Compressibility Effects on Turbulent Heat Transfer of Natural Convection in a Square Cavity

Rida Siti Nur'aini Mahmudah, Restu Widiatmono, Denny Darmawan
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Abstract

Heat transfer in turbulent flows is one of the essential topics in power plants and thermal-based engineering. This study aims to analyze the effects of density changes due to heat transfer in a turbulent environment—which is usually neglected because it can cause instability in a simulation. We simulate an available experimental case of turbulent heat transfer of air with OpenFOAM: one with an incompressible approach (no density change) and another with a compressible treatment. The simulation geometry is a 0.75 × 0.75 m2 square cavity, where its left and right walls are kept at a temperature difference of 40 K. We compare and analyze the temperature, velocity, and turbulence kinetic energy profiles of both simulation results against the experimental data. We found that from all qualitative and quantitative comparisons, the change in density plays a vital role in turbulent heat transfer. The compressible treatment gives better results than the incompressible: the neglection of density change causes a significant difference with the experimental data. Thus, we strongly recommended incorporating compressibility in simulating heat transfer in turbulent flows.
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可压缩性对方形腔内自然对流湍流换热的影响
紊流中的传热是电厂和热力工程中的重要课题之一。本研究旨在分析湍流环境中由于传热引起的密度变化的影响,这一影响通常被忽视,因为它会导致模拟中的不稳定性。我们用OpenFOAM模拟了一个可用的紊流空气传热实验案例:一个采用不可压缩方法(无密度变化),另一个采用可压缩处理。模拟几何形状为0.75 × 0.75 m<sup>2</sup>方形腔,其左右壁保持40 K的温差。我们将两种模拟结果的温度、速度和湍流动能分布与实验数据进行了比较分析。我们发现,从所有定性和定量的比较中,密度的变化在湍流传热中起着至关重要的作用。可压缩处理的结果优于不可压缩处理,忽略密度变化导致与实验数据的显著差异。因此,我们强烈建议将可压缩性纳入紊流传热模拟中。
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审稿时长
12 weeks
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