煤炭工程 ›› 2026, Vol. 58 ›› Issue (2): 152-159.doi: 10.11799/ce202602019

• 研究探讨 • 上一篇    下一篇

基于CFD的下料硐室风流-瓦斯运移特性研究

张宏杰,韩 博   

  1. 1. 山西天地王坡煤业有限公司,山西 晋城 048000

    2. 天地科技股份有限公司,北京 100013

    3. 北京中煤矿山工程有限公司,北京 100013

  • 收稿日期:2024-12-06 修回日期:2025-06-11 出版日期:2026-02-15 发布日期:2026-03-16
  • 通讯作者: 韩博 E-mail:hanbo.0427@163.com

Study on airflow-gas migration characteristics in blanking chamber based on CFD

  • Received:2024-12-06 Revised:2025-06-11 Online:2026-02-15 Published:2026-03-16

摘要:

为满足井下生产需求,下料井与下料硐室已成为矿井物料供给的重要场所,而下料井及物料输送过程会显著影响井下硐室的风流-瓦斯运移,该问题在高瓦斯矿井中尤为突出。为明晰下料井建设及下料过程对下料硐室内风流-瓦斯分布特征的影响,通过组分输运模型引入瓦斯组分,构建风流-瓦斯耦合扩散物理模型,系统探究物料输送对下料硐室、下料井内风流-瓦斯分布特征的影响规律。研究结果表明:未设置下料井时,硐室内无明显气流流动,导致瓦斯局部富集;下料井投用后, 在压差作用下,风流沿下料井流入硐室并形成涡流,有效降低硐室内整体瓦斯浓度,但硐室上隅角出现瓦斯积聚,其浓度超过0.09%;随着系统风流瓦斯浓度的升高,压差对硐室内瓦斯的驱散效能逐渐降低;相较于压差作用,增大系统风速可有效降低硐室上隅角瓦斯浓度,且风速越大,驱散效果越显著;此外,采用局部通风机强制通风,借助气流附壁效应增强上隅角风流流动性、优化硐室气流组织,可有效驱散该区域积聚的瓦斯。

关键词: 下料系统, 风流-瓦斯耦合扩散, 组分输运, 瓦斯运移, 通风优化, 瓦斯防治

Abstract:

To meet the demands of underground production, material shafts, and chambers have become crucial sites for mine material supply. The material shaft and conveying process significantly influence gas migration in underground chambers, particularly in high-gas mines. To investigate the impact of material shaft construction and conveying operations on the airflow-methane distribution characteristics within the chamber, this study established a coupled airflow-methane diffusion physical model by incorporating a methane component via the species transport model. The effects of material transport on the airflow-methane distribution in the material chamber and shaft were examined. The findings demonstrate that prior to shaft construction, localized methane accumulation occurred in the chamber due to insufficient airflow. After shaft construction, airflow enters the chamber along the shaft under pressure differentials, forming vortices that reduce overall methane concentrations. However, methane accumulation (exceeding 0.09% by volume) persists in the chamber's upper corner. As the methane content in the system airflow increases, the dispersing effect of pressure differentials diminishes. Compared to pressure-driven dispersal, increasing system airflow velocity more effectively reduces methane concentrations in the upper corner, with enhanced effectiveness at higher velocities. Additionally, forced ventilation using auxiliary fans leverages the Coanda effect to deliberately increase airflow in the upper corner, optimizing internal air distribution and dispersing accumulated methane. These findings provide valuable insights for ventilation design in material shafts and chambers.

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