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Heat transfer and thermodynamic performance of convective-radiative cooling double layer walls with temperature-dependent thermal conductivity and internal heat generation

机译:对流辐射冷却双层壁的传热和热力学性能,其温度依赖于导热率和内部热量的产生

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摘要

Composite geometries have numerous applications in industry and scientific researches. This work investigates the temperature distribution, and local and total entropy generation rates within two-layer composite walls using conjugate convection and radiation boundary conditions. Thermal conductivities of the materials of walls are assumed temperature-dependent. Temperature-dependent internal heat generations are also incorporated into the modeling. The differential transformation method (DTM) is used as an analytical technique to tackle the highly nonlinear system of ordinary differential equations. Thereafter, the local and total entropy generation rates are calculated using the DTM formulated temperature distribution. An exact analytical solution, for the temperature-independent model without radiation effect, is also derived. The correctness and accuracy of the DTM solution are checked against the exact solution. After verification, effects of thermophysical parameters such as location of the interface, convection-conduction parameters, radiation-conduction parameters, and internal heat generations, on the temperature distribution, and both local and total entropy generation rates are examined. To deliver the minimum total entropy generation rate, optimum values for some parameters are also found. Since composite walls are widely used in many fields, the abovementioned investigation is a beneficial tool for many engineering industries and scientific fields to minimize the entropy generation, which is the exergy destruction, of the system.
机译:复合几何结构在工业和科学研究中有许多应用。这项工作使用共轭对流和辐射边界条件研究了两层复合墙内的温度分布以及局部和总熵产生率。假定壁材料的热导率与温度有关。与温度有关的内部热量也被纳入模型。微分变换方法(DTM)被用作分析技术,以解决高度非线性的常微分方程组。之后,使用DTM公式化的温度分布来计算局部和总熵产生率。对于没有辐射效应的温度无关模型,也可以得出精确的解析解。 DTM解决方案的正确性和准确性将根据确切的解决方案进行检查。验证后,检查了热物理参数(如界面的位置,对流传导参数,辐射传导参数和内部生热)对温度分布的影响,以及局部和总熵产生率。为了提供最小的总熵产生率,还找到了某些参数的最佳值。由于复合墙广泛应用于许多领域,因此上述研究对于许多工程行业和科学领域是一种有益的工具,可最大程度地减少熵的产生,即熵的消散。

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