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A Finite Difference Thermal Model of a Cylindrical Microwave Heating Applicator Using Locally Conformal Overlapping Grids: Part Ⅰ - Theoretical Formulation

机译:局部保形重叠网格的圆柱形微波加热装置的有限差分热模型:第一部分-理论公式

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In this paper, we present a versatile mathematical formulation of a newly developed 3-D locally conformal Finite Difference (FD) thermal algorithm developed specifically for coupled electromagnetic (EM) and heat diffusion simulations utilizing Overlapping Grids (OGFD) in the Cartesian and cylindrical coordinate systems. The motivation for this research arises from an attempt to characterize the dominant thermal transport phenomena typically encountered during the process cycle of a high-power, microwave-assisted material processing system employing a geometrically composite cylindrical multimode heating furnace. The cylindrical FD scheme is only applied to the outer shell of the housing cavity whereas the Cartesian FD scheme is used to advance the temperature elsewhere including top and bottom walls, and most of the inner region of the cavity volume. The temperature dependency of the EM constitutive and thermo-physical parameters of the material being processed is readily accommodated into the OGFD update equations. The time increment, which satisfies the stability constraint of the explicit OGFD time-marching scheme, is derived. In a departure from prior work, the salient features of the proposed algorithm are first, the locally conformal discretization scheme accurately describes the diffusion of heat and second, significant heat-loss mechanisms usually encountered in microwave heating problems at the interfacial boundary temperature nodes have been considered. These include convection and radiation between the surface of the workload and air inside the cavity, heat convection and radiation between the inner cavity walls and interior cavity volume, and free cooling of the outermost cavity walls.
机译:在本文中,我们介绍了一种新开发的3-D局部共形有限差分(FD)热算法的通用数学公式,该算法专门为在直角坐标和圆柱坐标中使用重叠网格(OGFD)的耦合电磁(EM)和热扩散模拟而开发系统。进行这项研究的动机来自试图表征在使用几何复合圆柱形多模加热炉的高功率微波辅助材料处理系统的处理周期中通常遇到的主要热传输现象。圆柱形FD方案仅适用于外壳腔体的外壳,而笛卡尔FD方案用于将温度提高到其他位置,包括顶壁和底壁以及腔体体积的大部分内部区域。 OGFD更新方程式很容易适应被加工材料的EM组成和温度-温度参数的温度依赖性。得出满足显式OGFD时间行进方案的稳定性约束的时间增量。与先前的工作不同的是,所提出算法的显着特征是:首先,局部保形离散方案准确地描述了热量的扩散;其次,已经找到了在界面边界温度节点处微波加热问题中通常遇到的重要的热损失机理。考虑过的。这些包括工作负荷表面与空腔内部空气之间的对流和辐射,内部空腔壁和内部空腔体积之间的热对流和辐射,以及最外部空腔壁的自由冷却。

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