and 800 to 2400, respectively. This study is carried out with mixture model wherein the equations are solved with control volume approach combined with second-order upwind scheme. Results indicate that Nusselt number is found higher for CNT-Fe3O4/water hybrid nanofluid in the presence of magnetic field. On using hybrid nanofluid, higher thermal efficiency and better performance index of heat exchanger are achieved. The effectiveness increased nearly similar to 30% at higher Reynolds number with Ha = 20. About 40% better performance index is achieved at lower Reynolds number for CNT-Fe3O4/water when compared with CNT-Al2O3/water hybrid nanofluid. Increment in thermal efficiency of heat exchanger is improved almost 30% by increasing the Reynolds number. Graphic abstract
机译:采用混合纳米流体作为冷却剂,在外加磁场作用下,对工业长度双管换热器的传热性能进行了数值分析。双管换热器包含两个管,即内管和外管,长度分别为1.39 m和1.03 m。热油进入外管,冷却剂(混合纳米流体)进入内管。本研究使用了两种类型的杂化纳米流体:(a)CNT-Al2O3/水和(b)CNT-Fe3O4/水。体积分数和雷诺数分别为0.1%至0.5%和800至2400。本研究采用混合模型进行,其中方程组采用控制体积法结合二阶迎风格式进行求解。结果表明,在磁场存在下,CNT-Fe3O4/水杂化纳米流体的努塞尔数较高。采用混合纳米流体可以提高换热器的热效率和性能指标。当Ha=20时,在较高雷诺数下,效率几乎增加了30%。与CNT-Al2O3/水杂化纳米流体相比,在较低雷诺数下,CNT-Fe3O4/水的性能指数提高了约40%。通过增加雷诺数,换热器的热效率提高了近30%。图形摘要

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