建筑环境中行人层湍急风流建模的最新进展

Jiading Zhong, Jianlin Liu, Yongling Zhao, Jianlei Niu, Jan Carmeliet
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摘要

从气候变化适应战略的角度来看,影响行人的城市通风和热舒适度的紧迫问题正日益受到重视。在最近的研究工作中,首要目标是利用计算时间合理的不同模拟方法准确评估行人层面的风环境(PLW)。本综述旨在深入探讨过去 5 年中使用既有模拟方法和数据驱动模拟方法进行的最新行人水平风研究,涉及 215 篇使用计算流体动力学(CFD)和典型数据驱动模型的文章。我们发现,稳态雷诺平均纳维-斯托克斯(SRANS)模拟仍是最常用的方法。由于 SRANS 方法中蕴含着模型的不确定性,建议使用灵敏度测试作为使用 SRANS 方法的补救措施。另一个值得注意的发展趋势是使用高效方法进行非稳态模拟。具体来说,大规模并行化大涡流模拟(LES)和混合 LES-RANS 都具有很高的计算效率和精度。虽然人们普遍认为数据驱动模型在预测 PLW 动力学方面具有更高的计算效率,但如果考虑到数据驱动模型的开发、训练和验证时间,这些模型实际上仍需要大量的计算资源和努力。通过对这些建模方法的综合理解,预计将有助于为 PLW 环境研究选择适当的模拟方法,最终在行人舒适度和城市通风评估方面为城市规划和建筑设计服务。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Recent advances in modeling turbulent wind flow at pedestrian-level in the built environment

Pressing problems in urban ventilation and thermal comfort affecting pedestrians related to current urban development and densification are increasingly dealt with from the perspective of climate change adaptation strategies. In recent research efforts, the prime objective is to accurately assess pedestrian-level wind (PLW) environments by using different simulation approaches that have reasonable computational time. This review aims to provide insights into the most recent PLW studies that use both established and data-driven simulation approaches during the last 5 years, covering 215 articles using computational fluid dynamics (CFD) and typical data-driven models. We observe that steady-state Reynolds-averaged Navier-Stokes (SRANS) simulations are still the most dominantly used approach. Due to the model uncertainty embedded in the SRANS approach, a sensitivity test is recommended as a remedial measure for using SRANS. Another noted thriving trend is conducting unsteady-state simulations using high-efficiency methods. Specifically, both the massively parallelized large-eddy simulation (LES) and hybrid LES-RANS offer high computational efficiency and accuracy. While data-driven models are in general believed to be more computationally efficient in predicting PLW dynamics, they in fact still call for substantial computational resources and efforts if the time for development, training and validation of a data-driven model is taken into account. The synthesized understanding of these modeling approaches is expected to facilitate the choosing of proper simulation approaches for PLW environment studies, to ultimately serving urban planning and building designs with respect to pedestrian comfort and urban ventilation assessment.

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