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Research on Coal Seam Floor Water Inrush Monitoring Based on Perception of IoT Coupled with GIS

机译:基于物联网感知与GIS相结合的煤层底板突水监测研究

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摘要

To the complication and uncertainty in coal seam floor water-inrush monitoring, Internet of Things (IoT) perception is applied to the monitoring and controlling of coal seam floor water inrush with major impacting factors analyzed, and an open distribution information processing platform is constructed based on IoT-GIS coupling perception. Then using the platform to comprehensively perceive various floor water inrush impacting parameters, an AHP model is established. At this stage, by means of weight reasoning algorithm based on dynamic Bayesian network, the AHP weight can be worked out using the two-way probability transfer and chain rules. Then the multiple factors are spatially fused by GIS to form a non-linear mathematical model for the calculation of the water inrush relative probability index. After that, the discrimination threshold of the comb graph for the floor water inrush relative probability index is used to further identify the floor water inrush mode. The experiments in 10 Coal Seam of Suntuan Mine show that, the accuracy perceived the floor water inrush is above 92%, and the platform of IoT-GIS coupling perception has the obvious technical advantage than traditional monitoring technology. Therefore, it has demonstrated strong systematic robustness, important theoretical and application significance.
机译:针对煤层底板突水监测的复杂性和不确定性,将物联网(IoT)感知技术应用于煤层底板突水的监测与控制,分析其主要影响因素,构建了基于此的开放分布信息处理平台。 IoT-GIS耦合感知。然后利用该平台综合感知各种底板突水影响参数,建立了AHP模型。在这一阶段,借助基于动态贝叶斯网络的权重推理算法,可以使用双向概率转移和链式规则来计算AHP权重。然后通过GIS在空间上融合多个因素,形成一个非线性数学模型,用于计算突水相对概率指数。此后,使用梳状图的地板突水相对概率指数的判别阈值来进一步识别地板突水模式。在孙团矿10煤层进行的实验表明,地面突水的感知精度达到92%以上,并且IoT-GIS耦合感知平台具有比传统监测技术明显的技术优势。因此,它表现出强大的系统鲁棒性,重要的理论和应用意义。

著录项

  • 来源
    《Engineering》 |2012年第8期|467-476|共10页
  • 作者单位

    School of Energy and Safety, Anhui University of Science and Technology, Huainan, China;

    School of Energy and Safety, Anhui University of Science and Technology, Huainan, China,School of Computer Science and Engineering, Anhui University of Science and Technology, Huainan, China;

    School of Energy and Safety, Anhui University of Science and Technology, Huainan, China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    internet of things; GIS; coupling perception; floor water inrush;

    机译:物联网;地理信息系统耦合感知地板突水;
  • 入库时间 2022-08-18 01:01:02

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