Research on the theory and method of reduced-hole blasting for large cross-section tunnel based on explosive energy dissipation

IF 3.9 2区 工程技术 Q3 ENERGY & FUELS
Xingchao Tian, Tiejun Tao, Caijin Xie
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引用次数: 0

Abstract

The traditional tunnel drilling and blasting method places cut holes at the lower center of the excavation face, resulting in an excessive number of blasting holes. With the continuous increase in cross-section area, this design concept can no longer meet the requirements of safe and efficient tunnel boring for large cross-section tunnels. This paper puts forward the theory and method of reduced-hole blasting for large cross-section tunnels, as an alternative to the traditional drilling and blasting method of the “more holes, less charge” design concept. Based on the explosion energy dissipation law and rock’s critical crushing energy dissipation characteristics, the calculation method of the extrapolation distance of the wedge-cut holes is given. The optimum extrapolation distance of the wedge-cut holes was verified using numerical simulation and field tests. The results show that the number of drilling holes can be reduced by about 15.8% using the theory and method proposed in this paper, and at the same time, the damage of retained rock can be effectively controlled. The results of this study can provide a reference for the design of blast network parameters for similar large cross-section tunnels.

Abstract Image

基于爆炸能量耗散的大断面隧道减孔爆破理论与方法研究
传统的隧道钻爆法是在开挖面的下部中心位置开孔,导致爆破孔数量过多。随着断面面积的不断增大,这种设计理念已不能满足大断面隧道安全高效掘进的要求。本文提出了大断面隧道减孔爆破的理论和方法,以替代传统钻爆法的 "多孔少药 "设计理念。根据爆炸能量耗散规律和岩石临界破碎能量耗散特性,给出了楔切孔外推距离的计算方法。通过数值模拟和现场试验验证了楔切孔的最佳外推距离。结果表明,采用本文提出的理论和方法,钻孔数量可减少约 15.8%,同时,可有效控制对保留岩体的破坏。该研究结果可为类似大断面隧道的爆破网路参数设计提供参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Geomechanics and Geophysics for Geo-Energy and Geo-Resources
Geomechanics and Geophysics for Geo-Energy and Geo-Resources Earth and Planetary Sciences-Geophysics
CiteScore
6.40
自引率
16.00%
发文量
163
期刊介绍: This journal offers original research, new developments, and case studies in geomechanics and geophysics, focused on energy and resources in Earth’s subsurface. Covers theory, experimental results, numerical methods, modeling, engineering, technology and more.
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