论文标题

在大尺度多相模拟中进行灵活特征分析的原位数据摘要

In Situ Data Summaries for Flexible Feature Analysis in Large-Scale Multiphase Flow Simulations

论文作者

Dutta, Soumya, Turton, Terece, Rogers, David, Musser, Jordan, Ahrens, James, Almgren, Ann

论文摘要

多相流的研究对于理解各种材料的复杂相互作用至关重要。特别是,在设计化学反应器(例如流化床反应堆(FBR))时,对流体动力学的详细理解对于优化反应器性能和稳定性至关重要。 FBR允许专家进行涉及多相材料的不同类型的化学反应,尤其是气体和固体之间的相互作用。在如此复杂的化学过程中,反应器中的空隙区域形成通常称为气泡,是一个重要的现象。对这些气泡的研究对预测反应堆的总体效率有很大的意义。但是要了解气泡动态所需的物理实验是昂贵且不平淡的。因此,为了研究这种化学过程和气泡动力学,最先进的平行计算流体动力学离散元件模型(CFD-DEM),正在开发MFIX-EXA用于模拟多相流。尽管MFIX-EXA在模拟冒泡现象中的证实准确性,但输出数据的很大尺寸禁止在存储和I/O时间中使用传统的事后分析能力。为了解决这些问题,并允许应用程序科学家以有效和及时的方式探索气泡动态,我们开发了端到端的视觉分析管道,该管道可以使用统计技术来原位检测气泡,然后在HOC后分析阶段进行气泡动力学的灵活性和交互式视觉探索。专家的积极反馈表明,在非常大的多相流模拟中,提出的方法探索气泡动力学的疗效。

The study of multiphase flow is essential for understanding the complex interactions of various materials. In particular, when designing chemical reactors such as fluidized bed reactors (FBR), a detailed understanding of the hydrodynamics is critical for optimizing reactor performance and stability. An FBR allows experts to conduct different types of chemical reactions involving multiphase materials, especially interaction between gas and solids. During such complex chemical processes, formation of void regions in the reactor, generally termed as bubbles, is an important phenomenon. Study of these bubbles has a deep implication in predicting the reactor's overall efficiency. But physical experiments needed to understand bubble dynamics are costly and non-trivial. Therefore, to study such chemical processes and bubble dynamics, a state-of-the-art massively parallel computational fluid dynamics discrete element model (CFD-DEM), MFIX-Exa is being developed for simulating multiphase flows. Despite the proven accuracy of MFIX-Exa in modeling bubbling phenomena, the very-large size of the output data prohibits the use of traditional post hoc analysis capabilities in both storage and I/O time. To address these issues and allow the application scientists to explore the bubble dynamics in an efficient and timely manner, we have developed an end-to-end visual analytics pipeline that enables in situ detection of bubbles using statistical techniques, followed by a flexible and interactive visual exploration of bubble dynamics in the post hoc analysis phase. Positive feedback from the experts has indicated the efficacy of the proposed approach for exploring bubble dynamics in very-large scale multiphase flow simulations.

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