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Numerical predictions of laminar fully developed forced convection in a semi-circular duct with temperature-dependent viscosity variations

机译:具有温度依赖性粘度变化的半圆形管道中层状型强制对流的数值预测

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Fully developed laminar flows in a semi-circular duct with temperature-dependent viscosity variations in the flow cross-section are analyzed, where the viscosity-temperature behavior is described by the Arrhenius model. Both the T and H1 boundary conditions are considered, as they represent the most fundamental heating/cooling conditions encountered in practical compact heat exchanger applications. Numerical solutions for the flow velocity and the temperature fields have been obtained by finite-difference technique. The friction factor and Nusselt number results display a strong dependence on the viscosity ratio (mu _w/ mu _b), and this is correlated using the classical power-law relationship. However, results indicate that the power-law exponents are significantly different from traditional values for circular tube. They are found to be functions of the flow geometry, boundary condition, and direction of heat transfer (heating or cooling).
机译:分析了完全开发的层状流动在半圆形管中,分析了流动横截面的温度依赖性粘度变化,其中粘度温度行为由Arrhenius模型描述。考虑到T和H1边界条件,因为它们代表了实际紧凑型热交换器应用中遇到的最基本的加热/冷却条件。通过有限差分技术获得了流速和温度场的数值解。摩擦因子和纽带数量结果显示对粘度比(MU _W / mu _b)的强依赖性,并且使用经典的幂律关系是相关的。然而,结果表明,幂律指数与圆管的传统值显着不同。发现它们是流动几何形状,边界条件和传热方向的功能(加热或冷却)。

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