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Numerical quantification of coupling effects for radiation-conduction heat transfer in participating macroporous media: Investigation of a model geometry

机译:参与大孔介质中辐射传导热传递耦合效应的数值量化:模型几何研究

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Radiative-conductive heat transfer in porous media is usually investigated by decoupling the heat transfer modes and solving the volume-averaged continuum equations using effective transport properties. However, both modes are naturally coupled and coupling effects might significantly affect the results. We aim at providing quantitative understanding of the coupling effects occurring in a model geometry. This is an important first step towards improving the accuracy of heat transfer predictions in engineering applications. We developed a numerical method using a structured mesh, cell centered finite volumes and Monte Carlo ray tracing techniques in order to simulate the 3-dimensional and unsteady coupled radiative-conductive heat transfer in semitransparent macroporous media. We have optimized the numerical method with regards to memory and computational requirements leading to optimal performance and allowing to perform a parameter variation study for various steady state cases. We conducted a parameter study considering different optical and thermal material properties and boundary conditions in order to quantify the coupling effect between conduction and radiation, and to demonstrate its dependencies. In terms of thermal properties, it was found that the ratio of bulk thermal conductivities is governing the coupling effect. A distinct peak at a given conductivity ratio was found. The influence of optical properties is discussed in details. It was found that a significant coupling effect exists, reaching up to 15% of the total thermal heat flux. The verified modeling framework in conjunction with our non-dimensionalization offers a tool to investigate the importance of radiation-conduction coupling in a quantitative manner. It is an important step towards understanding the detailed mechanisms of radiation and conduction coupling and provides engineering guidelines on the importance of these effects.
机译:多孔介质中的辐射传导热传递通常是通过将热传递模式解耦并使用有效的传输特性求解体积平均的连续方程来进行的。但是,两种模式都是自然耦合的,耦合效应可能会严重影响结果。我们旨在提供对模型几何中发生的耦合效应的定量理解。这是提高工程应用中传热预测准确性的重要的第一步。我们开发了一种使用结构化网格,以单元为中心的有限体积和蒙特卡洛射线追踪技术的数值方法,以模拟半透明大孔介质中的三维非稳态耦合辐射传导热传递。我们针对内存和计算要求优化了数值方法,从而实现了最佳性能,并允许对各种稳态情况进行参数变化研究。我们进行了参数研究,考虑了不同的光学和热学材料特性以及边界条件,以量化传导和辐射之间的耦合效应,并证明其依赖性。在热性能方面,发现整体热导率的比值决定了耦合效应。在给定的电导率下发现一个明显的峰。详细讨论了光学性质的影响。发现存在显着的耦合效应,达到总热通量的15%。经过验证的建模框架以及我们的无量纲化提供了一种以定量方式研究辐射传导耦合重要性的工具。这是理解辐射与传导耦合的详细机制的重要一步,并提供了有关这些效应的重要性的工程指导。

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