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Discrete Element Reduced-Order Modeling of Dynamic Particulate Systems

机译:动态粒子系统的离散元降阶建模

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摘要

One of the key technical challenges associated with modeling particulate processes is the ongoing need to develop efficient and accurate predictive models. Often the models that best represent solids handling processes, like discrete element method (DEM) models, are computationally expensive to evaluate. In this work, a reduced-order modeling (ROM) methodology is proposed that can represent distributed parameter information, like particle velocity profiles, obtained from high-fidelity (DEM) simulations in a more computationally efficient fashion. The proposed methodology uses principal component analysis (PCA) to reduce the dimensionality of the distributed parameter information, and response surface modeling to map the distributed parameter data to process operating parameters. This PCA-based ROM approach has been used to model velocity trajectories in a continuous convective mixer, to demonstrate its applicability for pharmaceutical process modeling.
机译:与微粒过程建模相关的关键技术挑战之一是对开发高效,准确的预测模型的持续需求。通常,最能代表固体处理过程的模型(例如离散元素方法(DEM)模型)在计算上很昂贵。在这项工作中,提出了一种降阶建模​​(ROM)方法,该方法可以以更高的计算效率方式表示从高保真(DEM)仿真获得的分布式参数信息,例如粒子速度剖面。所提出的方法使用主成分分析(PCA)来减少分布参数信息的维数,并使用响应面建模将分布参数数据映射到过程操作参数。这种基于PCA的ROM方法已用于在连续对流混合器中对速度轨迹进行建模,以证明其在制药过程建模中的适用性。

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