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Multiscale modeling of the mine ventilation system and flow through the gob.

机译:矿井通风系统和通过采空区流的多尺度建模。

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摘要

The following dissertation introduces the hazard of methane buildup in the gob zone, a caved region behind a retreating longwall face. This region serves as a reservoir for methane that can bleed into the mine workings. As this methane mixes with air delivered to the longwall panel, explosive concentrations of methane will be reached.;Computational fluid dynamics (CFD) is one of the many approaches to study the gob environment. Several studies in the past have researched this topic and a general approach has been developed that addresses much of the complexity of the problem. The topic of research herein presents an improvement to the method developed by others. This dissertation details a multi-scale approach that includes the entire mine ventilation network in the computational domain. This allows one to describe these transient, difficult to describe boundaries. The gob region was represented in a conventional CFD model using techniques consistent with past efforts. The boundary conditions, however, were cross coupled with a transient network model of the balance of the ventilation airways. This allows the simulation of complex, time dependent boundary conditions for the model of the gob, including the influence of the mine ventilation system (MVS).;The scenario modeled in this dissertation was a property in south western Pennsylvania, working in the Pittsburgh seam. A calibrated ventilation model was available as a result of a ventilation survey and tracer gas study conducted by NIOSH. The permeability distribution within the gob was based upon FLAC3d modeling results drawn from the literature. Using the multi-scale approach, a total of 22 kilometers of entryway were included in the computational domain, in addition to the three dimensional model of the gob.;The steady state solution to the problem, modeling using this multi-scale approach, was validated against the results from the calibrated ventilation model. Close agreement between the two models was observed, with an average percent difference of less than two percent observed at points scattered throughout the MVS. Transient scenarios, including roof falls at key points in the MVS, were modeling to illustrate the impact on the gob environment.
机译:下面的论文介绍了在采空区(后退长壁工作面后面的一个凹陷区域)中甲烷积累的危害。该区域是甲烷的一个储层,可能会渗入矿井。随着这种甲烷与输送到长壁面板的空气混合,将达到爆炸性的甲烷浓度。计算流体力学(CFD)是研究采空区环境的众多方法之一。过去的一些研究已经研究了该主题,并且已经开发出解决该问题的许多复杂性的通用方法。本文的研究主题提出了对其他人开发的方法的改进。本文详细介绍了一种多尺度方法,该方法在计算域中包括整个矿井通风网络。这使得人们可以描述这些短暂的,难以描述的边界。料滴区域使用与过去的努力一致的技术在常规CFD模型中表示。然而,边界条件与通风气道平衡的瞬态网络模型交叉耦合。这可以模拟采空区模型的复杂的,与时间有关的边界条件,包括矿井通风系统(MVS)的影响。本论文中模拟的场景是宾夕法尼亚州西南部的一处物业,在匹兹堡煤层工作。 NIOSH进行的通风调查和示踪气体研究的结果是可以使用校准的通风模型。采空区内的渗透率分布基于文献中的FLAC3d模拟结果。使用多尺度方法,除了采空区的三维模型外,计算域中还包括总共22公里的入口通道;使用该多尺度方法进行建模的问题的稳态解为根据校准通风模型的结果进行验证。观察到两个模型之间的一致性,在整个MVS分散的点上观察到的平均百分比差异小于2%。正在建模包括MVS关键点的屋顶倒塌在内的瞬态场景,以说明对采空区环境的影响。

著录项

  • 作者

    Wedding, William Chad.;

  • 作者单位

    University of Kentucky.;

  • 授予单位 University of Kentucky.;
  • 学科 Mining engineering.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 250 p.
  • 总页数 250
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:53:31

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