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A study on mesh refinement in OpenFOAM for wave propagation problems in fluid power systems

机译:针对流体动力系统中波传播问题的OpenFOAM网格细化研究

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Due to rising importance of wave propagation effects in fluid power systems, CFD (computational fluid dynamics) codes take also on greater significance. These highly sophisticated codes have the capability to calculate the full resolution of a pressure field as well as of a velocity field in arbitrarily complex geometries. But this brilliant development brings also a huge disadvantage, namely enormous computational costs. Because of this reason CFD software often disqualifies itself as first choice application. However, considering a whole computational domain and it's physics the idea comes up, that there are regions which require a higher spatial resolution than others. Mesh refinement is a common practice to get a higher resolution in regions of greater interest while reducing the overall number of cells and hence the simulation time. This paper presents results of simulations with OpenFOAM, where mesh refinement has been done with polyhedral elements. As a simple benchmark system a pipe with a cross-sectional jump has been used. First the optimal CFD result for this system has been determined by doubeling the number of elements in each direction for each additional simulation until the variations in the outcome has vanished. This simuation result has been compared to a set of simulations, where mesh refinement has only adapted to the region after the cross-sectional jump, where the higher number of cells has been considered as a benefit.
机译:由于在流体动力系统中波传播效应的重要性日益提高,CFD(计算流体动力学)代码也具有更大的意义。这些高度复杂的代码具有计算任意复杂几何形状中压力场以及速度场的完整分辨率的能力。但是这种出色的发展也带来了巨大的劣势,即巨大的计算成本。因此,CFD软件经常失去其作为首选应用程序的资格。但是,考虑到整个计算域及其物理学,便提出了这样的想法,即某些区域需要比其他区域更高的空间分辨率。网格细化是一种常见的做法,可以在感兴趣的区域中获得更高的分辨率,同时减少像元总数,从而减少仿真时间。本文介绍了使用OpenFOAM进行仿真的结果,其中使用多面体元素对网格进行了细化。作为简单的基准系统,已使用具有横截面跳变的管道。首先,对于每个额外的模拟,通过在每个方向上增加元素数量,直到结果的变化消失,确定了该系统的最佳CFD结果。将该模拟结果与一组模拟进行了比较,在这些模拟中,网格细化仅适用于横截面跳跃后的区域,在该区域中,较高数量的像元被认为是有益的。

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