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Numerical Investigation of Heat Transfer Characteristics in Triangular Channel in Light Water Nuclear Reactor by using CuO-Water based Nanofluids

机译:CuO-水基纳米流体对轻水核反应堆三角通道传热特性的数值研究

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Nanofluid plays a very crucial role in nuclear power plant for improving heat transfer. It opens a new portal for improving heat transfer for reducing thermal hydraulics problems in nuclear reactor. The aim of this study to represent the numerically investigated result of CuO/Water based nanofluid heat transfer in light water nuclear reactor. In this investigation the 1/6th part of hexagonal geometry of nuclear fuel rod assembly has been taken for simulation. For focusing the effect of nanoparticle concentration and flow rate on heat transfer fluid flow in triangular channel two phase model is used. For improving the thermal properties of conventional fluid CuO/water nanofluid is used. A uniform heat flux is applied at the inner wall. Profiles of heat transfer coefficient and wall adjacent temperature are shown and these are the function of flow rate of nanofluid and concentration of nanoparticles. For getting better result accuracy, k-ω SST turbulence model and mesh quality of fuel rod bundle in triangular array are studied. Results are compared with analytical equations of heat transfer. The results show that prediction of nanofluid heat transfer is very well by using two phase model in place of using single phase model. Results indicates that heat transfer coefficient is increasing by adding the nanoparticles which is in low concentration and heat transfer coefficient is also increasing with increase in Reynold Number. It also indicates that wall adjacent temperature is decreasing by adding the nanoparticles and heat transfer coefficient is also decreasing with increase in diameter of nanoparticles.
机译:纳米流体在核电厂改善传热中起着至关重要的作用。它打开了一个新的门户,以改善传热,减少核反应堆中的热力学问题。这项研究的目的是代表轻水核反应堆中基于CuO /水的纳米流体传热的数值研究结果。在这项研究中,已将核燃料棒组件的六边形几何形状的1/6部分用于仿真。为了集中纳米颗粒浓度和流速对三角形通道中传热流体流动的影响,使用了两相模型。为了改善常规流体的热性能,使用了CuO /水纳米流体。在内壁上施加均匀的热通量。示出了传热系数和壁相邻温度的曲线,并且这些曲线是纳米流体的流速和纳米颗粒的浓度的函数。为了获得更好的结果精度,研究了k-ωSST湍流模型和三角形阵列燃料棒束的网格质量。将结果与传热解析方程进行比较。结果表明,用两相模型代替单相模型对纳米流体的传热效果很好。结果表明,通过添加低浓度的纳米颗粒,传热系数增加,并且随着雷诺数的增加,传热系数也增加。这也表明壁的温度通过添加纳米颗粒而降低,并且传热系数也随着纳米颗粒直径的增加而降低。

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