RONG Xue, HUANG Yourui, CHU Yiran, et al. Information model of coal mine safety production monitoring system based on OPC UA[J]. Journal of Mine Automation,2022,48(3):112-117. DOI: 10.13272/j.issn.1671-251x.17898
Citation: RONG Xue, HUANG Yourui, CHU Yiran, et al. Information model of coal mine safety production monitoring system based on OPC UA[J]. Journal of Mine Automation,2022,48(3):112-117. DOI: 10.13272/j.issn.1671-251x.17898

Information model of coal mine safety production monitoring system based on OPC UA

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  • Received Date: March 07, 2022
  • Revised Date: March 12, 2022
  • Available Online: March 21, 2022
  • There are many kinds of subsystems in the coal mine safety production monitoring system, and the types of equipments in the subsystems are multifarious, which leads to the low semantic completeness of data and the fragmentation of information interaction data caused by the heterogeneous information of equipment. At present, although the research of coal mine informatization construction has basically realized the network integration of each subsystem, the massive data obtained can not be effectively shared, and the integration analysis can not be carried out. In order to solve the above problems, this paper proposes an information model of coal mine safety production monitoring system based on OPC UA. According to the relevant information of coal mine safety production monitoring system and the general modeling rules of OPC UA information model, the mapping relationship between actual equipment of coal mine safety production monitoring system and information model is analyzed, and the overall structure of information model of coal mine safety production monitoring system is proposed. It is pointed out that when new functions need to be extended in coal mine safety production monitoring system, they can be extended in function set. When new equipment needs to be added to the subsystem, new components can be added to the equipment set to ensure the extensibility of the information model. Taking the information model of gas extraction monitoring system as an example, the information model of methane sensor is established by using UaModeler tool. After the information model is graphically designed, the XML description file is generated and imported into the address space of OPC UA server. Through the third-party client UaExpert connecting server to test the information model of the OPC UA, the results show that the information model can realize the mapping in the address space of the OPC UA according to the mapping rules, and access the server's address space through the OPC UA client. The attributes of any object in each coal mine safety production monitoring subsystems can be obtained, which verifies the feasibility of using the OPC UA information model to realize the information interconnection.
  • [1]
    丁恩杰,廖玉波,张雷,等. 煤矿信息化建设回顾与展望[J]. 工矿自动化,2020,46(7):5-11.

    DING Enjie,LIAO Yubo,ZHANG Lei,et al. Review and prospect of coal mine informatization construction[J]. Industry and Mine Automation,2020,46(7):5-11.
    [2]
    吕鹏飞,郭军. 我国煤矿数字化矿山发展现状及关键技术探讨[J]. 工矿自动化,2009,35(9):16-20.

    LYU Pengfei,GUO Jun. Discussion on development situation and key technologies of digital mine in China[J]. Industry and Mine Automation,2009,35(9):16-20.
    [3]
    王国法, 庞义辉, 任怀伟. 智慧矿山技术体系研究与发展路径[J/OL]. 金属矿山: 1-12[2022-03-07]. http://kns.cnki.net/kcms/detail/34.1055.TD.20210726.1042.002.html.

    WANG Guofa, PANG Yihui, REN Huaiwei. Research and development path of intelligent mine technology system[J/OL]. Metal Mine: 1-12[2022-03-07]. http://kns.cnki.net/kcms/detail/34.1055.TD.20210726.1042.002.html.
    [4]
    胡文涛,卓敏敏,赵立厂,等. 一种智慧矿山信息交互方法[J]. 工矿自动化,2020,46(10):55-60.

    HU Wentao,ZHUO Minmin,ZHAO Lichang,et al. An information interaction method for smart mine[J]. Industry and Mine Automation,2020,46(10):55-60.
    [5]
    袁亮,俞啸,丁恩杰,等. 矿山物联网人−机−环状态感知关键技术研究[J]. 通信学报,2020,41(2):1-12. DOI: 10.11959/j.issn.1000-436x.2020036

    YUAN Liang,YU Xiao,DING Enjie,et al. Research on key technologies of human-machine-environment states perception in mine Internet of things[J]. Journal of Communications,2020,41(2):1-12. DOI: 10.11959/j.issn.1000-436x.2020036
    [6]
    张英俊,郭勇义. 基于CORBA的煤矿瓦斯综合监测预警系统集成技术研究[J]. 太原理工大学学报,2009,40(1):24-27.

    ZHANG Yingjun,GUO Yongyi. Research on integration technique for mine gas monitoring and early warning system based on CORBA[J]. Journal of Taiyuan University of Technology,2009,40(1):24-27.
    [7]
    丁琰. 煤矿安全生产监控与通信技术分析[J]. 矿业装备,2021(4):182-183. DOI: 10.3969/j.issn.2095-1418.2021.04.090

    DING Yan. Analysis of safety production monitoring and communication technology in coal mine[J]. Mining Equipment,2021(4):182-183. DOI: 10.3969/j.issn.2095-1418.2021.04.090
    [8]
    马也骋,盛国. 面向井下安全监测的多传感器数据融合ZigBee系统设计[J]. 工业安全与环保,2019,45(1):58-61. DOI: 10.3969/j.issn.1001-425X.2019.01.015

    MA Yecheng,SHENG Guo. A ZigBee system based on the multi-sensor data fusion for mine monitoring[J]. Industrial Safety and Environmental Protection,2019,45(1):58-61. DOI: 10.3969/j.issn.1001-425X.2019.01.015
    [9]
    BS EN 62541-3: 2010. OPC Unified architecture part 3: address space model[S].
    [10]
    高晓东. 基于OPC UA与WEKA平台的压风与制氮机集控系统设计[J]. 自动化技术与应用,2021,40(7):23-26. DOI: 10.3969/j.issn.1003-7241.2021.07.006

    GAO Xiaodong. Design of centralized control system for air compressors and nitrogen generator based on OPC UA and WEKA platform[J]. Techniques of Automation and Applications,2021,40(7):23-26. DOI: 10.3969/j.issn.1003-7241.2021.07.006
    [11]
    张爱绒,谢斌红,张英俊. 基于OPC UA的煤矿监控系统集成设计与实现[J]. 太原理工大学学报,2012,43(1):69-72. DOI: 10.3969/j.issn.1007-9432.2012.01.017

    ZHANG Airong,XIE Binhong,ZHANG Yingjun. Design and implementation of coal mine supervisory control system based on OPC UA[J]. Journal of Taiyuan University of Technology,2012,43(1):69-72. DOI: 10.3969/j.issn.1007-9432.2012.01.017
    [12]
    王勇. 煤矿多系统“一张图”融合联动平台设计[J]. 工矿自动化, 2019, 45(9): 99-102.

    WANG Yong. Design of coal mine multi-system fusion linkage platform based on "one map"[J]. Industry and Mine Automation, 2019, 45(9): 99-102.
    [13]
    翁自觉,江城. OPC UA信息建模技术的研究与实现[J]. 数字技术与应用,2017(12):66. DOI: 10.3969/j.issn.1007-9416.2017.12.034

    WENG Zijue,JIANG Cheng. The design and realization of OPC UA information modeling[J]. Digital Technology and Application,2017(12):66. DOI: 10.3969/j.issn.1007-9416.2017.12.034
    [14]
    闫兆振,贺耀宜,丁瑞琦. 基于OPC UA的数据交互中间件的研究[J]. 工矿自动化,2012,38(12):80-82.

    YAN Zhaozhen,HE Yaoyi,DING Ruiqi. Research of data interaction middleware based on OPC UA[J]. Industry and Mine Automation,2012,38(12):80-82.
    [15]
    胡飞,胥云,廖映华,等. 基于OPC UA的数控机床信息建模与通信研究[J]. 机床与液压,2021,49(20):53-58. DOI: 10.3969/j.issn.1001-3881.2021.20.011

    HU Fei,XU Yun,LIAO Yinghua,et al. Research on information modeling and communication of CNC machine tool based on OPC UA[J]. Machine Tool & Hydraulics,2021,49(20):53-58. DOI: 10.3969/j.issn.1001-3881.2021.20.011
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