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Temperature and Entropy Generation Analyses Between and Inside Rotating Cylinders Using Copper-Water Nanofluid

机译:铜-水纳米流体在旋转汽缸之间和内部的温度和熵产生分析

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Entropy generation is squarely linked with irreversibility, and consequently with exergy destruction within a thermal system. This study concerns with the temperature distribution, and local and volumetric averaged entropy generation rates within a cylindrical system with two solid co-rotating inner and outer parts and the middle nanofluid flow part. Temperature-dependent thermal conductivities for solid materials are included within the modeling. To obtain the temperature formula within all three sections, a combined analytical-numerical solution technique is applied. An exact analytical solution is also obtained, when constant thermal conductivities for solid materials are assumed. The resultant data from the analytical-numerical solution technique is verified against the investigated exact solution. Thereafter, the velocity and temperature fields from the combined analytical-numerical solution technique are incorporated into the entropy generation formulations to obtain the local and volumetric averaged entropy generation rates. Using abovementioned procedure, the effects of thermophysical parameters such as nanoparticles volume concentration, Brinkman number, thermal conductivity parameter ratios, outer temperature boundary condition, internal heat generation rates and velocity ratios on the temperature field, and entropy generation rates are investigated.
机译:熵的产生与不可逆性成正比,因此与热系统内的火用破坏有关。这项研究涉及温度分布,以及具有两个固体同向旋转的内部和外部部分以及中间的纳米流体流动部分的圆柱系统内的局部和体积平均熵产生率。固体材料的温度相关热导率包含在模型中。为了获得所有三个部分的温度公式,应用了一种组合的分析-数值解技术。当假设固体材料的导热系数恒定时,还可以获得精确的分析解决方案。对照所研究的精确解验证了来自数值分析解技术的结果数据。此后,将来自组合解析数值解技术的速度场和温度场合并到熵产生公式中,以获得局部和体积平均熵产生率。使用上述程序,研究了热物理参数,如纳米粒子的体积浓度,布林克曼数,热导率参数比,外部温度边界条件,内部生热率和速度比对温度场以及熵产生率的影响。

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