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Modeling transient particle transport by fast fluid dynamics with the Markov chain method

机译:利用马尔可夫链方法通过快速流体动力学对瞬态粒子传输进行建模

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摘要

Fast simulation tools for the prediction of transient particle transport are critical in designing the air distribution indoors to reduce the exposure to indoor particles and associated health risks. This investigation proposed a combined fast fluid dynamics (FFD) and Markov chain model for fast predicting transient particle transport indoors. The solver for FFD-Markov-chain model was programmed in OpenFOAM, an open-source CFD toolbox. This study used two cases from the literature to validate the developed model and found well agreement between the transient particle concentrations predicted by the FFD-Markov-chain model and the experimental data. This investigation further compared the FFD-Markov-chain model with the CFD-Eulerian model and CFD-Lagrangian model in terms of accuracy and efficiency. The accuracy of the FFD-Markov-chain model was similar to that of the other two models. For the two studied cases, the FFD-Markovchain model was 4.7 and 6.8 times faster, respectively, than the CFD-Eulerian model, and it was 137.4 and 53.3 times faster than the CFD-Lagrangian model in predicting the steady-state airflow and transient particle transport. Therefore, the FFD-Markov-chain model is able to greatly reduce the computing cost for predicting transient particle transport in indoor environments.
机译:快速的预测瞬态颗粒迁移的仿真工具对于设计室内空气分布以减少室内颗粒的暴露以及相关的健康风险至关重要。这项研究提出了一种组合的快速流体动力学(FFD)和马尔可夫链模型,用于快速预测室内的瞬时粒子传输。 FFD-Markov链模型的求解器在OpenFOAM(一种开源CFD工具箱)中编程。这项研究使用了来自文献的两个案例来验证开发的模型,并发现了由FFD-Markov链模型预测的瞬态粒子浓度与实验数据之间的一致性。这项研究在准确性和效率方面进一步将FFD-Markov链模型与CFD-欧拉模型和CFD-拉格朗日模型进行了比较。 FFD-Markov链模型的准确性与其他两个模型相似。对于这两个研究案例,FFD-Markovchain模型分别比CFD-Eulerian模型快4.7和6.8倍,并且在预测稳态气流和瞬态时分别比CFD-Lagrangian模型快137.4和53.3倍颗粒运输。因此,FFD-Markov链模型能够大大降低用于预测室内环境中瞬态粒子传输的计算成本。

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