Progresses in Particle-Laden Flows Simulations in Multistage Turbomachinery With OpenFOAM

Stefano Oliani, R. Friso, N. Casari, M. Pinelli, A. Suman, M. Carnevale
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引用次数: 4

Abstract

Numerical simulations of particle-laden flows have received growing attention in the last decade, due to the broad spectrum of industrial applications in which discrete phases prediction is of interest. Among these, ingestion of particles by turbomachinery is an area that is seeing vivid research and studies. The most common technique to tackle this kind of problem is the Eulerian-Lagrangian method, in which individual particles are tracked inside the domain. At the same time, in multi-stage turbomachinery simulations interfaces are needed to couple the flow solution in adjacent domains in relative motion. In this work, an open-source extension for Lagrangian simulations in multistage rotating machines is presented in the foam-extend environment. Firstly, a thorough discussion of the implementation is presented, with particular emphasis on particle passage through General Grid Interfaces (GGI) and mixing planes. Moreover, a mass-conservative particle redistribution technique is described, as such a property is requested at interfaces between Multiple Reference Frame (MRF). The peculiarities of the algorithm are then shown on a relevant test-case. Eventually, three turbomachinery applications are presented, with growing complexity, to show the capabilities of the numerical code in real-life applications. Simulation results in terms of erosion and impacts on aerodynamic surfaces are also presented as examples of possible parameters of interest in particle-laden flow computations.
基于OpenFOAM的多级涡轮机械颗粒流动模拟研究进展
在过去十年中,由于离散相预测在工业应用中的广泛应用,颗粒流动的数值模拟受到越来越多的关注。其中,通过涡轮机械摄取颗粒是一个正在进行生动研究的领域。解决这类问题最常用的技术是欧拉-拉格朗日方法,即在区域内跟踪单个粒子。同时,在多级涡轮机械仿真中,需要接口来耦合相对运动中相邻区域的流动解。在这项工作中,在泡沫扩展环境中提出了多级旋转机械拉格朗日模拟的开源扩展。首先,对实现进行了深入的讨论,特别强调粒子通过通用网格接口(GGI)和混合平面的通道。此外,由于在多参照系(MRF)之间的界面上需要质量守恒的粒子重分布特性,本文还描述了一种质量守恒的粒子重分布技术。然后在一个相关的测试用例中展示了该算法的特性。最后,介绍了三种日益复杂的涡轮机械应用,以展示数值代码在实际应用中的能力。模拟结果在侵蚀和影响气动表面也提供了可能的参数的例子,感兴趣的颗粒负载流计算。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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