瓦斯抽采钻孔密封段裂隙扩展特征试验研究

    Experimental investigation on the fracture propagation characteristics of sealed sections in gas drainage boreholes

    • 摘要: 瓦斯抽采钻孔密封段的稳定性是影响瓦斯抽采效率的关键因素之一。通过单轴压缩试验,并结合数字图像相关法(DIC)技术探究了含孔试样及不同封孔材料条件下试样的破坏特征,试验采用DNS200电子万能试验机,对四种试样(完整试样、含孔试样、充填聚氨酯材料试样和充填CF-2膨胀材料试样)进行加载,实时监测其应力-应变特性、裂隙扩展过程和孔周位移变化。结果表明:完整试样和充填CF-2膨胀材料试样破裂过程具有一致性,表现为压实阶段、弹性阶段、弹-塑性阶段和峰后阶段,而含孔未充填试样和充填聚氨酯试样的曲线则因材料强度较低表现出更长的压密阶段和更大的初期应变;裂隙扩展规律显示,含孔试样的裂隙主要沿孔周扩展,并伴随轴向贯穿裂隙,破坏方式由轴向受压逐渐转变为拉伸破坏和剪切破坏;封孔材料的强度对孔周位移有显著影响,使用充填CF-2膨胀材料试样和使用聚氨酯封孔材料充填试样的钻孔上下端径向变形量分别为1.66 mm和2.26 mm,充填聚氨酯材料试样孔顶环向位移是充填CF-2膨胀材料试样孔顶环向位移的5.5倍,高强度封孔材料(如CF-2膨胀材料)能有效减少钻孔上下端位移的变形,从而提高钻孔的稳定性。通过对比不同试样的破坏特征和裂隙扩展规律,揭示了瓦斯抽采钻孔密封段的破坏机制,明确了封孔材料强度对钻孔稳定性的关键作用。高强度封孔材料能够显著提高钻孔密封段的稳定性,减少裂隙扩展和瓦斯泄漏风险,为优化瓦斯抽采钻孔设计和封孔材料选择提供了理论依据,对提高瓦斯抽采效率和矿井安全生产具有重要的指导意义。

       

      Abstract: The stability of sealed sections in gas drainage boreholes is one of the key factors affecting the efficiency of gas drainage. In this study, uniaxial compression tests are conducted in combination with Digital Image Correlation (DIC) technology to investigate the failure characteristics of specimens with different borehole sealing materials. The tests are performed using a DNS200 electronic universal testing machine on four types of specimens: intact specimens, specimens with holes, specimens filled with polyurethane material, and specimens filled with CF-2 expanding material. The stress-strain behavior, fracture propagation processes, and displacement changes around the hole are monitored in real time. The results show that the failure process of intact specimens and specimens filled with CF-2 expanding material is consistent, characterized by compaction, elastic, elastoplastic, and post-peak stages. In contrast, specimens with holes but without filling and those filled with polyurethane material exhibit a longer compaction stage and greater initial strain due to their lower material strength. The fracture propagation patterns indicate that fractures in specimens with holes mainly extend along the hole periphery, accompanied by axial through-fractures. The failure mode gradually shifts from axial compression to tensile and shear failure. The strength of the sealing material significantly affects the displacement around the hole. The radial deformation at the upper and lower ends of the borehole filled with CF-2 expanding material and polyurethane sealing material is 1.66 mm and 2.26 mm, respectively. The circumferential displacement at the top of the borehole filled with polyurethane material is 5.5 times that of the borehole filled with CF-2 expanding material. High-strength sealing materials (such as CF-2 expanding material) can effectively reduce the deformation of the upper and lower ends of the borehole, thereby enhancing the stability of the borehole. By comparing the failure characteristics and fracture propagation patterns of different specimens, the study reveals the failure mechanism of the gas drainage borehole sealing section and clarifies the critical role of sealing material strength in borehole stability. High-strength sealed materials can significantly enhance the stability of the borehole sealed section, reduce fracture propagation, and lower the risk of gas leakage. This research provides a theoretical basis for optimizing gas drainage borehole design and selecting appropriate sealing materials, and offers important guidance for improving gas drainage efficiency and ensuring mine safety.

       

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