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Transient thermo-hydraulics and performance characteristics of single-phase natural circulation loop using hybrid nanofluids

机译:混合纳米流体的瞬态热工水力和单相自然循环回路的性能特征

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Transient analysis of vertical heating and horizontal cooling rectangular single-phase natural circulation loop with various water-based hybrid nanofluids (Al_2O_3 + Ag, Al_2O_3 + Cu, Al_2O_3 + TiO_2, Al_2O_3 + CNT, Al_2O_3 + Graphene) with 1% volumetric concentration is studied numerically. Temporal fluctuation and time required to attain the steady-state, transient mass flow rate and energy-exergy performance parameters (effectiveness and total entropy generation) using hybrid nanofluids are compared with water. The effect of power input and geometry parameter (diameter and height) of the loop on transient performances is studied as well. The result reveals that the fluctuation of mass flow rate and time required to attain the steady-state are less for hybrid nanofluids as compared to water. However, platelet and cylindrical shaped nanoparticles yield a lower stability as compared to spherical shaped. The mass flow rate is enhanced with hybrid nanofluids, except Al_2O_3 + CNT and Al_2O_3 + Graphene, as compared to water. The energy-exergy performance of hybrid nanofluids is higher than water. The maximum increment in mass flow rate is shown by Al_2O_3 + Ag hybrid nanofluid (3%), whereas Al_2O_3 + Graphene shows the highest increment in effectiveness (25.4%) and highest decrement in total entropy generation (14.3%) as compared to water. Smaller diameter and lower height of loop are found preferable for the flow stability.
机译:研究了体积浓度为1%的各种水性混合纳米流体(Al_2O_3 + Ag,Al_2O_3 + Cu,Al_2O_3 + TiO_2,Al_2O_3 + CNT,Al_2O_3 +石墨烯)的垂直加热和水平冷却矩形单相自然循环回路的瞬态分析数值上。将使用混合纳米流体达到稳态,瞬态质量流量和能量-能量性能参数(有效性和总熵产生)所需的时间波动和时间与水进行了比较。还研究了功率输入和环路几何参数(直径和高度)对瞬态性能的影响。结果表明,与水相比,混合纳米流体的质量流量和达到稳态所需的时间波动较小。然而,与球形相比,血小板和圆柱形纳米颗粒产生较低的稳定性。与水相比,杂化纳米流体可提高质量流率,但Al_2O_3 + CNT和Al_2O_3 +石墨烯除外。杂化纳米流体的能量-能量性能高于水。与水相比,Al_2O_3 + Ag杂化纳米流体(3%)表示质量流量的最大增加,而Al_2O_3 +石墨烯在效率方面的增加最大(25.4%),在总熵产生中的减少最大(14.3%)。发现较小的直径和较低的回路高度对于流动稳定性是优选的。

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