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An experimental study on the anchoring characteristics of an innovative self-swelling Split-set

机译:创新自肿胀分裂锚固特性的实验研究

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In order to improve the anchorage performance of conventional Split-sets, an innovative self-swelling Split-set is proposed in this paper. The structure of the rockbolt is introduced and the anchorage mechanism discussed. The self-swelling roll length, position and spacing are optimized based on laboratory pull-out tests. The experimental results indicate that the maximum load capacity and the energy absorption capacity at 200 mm displacement of the self-swelling Split-set are 92 kN and 16.8 kJ respectively when five 10 cm long self-swelling rolls with a 10 cm spacing are placed at the tail of the rockbolt. The time-dependent characteristics of the rockbolt using the optimized structure parameters show that the anchorage force of the rockbolt reaches 74.2% and 96% of the load capacity 12 and 24 h after installation respectively and the corresponding energy absorption capacity is 73.8% and 100% of the maximum energy absorption capacity respectively. The field pull-out test results show that the self-swelling Split-set provides an anchorage force of 92 kN 24 h after installation and the rockbolt can slide with a constant resistance. For comparison, a conventional Split-set of the same size provides only a maximum load capacity of 43 kN and its anchorage force decreases gradually once it slides. The results from the long-term monitoring of the surface displacement and axial force of the rockbolt in an experimental tunnel show that the rockbolt has a better anchorage performance than conventional Split-sets. The self-swelling Split-set takes the advantage of the radial expansion pressure induced by the hydration reaction of the self-swelling rolls to increase the contact force between the rockbolt and the borehole walls, which greatly improves the anchorage force and the energy absorption capacity. In addition, it is simple to install and the unit cost is low.
机译:为了提高常规分裂套的锚固性能,本文提出了一种创新的自膨胀分裂。介绍了岩波的结构并讨论了锚固机制。根据实验室拉出试验优化了自膨胀辊长度,位置和间距。实验结果表明,当一个带有10cm间距的5厘米长的自膨胀辊处,分别是92 kN和16.8kJ的最大负载能力和100mm位移的能量吸收容量。摇滚栓的尾巴。使用优化结构参数的岩波的时间依赖性特征表明,岩波的锚固力分别在安装后达到74.2%和96%的负载能力12和24小时,相应的能量吸收能力为73.8%和100%最大能量吸收能力分别。现场拉出试验结果表明,自膨胀分裂装置在安装后提供92KN 24小时的锚固力,并且突波可以以恒定的电阻滑动。为了比较,传统的相同尺寸的分流组仅提供43 kn的最大负载容量,并且其锚固力一旦滑动就逐渐减小。在实验隧道中岩土表面位移和岩体轴向力的长期监测的结果表明,岩波的性能比传统的分裂套更好。自膨胀分裂装置采用自膨胀辊的水化反应引起的径向膨胀压力的优点,以增加突波和钻孔壁之间的接触力,这大大改善了锚固力和能量吸收能力。此外,安装简单,单位成本低。

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