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Temperature distribution and classical entropy generation analyses in an asymmetric cooling composite hollow cylinder with temperature-dependent thermal conductivity and internal heat generation

机译:具有温度依赖的导热系数和内部发热的非对称冷却复合空心圆柱的温度分布和经典熵产生分析

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摘要

Entropy generation rate is directly related to exergy destruction and is therefore to useful energy. This study investigates temperature distribution and local and total entropy generation rates within a composite hollow cylinder with temperature-dependent thermal conductivity and internal heat generation. The internal heat generation is considered constant but different for inner and outer materials. Two cases are examined: (a) constant temperature boundary conditions and (b) asymmetric convective cooling boundary conditions for inside and outside surfaces. The general solution for the system of equations is analytically found, and constant parameters are numerically calculated for each case. Moreover, complete analytical solution is performed for cases with temperature-independent thermal conductivities. For the first case, temperature distribution and entropy generation depend on eight parameters, and for the second case, the reported data depend on ten thermophysical parameters. After verifying the solution procedure, a comprehensive study is performed for temperature distribution and total entropy generation rate with various values for different parameters. Thus, the new proposed data and graphs in this study provide a remarkable tool and at the same time retain suitable simplicity for engineers. The results should be useful in a number of engineering applications and considerably ease the processes of choosing geometrical parameters together with environment temperature or heat transfer coefficient when dealing with composite hollow cylinders with two-layer materials for less entropy generation, that is, less exergy destruction.
机译:熵的产生速率与能级破坏直接相关,因此与有用能量有关。这项研究调查了温度依赖的导热系数和内部热量产生的复合空心圆柱体内的温度分布以及局部和总熵产生率。内部热量的产生被认为是恒定的,但内部和外部材料却有所不同。研究了两种情况:(a)恒温边界条件和(b)内外表面的非对称对流冷却边界条件。通过解析找到方程组的一般解,并为每种情况数值计算常数参数。此外,对于与温度无关的热导率的情况,可以执行完整的分析解决方案。对于第一种情况,温度分布和熵的生成取决于八个参数,对于第二种情况,所报告的数据取决于十个热物理参数。在验证了求解过程之后,将对温度分布和总熵产生率进行综合研究,并针对不同参数使用不同的值。因此,本研究中新提出的数据和图形提供了一种出色的工具,同时为工程师保留了适当的简便性。该结果在许多工程应用中应该是有用的,并且在处理具有两层材料的复合空心圆柱体时,可以大大简化选择几何参数以及环境温度或传热系数的过程,从而减少熵的产生,即减少火用。 。

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