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Dynamic Atmospheric Signal Analysis for Improving Mine Safety and Health

机译:动态大气信号分析可改善矿井安全与健康

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摘要

There are a number of contaminants generated from strata and equipment usage in underground mines including poisonous and combustible gases, as well as heat. Mine ventilation is utilized to dilute the gases and cool the mine to provide conducive environment for mine workers. In order to ensure that contaminant levels are within acceptable regulatory limits, various sensors are installed in strategic places in the mine for monitoring.;Continuous atmospheric monitoring is one of the tools used to achieve health and safety limit compliance and to ensure the quality of air conditions in underground mines. It is challenging to interpret monitoring sensor signal for accident prevention due to different contributing factors. The possibility of contaminant accumulation can be dangerously high as the concentration pulse traveling in the air moves from one location to another. This can be attributed to the inherent delay processes associated with the concentration pulse as it travels with the air velocity. As such, the identification of the delay hazard processes is of prime importance in predicting and preventing any future contaminant concentration increase in the traveling front.;An increase of hazardous contaminant concentrations can be predicted by signal pattern recognition, root-cause analysis of rapid changes toward deterioration and forward prediction in time using algorithms and numerical models. This study focuses on analyzing signal patterns to recognize dangerous trends due to delayed processes by predicting contaminant concentrations for safety checking in underground mines. Efficient numerical ventilation model with contaminant simulation components is needed for the analysis of real-time atmospheric monitoring data. Examples of signal analysis and forward prediction of concentration are demonstrated in mine examples and the new results are presented for the application to improve mine safety and health.
机译:地下矿山的地层和设备使用中会产生许多污染物,包括有毒和可燃气体以及热量。利用矿井通风来稀释气体并冷却矿井,为矿工提供有利的环境。为了确保污染物水平在可接受的法规限制内,在矿井的战略场所安装了各种传感器以进行监测。连续的大气监测是用于达到健康和安全限值要求并确保空气质量的工具之一。地下矿山的条件。由于不同的影响因素,解释监控传感器信号以防止事故具有挑战性。随着空气中传播的浓度脉冲从一个位置移动到另一个位置,污染物积聚的可能性可能非常危险。这可以归因于与浓度脉冲随空气速度行进相关的固有延迟过程。因此,识别延误危险过程对于预测和防止行进前的未来污染物浓度增加至关重要。。信号模式识别,快速变化的根本原因分析可以预测危险污染物浓度的增加使用算法和数值模型对性能进行恶化并及时进行前瞻性预测。这项研究的重点是分析信号模式,通过预测污染物浓度来识别地下矿山的安全性,从而识别由于流程延迟而导致的危险趋势。需要具有污染物模拟组件的高效数值通风模型来分析实时大气监测数据。在煤矿实例中演示了信号分析和浓度预测的实例,并提出了新的结果,可用于提高煤矿安全性和健康性。

著录项

  • 作者

    Asante, William Kofi.;

  • 作者单位

    University of Nevada, Reno.;

  • 授予单位 University of Nevada, Reno.;
  • 学科 Mining engineering.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 192 p.
  • 总页数 192
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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