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Accelerate Iteration of Least-Squares Finite Element Method for Radiative Heat Transfer in Participating Media With Diffusely Reflecting Walls

机译:最小二乘有限元方法在扩散反射壁参与介质中辐射传热的加速迭代

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摘要

A high reflectivity of walls often leads to prohibitive computation time in the numerical simulation of radiative heat transfer. Such problem becomes very serious in many practical applications, for example, metal processing in high-temperature environment. The present work proposes a modified diffusion synthetic acceleration model to improve the convergence of radiative transfer calculation in participating media with diffusely reflecting boundary. This model adopts the P_1 diffusion approximation to rectify the scattering source term of radiative transfer equation and the reflection term of the boundary condition. The corrected formulation for boundary condition is deduced and the algorithm is realized by finite element method. The accuracy of present model is verified by comparing the results with those of Monte Carlo method and finite element method without any accel-erative technique. The effects of emissivity of walls and optical thickness on the convergence are investigated. The results indicate that the accuracy of present model is reliable and its accelerative effect is more obvious for the optically thick and scattering dominated media with intensive diffusely reflecting walls.
机译:壁的高反射率通常导致辐射传热数值模拟中的计算时间过长。在许多实际应用中,例如在高温环境中的金属加工中,该问题变得非常严重。本工作提出了一种改进的扩散合成加速度模型,以提高在具有漫反射边界的参与介质中辐射传递计算的收敛性。该模型采用P_1扩散近似来校正辐射传递方程的散射源项和边界条件的反射项。推导了边界条件的修正公式,并通过有限元方法实现了该算法。通过与蒙特卡罗方法和有限元方法的结果进行比较,验证了模型的准确性。研究了壁的发射率和光学厚度对会聚的影响。结果表明,该模型的准确性是可靠的,并且对于具有厚的漫反射壁的光学厚度和散射为主的介质,其加速作用更加明显。

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