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Micro-scale pollution mechanism of dust diffusion in a blasting driving face based on CFD-DEM coupled model

机译:基于CFD-DEM耦合模型的爆破驱动面粉尘扩散的微垢污染机制

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In order to investigate the diffuse pollution mechanisms of high-concentration dusts in the blasting driving face, the airflow-dust coupled model was constructed based on CFD-DEM coupled model; the diffusion rules of the dusts with different diameters at microscopic scale were analyzed in combination with the field measured results. The simulation results demonstrate that single-exhaust ventilation exhibited more favorable dust suppression performance than single-forced ventilation. Under single-exhaust ventilation condition, the motion trajectories of the dusts with the diameter smaller than 20?μm were close to the airflow streamline and these dusts were mainly distributed near the footway walls; by contrast, under single-forced ventilation condition, the motion trajectories of the dust particles with a diameter range of 20~40?μm were close to the airflow streamlines, and a large number of dusts with the diameter smaller than 20?μm accumulated in the regions 5?m and 17~25?m away from the head-on section. Moreover, under the single-exhaust ventilation, the relationship between dust diameter D and negative-pressured-induced dust emission ratio P can be expressed as P ?=???25.03ln( D )?+?110.39, and the dust emission ratio was up to 74.36% for 7-μm dusts, and the path-dependent settling behaviors of the dusts mainly occurred around the head-on section; under single-forced ventilation condition, the z value of the dusts with the diameter over 20?μm decreased and the dusts with a diameter smaller than 7?μm are particularly harmful to human health, but their settling ratios were below 22.36%. Graphical abstract The airflow-dust CFD-DEM coupling model was established. The numerical simulation results were verified. The migration laws of airflow field were obtained in a blasting driving face. The diffusion laws of dusts were obtained after blasting.
机译:为了研究爆破驱动面上的高浓度粉尘的漫反射机制,基于CFD-DEM耦合模型构建气流耦合模型;分析了微观规模不同直径的粉尘的扩散规则与场测量结果组合分析。仿真结果表明,单排气通风表现出比单强通风更有利的粉尘抑制性能。在单排气通风条件下,直径小于20≤μm的灰尘的运动轨迹接近气流流线线,这些灰尘主要分布在脚道附近;相比之下,在单强制通风条件下,直径范围为20〜40ΩΩμm的粉尘颗粒的运动轨迹靠近气流流线型,并且大量直径小于20?μm的大量灰尘这些区域5?M和17〜25?远离头部部分。此外,在单排气通风下,灰尘直径D和负压诱导的粉尘发射比P之间的关系可以表示为p?= ??? 25.03ln(d)?+α110.39和灰尘排放比70μm粉尘的粉尘高达74.36%,灰尘的路径依赖性沉降行为主要发生在头部部分周围;在单强通风条件下,直径为20μm的粉尘的Z值降低,直径小于7≤μm的灰尘对人体健康特别有害,但它们的沉降比率低于22.36%。图形摘要建立了气流除尘CFD-DEM耦合模型。验证了数值模拟结果。在爆破驾驶面上获得气流场的迁移规律。爆破后获得粉尘的扩散规律。

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