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A novel approach to simulate pollutant dispersion in the built environment: Transport-based recurrence CFD

机译:一种模拟建筑环境中污染物扩散的新颖方法:基于运输的递归CFD

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The large-scale practical application of Large-Eddy Simulation (LES) for predicting long-term wind flow and pollutant dispersion in urban areas is inhibited mainly by the associated very large computational costs. To overcome this difficulty, the present study, for the first time, applies transport-based recurrence Computational Fluid Dynamics (rCFD) to simulate atmospheric pollutant dispersion around a building. A novel diffusion model is proposed to accurately predict pollutant transport with rCFD. To illustrate the feasibility and advantages of rCFD, pollutant dispersion around an isolated cubical building with a rooftop vent, immersed in neutral atmospheric boundary layer flow is used as a case study and both LES and rCFD simulations are conducted. It is shown that rCFD simulation results agree well with those from LES both in terms of mean and fluctuating concentrations while the simulation wall-clock time drops from 222 h to 16 min. The application of four evaluation metrics (FAC2, FB, NMSE and R) indicates very good agreement between LES and rCFD results. Another major advantage of rCFD is that different pollutant events can be simulated promptly once the database has been stored for a given flow configuration, as shown by the comparison of LES and rCFD results for two other cases with different release locations. This study extends the application of transport-based rCFD to pollutant dispersion in the built environment and indicates that rCFD is a promising approach to facilitate the large-scale practical application of LES for this type of applications.
机译:大涡模拟(LES)在预测城市地区长期风流和污染物扩散方面的大规模实际应用主要受到相关的非常大的计算成本的限制。为了克服这一困难,本研究首次将基于交通的递归计算流体动力学(rCFD)应用于模拟建筑物周围的大气污染物扩散。提出了一种新颖的扩散模型,以利用rCFD准确预测污染物的迁移。为了说明rCFD的可行性和优势,以案例研究为例,将污染物分散在带有屋顶通风口的隔离式立方建筑物周围,并浸入中性大气边界层流中,并进行了LES和rCFD模拟。结果表明,rCFD模拟结果在平均浓度和波动浓度方面均与LES的结果吻合良好,而模拟挂钟时间从222 h降至16 min。四个评估指标(FAC2,FB,NMSE和R)的应用表明LES和rCFD结果之间具有很好的一致性。 rCFD的另一个主要优点是,一旦为给定的流量配置存储了数据库,就可以迅速模拟不同的污染物事件,如LES和rCFD结果在其他两种具有不同释放位置的情况下的比较所示。这项研究将基于交通的rCFD的应用扩展到建筑环境中的污染物扩散,并表明rCFD是一种有前途的方法,可促进LES在此类应用中的大规模实际应用。

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