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基于Dijkstra−ACO混合算法的煤矿井下应急逃生路径动态规划

卢国菊 史文芳

卢国菊,史文芳. 基于Dijkstra−ACO混合算法的煤矿井下应急逃生路径动态规划[J]. 工矿自动化,2024,50(10):147-151, 178.  doi: 10.13272/j.issn.1671-251x.2024020050
引用本文: 卢国菊,史文芳. 基于Dijkstra−ACO混合算法的煤矿井下应急逃生路径动态规划[J]. 工矿自动化,2024,50(10):147-151, 178.  doi: 10.13272/j.issn.1671-251x.2024020050
LU Guoju, SHI Wenfang. Dynamic route planning for emergency escape in coal mines using a Dijkstra-ACO hybrid algorithm[J]. Journal of Mine Automation,2024,50(10):147-151, 178.  doi: 10.13272/j.issn.1671-251x.2024020050
Citation: LU Guoju, SHI Wenfang. Dynamic route planning for emergency escape in coal mines using a Dijkstra-ACO hybrid algorithm[J]. Journal of Mine Automation,2024,50(10):147-151, 178.  doi: 10.13272/j.issn.1671-251x.2024020050

基于Dijkstra−ACO混合算法的煤矿井下应急逃生路径动态规划

doi: 10.13272/j.issn.1671-251x.2024020050
基金项目: 山西省高等学校教学改革创新项目(J20221280)。
详细信息
    作者简介:

    卢国菊(1988—),女,山西运城人,讲师,硕士,研究方向为矿山安全,E-mail:lgj621461@yeah.net

    通讯作者:

    史文芳(1986—),女,山西吕梁人,讲师,博士,研究方向为矿井瓦斯防治,E-mail:674618662@qq.com

  • 中图分类号: TD67

Dynamic route planning for emergency escape in coal mines using a Dijkstra-ACO hybrid algorithm

  • 摘要: 煤矿井下应急逃生路径规划需要根据煤矿井下环境的变化及时调整,但传统方法依赖静态网络和固定权重而无法实现逃生路径规划适应井下环境动态变化。针对上述问题,提出了一种基于Dijkstra−ACO(蚁群优化)混合算法的煤矿井下应急逃生路径动态规划方法。基于巷道坡度和水位对逃生的影响分析,建立了煤矿井下应急逃生最优路径动态规划模型,实现逃生路径随巷道坡度、水位等环境变化而实时调整,从而提高逃生效率和安全性。采用Dijkstra−ACO混合算法求解煤矿井下应急逃生最优路径动态规划模型,即利用Dijkstra算法快速确定初始路径,引入ACO算法寻找距离最短且安全性最高的逃生路径,实现规划路径能够适应环境变化。搭建了模拟某煤矿多种巷道类型及其坡度、水位等参数的仿真环境,开展了应急逃生路径动态规划实验。结果表明,在50 m×100 m,100 m×200 m,150 m×250 m 3种不同尺寸的测试区域中,基于Dijkstra−ACO混合算法规划的路径长度比基于A*算法和基于改进蚁群算法规划的路径长度缩短了19%以上,同时避障率提高了5%以上。

     

  • 图  1  煤矿巷道分布

    Figure  1.  Coal mine roadway distribution

    图  2  不同方法的煤矿井下应急逃生路径

    Figure  2.  Emergency escape routes in coal mine of different methods

    图  3  不同方法的避障率

    Figure  3.  Obstacle avoidance rate of different methods

    表  1  煤矿巷道相关参数

    Table  1.   Relevant parameters of coal mine roadway

    巷道类型 巷道风速/(m·s−1 巷道坡度/(°) 巷道水位/m
    回风联络巷 15~20 60~90 0~0.5
    进风巷 15~20 0 0~0.3
    轨道大巷 0~5 90 0~0.5
    胶带大巷 0~5 0~30 0~0.3
    回风巷 10~15 0~90 0~0.5
    采区联络巷 10~15 30~60 0~0.5
    下载: 导出CSV

    表  2  不同方法规划的路径长度

    Table  2.   Path lengths of different methods

    测试区域尺寸/(m×m) 路径动态规划方法 路径长度/m
    50×100Dijkstra−ACO混合算法125
    A*算法154
    改进ACO算法177
    100×200Dijkstra−ACO混合算法157
    A*算法189
    改进ACO算法210
    150×250Dijkstra−ACO混合算法176
    A*算法205
    改进ACO算法234
    下载: 导出CSV
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出版历程
  • 收稿日期:  2024-02-28
  • 修回日期:  2024-10-11
  • 网络出版日期:  2024-08-02

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