论文标题

CFD在建筑物墙上太阳辐射对街道峡谷加热的表征

CFD characterization of street canyon heating by solar radiation on building walls

论文作者

Pulvirenti, Beatrice, Di Sabatino, Silvana

论文摘要

考虑到热场在很大程度上影响局部流动动力学和污染物浓度分布,街道峡谷内建筑墙和外部空气之间的热交换过程是空气质量建模的重要主题。尽管数量研究丰富,但许多问题仍然没有得到答复,最终限制了在中层大气模型中加入热效应。这项研究感兴趣的是对建筑物墙壁的辐射过程的评估(即,是从相同温度下从理想的黑色表面到辐射的热辐射到辐射的比例),形状因子(即,辐射的比例是使建筑物的表面和朝其他建筑物表面撞击的辐射比例)和相关性与richardson and richardson norkerson and richarderson数字。这项研究是通过计算流体动力学代码OpenFOAM进行的,具有大型涡流模拟(LES)扩展,以在峡谷和Boussinesq内进行模型湍流,以模型传热。还分析了对污染物浓度的后果。基于一个数据库,开发了一个用于设置建筑物表面上的热边界条件的模型,该数据库赋予表面的发射率与该表面发出的热通量之间的相关性,这是在某些天气条件下,这是表面的纬度和经度的函数,即使的时间,在一天中的时间。作为新的结果,提出了转移系数和RI(以及与发射率)之间的指数定律作为峡谷纵横比的函数。

Heat exchange processes between building walls and external air within street canyons is an important topic in air quality modelling considering that the thermal fields largely affect local flow dynamics and pollutant concentration distribution. Despite the abundance of numerical studies, many questions still remain unanswered, ultimately limiting the inclusion of heat effects in mesocale atmospheric models. Of interest in this study is the assessment of radiative processes at building walls in terms of emissivity (i.e. is the ratio of the thermal radiation from a surface to the radiation from an ideal black surface at the same temperature), shape factors (i.e. the proportion of the radiation which leaves the surface of a building and strikes toward the surface of another building) and their relation to the Richardson number. The study is approached via the computational fluid dynamics code OpenFOAM, with large eddy simulations (LES) extension to model turbulence within the canyon and Boussinesq approach to model heat transfer. Consequences on pollutant concentrations are also analysed. A model for setting the thermal boundary conditions on the building surfaces is developed, based on a database that gives the correlations between the emissivity of a surface and the heat flux emitted by this surface, under certain weather conditions, as a function of the latitude and longitude of the surface, the orientation, the time of the day. As a novel result an exponential law between the transfer coefficient and Ri (as well as with the emissivity) is proposed as a function of the canyon aspect ratio.

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