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Mechanism and Application of Static Fracturing Technology on Deep Working Face

机译:静态压裂技术对深层工作面的机制及应用

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Static fracturing technology uses chemical expansion agents to fracture roofs. With the aim of fracturing corner roofs on deep working faces, in this study, the static fracturing technology was investigated through theoretical analysis, laboratory experiments, numerical calculations, and field practice. The theoretical analysis and experiments demonstrated that the swelling force increased with a decrease in the fracturing hole spacing, and the optimal water-cement ratio was 0.33. Twelve groups of FLAC3D models were designed using SPSSAU. The results revealed that the optimal fracturing effect was achieved when the hole diameter was 60?mm, hole spacing was 40?cm, and hole depth was 6?m. The fracturing effect of hard corner roofs was monitored by peering into the borehole and evaluating the support resistance. Thus, it can be concluded that within the fracturing range, internal fissures in the rock stratum are developed and linked to each other. The support pressure was the highest, 7?h after grouting, with a value of approximately 26.1?MPa, and then decreased gradually to 17.58?MPa, indicating that the static fracturing technology attained the expected results.
机译:静态压裂技术采用化学膨胀剂来骨折屋顶。随着在深层工作面上压裂角屋顶的目的,通过理论分析,实验室实验,数值计算和现场实践研究了静态压裂技术。理论分析和实验证明,膨胀力随着压裂孔间距的降低而增加,最佳水水柱比为0.33。使用Spssau设计了12组FLAC3D型号。结果表明,当孔直径为60Ωmm时,孔间距为40Ω·厘米,孔深度为6μm,达到最佳压裂效果。通过凝固到钻孔并评估支持性来监测硬角屋顶的压裂效果。因此,可以得出结论,在压裂范围内,岩石层中的内部裂缝彼此开发并连接。灌浆后的支撑压力最高,7?H,值约为26.1μm≤MPa,然后逐渐降低至17.58μm≤MPa,表明静态压裂技术达到了预期的结果。

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