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Toward a rational modeling of convection

机译:建立对流的合理模型

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摘要

The thermal design of huge systems, huge in terms of number of components not their size, enforces the usage of dedicated SW packages in which each component needs to be modeled adequately. Detailed 3D modeling is not possible at early design phases. An adequate compact thermal model (i.e. one with very few degrees of freedom) of each component should be used instead. It must be cast in a form that makes it usable in SW packages, to model the behavior of each component regardless of surrounding objects. This fact has long been recognized for thermal conduction problems, which was solved using the socalled Boundary Condition Independent (BCI) models. For convection, the model universally admitted is that of the Heat Transfer Coefficient (HTC), which is obviously not BCI. It can always be used for small systems using a spread sheet that will have to be manually readapted for each new system topology. For large systems, automated BCI model generation is mandatory, which is the objective of this work. In this work, a new approach is proposed that generalizes achievements in building BCI compact models for thermal conduction to thermal convection. It offers many advantages over classical HTC models, including in particular its ability to handle conjugate heat transfer problems in a much more accurate, although a bit more involved, way. The level of complexity remains orders of magnitude less than full 3D analysis, which makes the proposed approach adapted for preliminary design phases.
机译:大型系统的热设计在零件数量而不是其尺寸方面是巨大的,这迫使使用专用的SW封装,其中每个零件都需要进行充分建模。在早期设计阶段无法进行详细的3D建模。相反,应使用每个组件的足够紧凑的热模型(即自由度很小的模型)。它必须以一种可在SW软件包中使用的形式进行转换,以模拟每个组件的行为,而与周围的对象无关。长期以来,人们就已经认识到热传导问题,这一问题已通过所谓的边界条件无关(BCI)模型得以解决。对于对流而言,公认的模型是传热系数(HTC)的模型,它显然不是BCI。它始终可用于使用电子表格的小型系统,对于每种新系统拓扑,都必须对其进行手动重新调整。对于大型系统,必须自动生成BCI模型,这是这项工作的目标。在这项工作中,提出了一种新方法,该方法概括了在建立BCI紧凑模型中从热传导到热对流的成就。与传统的HTC模型相比,它具有许多优势,尤其是它以更精确(尽管涉及更多)的方式处理共轭传热问题的能力。复杂程度仍然比完整的3D分析小几个数量级,这使所提出的方法适用于初步设计阶段。

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