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金属矿山 ›› 2026, Vol. 55 ›› Issue (5): 82-89.

• • 上一篇    下一篇

随机—系统分时异步协同支护技术及其工程应用

徐 帅1 张远博1 王永杰1 王瑞强1,2   

  1. 1. 深部金属矿智能开采与装备全国重点实验室,辽宁 沈阳 110819; 2. 山东恒邦冶炼股份有限公司,山东 烟台 264110
  • 出版日期:2026-05-15 发布日期:2026-06-02
  • 作者简介:徐 帅(1981—),男,教授,博士,博士研究生导师。
  • 基金资助:
    地球深部探测与矿产资源勘查国家科技重大专项(编号:2025ZD1010902);国家自然科学基金项目(编号:52574139)。

Random-System Time-segmented Asynchronous Collaborative Support Technique and Its Engineering Application

XU Shuai1 ZHANG Yuanbo1 WANG Yongjie1 WANG Ruiqiang1,2   

  1. 1. State Key Laboratory of Intelligent Deep Metal Mining and Equipment,Shenyang 110819,China;
    2. Shandong Hengbang Smelting Co. ,Ltd. ,Yantai 264110,China
  • Online:2026-05-15 Published:2026-06-02

摘要: 针对深部开采过程中即时支护与永久支护难以兼顾的问题,提出了一种随机—系统分时异步协同支护
技术,构建了“初期快速支护—二次协同强化”的支护体系,以实现围岩早期变形抑制与整体稳定增强的平衡。研发
了分时异步协同支护元件,通过室内拉拔试验验证了其力学性能。试验结果表明:该元件峰值荷载为124. 25 kN,滑
移荷载可达96 kN,较普通管缝锚杆提升约3 倍,能够在巷道施工初期快速抑制围岩松动。基于该技术,快速布设外
部锚杆实施随机支护,随后利用内部锚杆与金属网协同加固,形成“点面结合、分时施作、异步协同”的动态加固体系。
为进一步评估其有效性,采用FLAC3D 软件进行了数值模拟,结果表明,协同支护方式优化了围岩应力分布,使应力传
递更平缓、范围更广,显著减小了塑性区的发育并降低了局部破坏风险。与普通支护相比,协同支护下最大垂直应力
出现位置后移至1. 4 m,应力峰值平缓,塑性破坏区最大深度减小约1 m,破坏范围和程度均有所减少。将该技术应用
于某铅锌矿破碎巷道支护中,监测结果表明:锚杆轴力累计增加1. 34 kN,顶底板及两帮最大位移分别稳定在1. 8 mm
和0. 8 mm,围岩变形得到了有效控制。研究表明:随机—系统分时异步协同支护技术能够兼顾即时支护与永久支护
需求,为深部高应力巷道稳定性控制提供了一种高效、可靠的支护方案。

关键词: 随机支护 , 系统支护 , 协同强化 , 梯度支护阻力

Abstract: Aiming at the problem that immediate support and permanent support are difficult to balance during deep mining,
a random-system time-segmented asynchronous collaborative support technique is proposed. A support system of " initial
rapid support-secondary collaborative reinforcement" is constructed to achieve the balance between early deformation suppression
and overall stability enhancement of surrounding rock. Time-segmented asynchronous collaborative support components are
developed,and their mechanical properties are verified through laboratory pull-out tests. The test results show that the peak load
of the component is 124. 25 kN,and the slip load can reach 96 kN,which is obviously about 3 times superior to that of split set
bolts,and it can quickly suppress the loosening of surrounding rock in the early stage of roadway construction. Based on this
technique,external bolts are quickly arranged for random support,and then internal bolts are collaboratively reinforced with
metal meshes to form a dynamic reinforcement system characterized by " point-surface combination,time-segmented construction,
and asynchronous collaboration". To further evaluate its effectiveness,FLAC3D software is used for numerical simulation.
The results indicate that the collaborative support method optimizes the stress distribution of surrounding rock,makes stress
transmission smoother and wider,significantly reduces the development of plastic zones,and lowers the risk of local damage.
Compared with conventional support,the position of the maximum vertical stress under collaborative support shifts backward to
1. 4 m,the stress peak is gentle,the maximum depth of the plastic failure zone decreases by about 1 m,and the failure range
and degree are both reduced. This technique has been applied in the fractured roadway of a lead-zinc mine through a unique
construction method. Monitoring results show that the cumulative increase in bolt axial force is 1. 34 kN,and the maximum displacements
of the roof,floor,and two sides are stably controlled at 1. 8 mm and 0. 8 mm respectively,indicating that the surrounding rock deformation is effectively restrained. The research demonstrates that the random-system time-segmented asynchronous
collaborative support technique can meet the requirements of both immediate support and permanent support,providing
an efficient and reliable support solution for the stability of deep high-stress roadways.

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