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Optimization via multimodel simulation A new approach to optimization of cyclone separator geometries

机译:通过多模型仿真优化一种新方法来优化旋风分离器几何形状

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摘要

Increasing computational power and the availability of 3D printers provide new tools for the combination of modeling and experimentation. Several simulation tools can be run independently and in parallel, e.g., long running computational fluid dynamics simulations can be accompanied by experiments with 3D printers. Furthermore, results from analytical and data-driven models can be incorporated. However, there are fundamental differences between these modeling approaches: some models, e.g., analytical models, use domain knowledge, whereas data-driven models do not require any information about the underlying processes. At the same time, data-driven models require input and output data, but analytical models do not. The optimization via multimodel simulation (OMMS) approach, which is able to combine results from these different models, is introduced in this paper. We believe that OMMS improves the robustness of the optimization, accelerates the optimization-via-simulation process, and provides a unified approach. Using cyclonic dust separators as a real-world simulation problem, the feasibility of this approach is demonstrated and a proof-of-concept is presented. Cyclones are popular devices used to filter dust from the emitted flue gasses. They are applied as pre-filters in many industrial processes including energy production and grain processing facilities. Pros and cons of this multimodel optimization approach are discussed and experiences from experiments are presented.
机译:增加计算能力和3D打印机的可用性为建模和实验组合提供了新的工具。若干模拟工具可以独立运行,并且并行地运行,例如,长时间运行的计算流体动力学模拟可以伴随着3D打印机的实验。此外,可以包含分析和数据驱动模型的结果。然而,这些建模方法之间存在根本差异:某些型号,例如分析模型,使用域知识,但数据驱动的模型不需要有关底层流程的任何信息。同时,数据驱动的模型需要输入和输出数据,但分析模型不会。本文介绍了通过多模型仿真(OMMS)方法的优化,能够将这些不同型号的结果组合。我们认为,OMMS提高了优化的稳健性,加速了优化通孔仿真过程,并提供了统一的方法。使用旋风分离器作为实际仿真问题,证明了这种方法的可行性,并提出了概念验证。旋风是流行的装置,用于过滤来自发出的烟道气体的灰尘。它们在许多工业过程中应用于包括能源生产和粮食加工设施的预滤清器。讨论了这种多模型优化方法的利弊,并提出了实验的经验。

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