论文标题
多孔多孔 - 分辨方法,用于在复杂的几何形状中有效地模拟热和流体传输,并应用于电力变压器
A multiscale porous--resolved methodology for efficient simulation of heat and fluid transport in complex geometries, with application to electric power transformers
论文作者
论文摘要
对于许多应用,例如充满油的功率变压器,对流体流动的流体流量进行的数值模拟引起了人们的强烈感兴趣。这里的一个基本挑战是,要解决流体流动现象是必要的,但是这使得对整个几何形状的模拟在计算能力方面非常昂贵。在这项工作中,我们开发了一种模拟方法,该方法结合了一种多孔中的方法,用于模拟该域的某些区域,并在那些区域中完全解决的模拟结合了最有趣的研究。由于没有解析以多孔方法建模的区域中的热边界层之类的流量,因此这些部分的分辨率可以是更粗糙的数量级。这种多尺度方法是通过在整个领域中使用完全解决的模拟以及针对扩展Graetz问题的分析解决方案进行了验证的。然后,我们将这种方法应用于大型电力变压器中的油流量和传热,与完全分辨的方法相比,计算成本显着降低。
The numerical simulation of fluid flow through a complex geometry with heat transfer is of strong interest for many applications, such as oil-filled power transformers. A fundamental challenge here is that high resolution is necessary to resolve the fluid flow phenomena, but this makes simulation of the full geometry very expensive in terms of computational power. In this work, we develop a simulation methodology that combines a porous-medium approach for simulating some regions of the domain, coupled with fully resolved simulations in those regions which are deemed most interesting to study in detail. As one does not resolve flow features like thermal boundary layers in the regions modeled with the porous approach, the resolution in these parts can be orders of magnitude coarser. This multiscale approach is validated against the use of fully resolved simulations in the whole domain, as well as against analytical solutions to the extended Graetz problem. We then apply the approach to the study of oil flow and heat transfer in large electric power transformers and demonstrate a significant reduction in computational cost compared to a fully resolved approach.