• 中文核心期刊
  • 中国科技核心期刊
  • RCCSE中国核心学术期刊

基于地质保障系统的煤矿安全开采规划控制方法

董博, 李旭, 史云, 李磊, 乔佳妮

董博, 李旭, 史云, 李磊, 乔佳妮. 基于地质保障系统的煤矿安全开采规划控制方法[J]. 煤矿安全, 2023, 54(12): 167-174. DOI: 10.13347/j.cnki.mkaq.2023.12.020
引用本文: 董博, 李旭, 史云, 李磊, 乔佳妮. 基于地质保障系统的煤矿安全开采规划控制方法[J]. 煤矿安全, 2023, 54(12): 167-174. DOI: 10.13347/j.cnki.mkaq.2023.12.020
DONG Bo, LI Xu, SHI Yun, LI Lei, QIAO Jiani. Coal mine safety mining planning control method based on geological support system[J]. Safety in Coal Mines, 2023, 54(12): 167-174. DOI: 10.13347/j.cnki.mkaq.2023.12.020
Citation: DONG Bo, LI Xu, SHI Yun, LI Lei, QIAO Jiani. Coal mine safety mining planning control method based on geological support system[J]. Safety in Coal Mines, 2023, 54(12): 167-174. DOI: 10.13347/j.cnki.mkaq.2023.12.020

基于地质保障系统的煤矿安全开采规划控制方法

详细信息
    作者简介:

    董 博(1984—),男,陕西西安人,工程师,本科,从事煤炭、自动化、大数据方面的技术研究和产品开发工作。E-mail:341781574@qq.com

  • 中图分类号: TD163+.1

Coal mine safety mining planning control method based on geological support system

  • 摘要:

    地质保障系统是实现煤矿智能化开采与安全开采的重要基础,随着煤矿智能化开采技术的发展,精准开采成为煤炭采掘的新要求。为实现煤矿安全规划与高效开采,提出了基于地质保障技术的开采控制方法,该方法依托巷道地质写实、钻孔探测技术与槽波地震勘探技术等构建了地质模型,在自适应开采与协同开采过程中揭露信息对智能决策平台进行修正,并对相关设备与模块系统进行优化,实现了工作面自动控制与模块协同调配,满足了工作面开采中安全规划与高效开采的需求,该系统在黄陵二号煤矿的实际应用中,实现了减损增效的功能。

    Abstract:

    Geological assurance system is an important foundation to realize intelligent mining and guarantee coal mine safety. With the development of intelligent mining technology in coal mines, precise mining becomes a new requirement for coal mining. In order to achieve safe planning and efficient mining in coal mines, a mining control method based on geological support technology is proposed. The method builds a geological model based on roadway exposure exploration technology, borehole detection technology and channel wave seismic exploration technology, and uses the geological assurance system to collect relevant data in the process of mining adaptive mining and cooperative mining to correct the intelligent decision-making platform and improve the decision-making level. The relevant equipment and module systems are optimized to realize automatic control of the working face and cooperative deployment of modules to achieve safe planning and efficient mining of the working face. The practical application of the system in Huangling No.2 mine has realized the function of reducing losses and increasing efficiency.

  • 图  1   构造建模

    Figure  1.   Structural modeling

    图  2   系统模型动态更新界面

    Figure  2.   System dynamic update interface

    图  3   基于地质模型的开采工艺大数据决策路线

    Figure  3.   Decision route of mining technology big data based on geological model

    图  4   功能架构设计图

    Figure  4.   Functional architecture design

    图  5   模型修正技术路线图

    Figure  5.   Model revision technology roadmap

    图  6   采煤机自动化总体思路

    Figure  6.   General idea of shearer automation

    图  7   统计分析服务架构

    Figure  7.   Statistical service architecture

    图  8   系统组成示意图

    Figure  8.   Schematic diagram of system composition

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出版历程
  • 收稿日期:  2023-01-05
  • 网络出版日期:  2023-12-21
  • 刊出日期:  2023-12-21

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