不同连续矿洗涤器重定向配置的CFD气体分布分析。

Y Zheng, J A Organiscak, L Zhou, T W Beck, J P Rider
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引用次数: 1

摘要

美国国家职业安全与健康研究所(NIOSH)匹兹堡采矿研究部(PMRD)最近利用计算流体动力学(CFD)开发了一系列模型,研究了在排气幕工作面中具有各种风机驱动的水床洗涤器排放配置的连续采矿机周围的气体分布。利用FLUENT中不含反应的物质输运模型构建CFD模型,对洗涤器排出物向工作面而非回幕后的重定向进行了评价。研究结果说明了板(二)段瓦斯分布规律。本研究考虑了以下情况:100%的放电重新定向到离帘侧的面部;100%的放电重新流向面部,但两边的放电相等;15%的放电重新定向到窗帘外的一面,85%的放电重新定向到窗帘的背面。这些模型与传统洗涤器排出的模型进行了比较,其中空气从表面直接进入回流。根据实验数据对模型进行了验证,证明该模型能够准确预测四个气体监测点的六氟化硫(SF6)气体水平。该研究包括一个预测模拟,测试了45°的洗涤器角度与23°的100%重定向等分割情况的洗涤器角度。本文介绍了基于气体分布结果的实验数据对CFD模型的验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

CFD gas distribution analysis for different continuous-miner scrubber redirection configurations.

CFD gas distribution analysis for different continuous-miner scrubber redirection configurations.

CFD gas distribution analysis for different continuous-miner scrubber redirection configurations.

The U.S. National Institute for Occupational Safety and Health (NIOSH)'s Pittsburgh Mining Research Division (PMRD) recently developed a series of models using computational fluid dynamics (CFD) to study gas distribution around a continuous mining machine with various fan-powered flooded bed scrubber discharge configurations in an exhaust curtain working face. CFD models utilizing species transport model without reactions in FLUENT were constructed to evaluate the redirection of scrubber discharge toward the mining face rather than behind the return curtain. The study illustrates the gas distribution in the slab (second) cut. The following scenarios are considered in this study: 100 percent of the discharge redirected back toward the face on the off-curtain side; 100 percent of the discharge redirected back toward the face, but divided equally to both sides; and 15 percent of the discharge redirected toward the face on the off-curtain side, with 85 percent directed toward the return curtain. These models are compared against a model with a conventional scrubber discharge where air is directed away from the face into the return. The models were validated against experimental data, proving to accurately predict sulfur hexafluoride (SF6) gas levels at four gas monitoring locations. This study includes a predictive simulation examining a 45° scrubber angle compared with the 23° angle for the 100 percent redirected, equally divided case. This paper describes the validation of the CFD models based on experimental data of the gas distribution results.

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