节点文献

体积式采动应力监测传感器研发及其应用

Research and development of a volumetric mining-induced stress monitoring sensor and its application

  • 推荐 CAJ下载
  • PDF下载
  • 不支持迅雷等下载工具,请取消加速工具后下载。

【作者】 李广汉孙东生韩军郭宝龙马双文朱志洁

【Author】 LI Guanghan;SUN Dongsheng;HAN Jun;GUO Baolong;MA Shuangwen;ZHU Zhijie;Mining College, Liaoning Technical University;Collaborative Innovation Center of Mine Major Disaster Prevention and Environmental Restoration;Institute of Geomechanics, Chinese Academy of Geological Science;Technology Innovation Center for In-situ Stress, Ministry of Natural Resources;

【通讯作者】 韩军;

【机构】 辽宁工程技术大学矿业学院矿山重大灾害防治与环境修复省部共建协同创新中心中国地质科学院地质力学研究所自然资源部地应力工程技术创新中心

【摘要】 随着煤矿开采深度持续向千米级推进,采动应力场的动态演化特征成为深部围岩稳定性控制与动力灾害预警的核心难题。为此,文章研发了一种新型体积式采动应力监测传感器,其通过圆柱形传感结构与钻孔围岩完全耦合,突破了传统设备的单轴测量局限,可实时监测围岩体微小变形引起的采动应力变化,显著提升了煤岩体等非均质介质中的采动应力监测敏感性与长期稳定性。实验室测试结果显示,传感器输出压力变化与轴向应力呈高度线性关系,灵敏度达0.456,优于传统应力计。在长期稳定性测试中,高、低应力环境下的压力波动均未出现持续漂移或数据跳变;温度特性实验揭示了温度与压力变化的线性关系,验证了温度补偿公式的普适性。在陕西彬长矿区雅店煤矿的现场应用中,该传感器成功捕捉到回采过程中与开采周期同步的应力波动;在顶板断裂等突发应力事件中,其响应速度与精度显著优于传统设备,且与微震监测数据具有强相关性;在金属矿山硬岩环境测试中,传感器亦展现出长期稳定的监测能力。试验及应用结果表明,该技术可高效捕捉动力灾害前兆信息,在深埋矿山采动应力监测及深埋隧道迟滞型岩爆预警等领域具有广阔应用前景。

【Abstract】 [Objective] As coal mining depth continuously advancing to the kilometer level, the dynamic evolution characteristics of mining-induced stress fields have become a crucial challenge for deep surrounding rock stability control and dynamic disaster early warning. Existing traditional monitoring equipment is limited by uniaxial measurement, and suffers from insufficient monitoring sensitivity and poor long-term stability in heterogeneous media such as coal and rock masses, failing to meet the precise monitoring needs of deep mining. [Methods] This study proposes a new type of volumetric mining-induced stress monitoring sensor. Through complete coupling between its cylindrical sensing structure and the surrounding rock of the borehole, it breaks through the uniaxial measurement limitation of traditional equipment,enabling real-time monitoring of mining-induced stress changes caused by micro-deformations of surrounding rock masses.[Results] Laboratory tests, field tests, and application results show the following:(1) In laboratory tests, the pressure change output by the sensor shows a highly linear relationship with axial stress, with a sensitivity of 0.456, which is better than that of traditional stress gauges;(2) Long-term stability tests indicate that under high and low stress environments, the sensor’s pressure fluctuations show no continuous drift or data jumps, demonstrating good long-term monitoring stability;(3) Temperature characteristic experiments reveal a linear relationship between temperature and pressure changes, verifying the universality of the temperature compensation formula;(4) In the field application at Yadian Coal Mine in Binchang Mining Area, Shaanxi Province, the sensor successfully captured stress fluctuations synchronized with the mining cycle. In sudden stress events, such as roof fractures, its response speed and accuracy were significantly better than those of traditional equipment, and the monitoring data showed a strong correlation with microseismic monitoring results;(5) Tests in hard rock environments in metal mines also confirmed the sensor’s long-term stable monitoring capability.[Conclusion](1) The new volumetric mining-induced stress monitoring sensor overcomes the uniaxial measurement limitation of traditional equipment, significantly improving monitoring sensitivity and long-term stability in heterogeneous media;(2) Laboratory tests verify its linear response characteristics, high sensitivity, and temperature adaptability, while field applications prove that it can effectively capture the dynamic evolution characteristics of mining-induced stress;(3)The sensor can work stably in different mining environments such as coal mines and metal mines, showing strong applicability. [Significance] This research solves the key problems of insufficient monitoring sensitivity and poor longterm stability of mining-induced stress in deep heterogeneous media. It provides reliable technical support for capturing precursor information of dynamic disasters in deep mines and early warning of delayed rockbursts in tunnels, with important scientific value and application innovation.

【基金】 深地国家科技重大专项(2024ZD1000705)~~
  • 【文献出处】 地质力学学报 ,Journal of Geomechanics , 编辑部邮箱 ,2025年06期
  • 【分类号】TD326;TP212
  • 【下载频次】23
节点文献中: 

本文链接的文献网络图示:

本文的引文网络