In this work, we propose a model for the orientation of non-spherical particles arising in multi-phase turbulence flow. This model addresses the macroscopic scale in use in CFD codes enabling turbulence models for the fluid phase. It consists in a stochastic version of the Jeffery equation that can be incorporated in a statistical Lagrangian description of the particles suspended in the flow. For use in this context, we propose and analyse a numerical scheme based on the well-known splitting scheme algorithm decoupling the orientation dynamics into their main contributions: stretching and rotation. We detail the implementation in an open-source CFD software. We analyse the weak and strong convergence both of the global scheme and of their sub-parts. Subsequently, the splitting technique yields to a highly efficient hybrid algorithm coupling pure probabilistic and deterministic numerical schemes. Various experiments were implemented and compared with analytic predictions of the model to test the scheme for use in a CFD code.
翻译:在这项工作中,我们提出了多相波流中产生的非球粒子定向模型,该模型针对CFD代码中所使用的宏观规模,为流体阶段提供了扰动模型,包括杰弗里方程式的随机版,可以纳入对流中悬浮粒子的统计性拉格朗吉亚描述。在这方面,我们建议并分析一个数字方案,其依据是众所周知的分离法算法,将定向动态与其主要贡献(伸缩和旋转)相分离。我们详细介绍了开源的CFD软件的安装情况。我们分析了全球机制及其子部分的薄弱和紧密趋同情况。随后,分裂技术产量转化为一种高效的混合算法,将纯概率和确定性数字法组合在一起。我们进行了各种实验,并与模型的分析性预测进行比较,以测试CFD代码中的使用办法。