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Theoretical and numerical investigation of deep-hole cut blasting based on cavity cutting and fragment throwing

机译:基于腔切割和碎片投掷的深孔切口爆破的理论与数值研究

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摘要

Cut blasting is the key of single-face blasting in underground rock engineering, which determines the success or failure of the blasting process. Traditional cut blasting is not suitable for deep-hole blasting engineering because of the difficulty of throwing rock fragments and the accumulation at the bottom. In this paper, an advanced concept of cavity cutting and fragment throwing (CCFT) for cut blasting is proposed, which is divided into the following two blasting processes: cut hole breaking and fragment-throwing hole throwing. By establishing a mechanical model of CCFT, cut cavity efficiency is introduced as an evaluation index of the cutting effect, and the advantages of CCFT cut blasting are analyzed theoretically. Based on the smoothed particle hydrodynamics-finite element method (SPH-FEM), a CCFT cut blasting model and a traditional cut blasting model are established and compared. The results show that the detonation of the central fragment-throwing hole in CCFT cut blasting plays a key role in the throwing of rock fragments, improving the cut cavity efficiency by approximately 20%. Additionally, 9 sets of numerical models are established to study the effects of various parameters on the cut cavity formation, and optimization suggestions are given for the parameters. The findings show that as the hole depth increases, more blasting energy is needed for the throwing of rock fragments, which can be effectively achieved by increasing the ratio of the charge weight delta. The hole spacing needs to be properly designed to ensure that the rock between the holes is penetrated and broken. The large-diameter fragment-throwing hole guides the development of blasting cracks and promotes rock fragmentation. Finally, two engineering cases, namely, one-step shaft excavation and deep-hole drilling and blasting in a rock tunnel, illustrate the application of CCFT cut blasting. The good application results provide references for similar engineering projects.
机译:切割爆破是地下岩石工程中单面爆破的关键,这决定了爆破过程的成功或失败。由于难以投掷岩石碎片和底部的积累,传统的切割爆破不适合深孔爆破工程。在本文中,提出了一种先进的腔切割和片段投掷(CCFT)进行抛出的爆破(CCFT)的先进概念,其分为以下两种爆破过程:切割孔断裂和碎片投掷孔投掷。通过建立CCFT的机械模型,将切割腔效率引入切割效果的评估指标,从理论上分析CCFT切割爆破的优点。基于平滑的粒子流体动力学 - 有限元方法(SPH-FEM),建立和比较了CCFT切割模型和传统的剪切模型。结果表明,CCFT切口中的中央片段投掷孔的爆炸在岩石碎片投掷中起着关键作用,将切割腔效率提高约20%。另外,建立了9组数值模型来研究各种参数对切割腔形成的影响,并给出参数的优化建议。结果表明,随着孔深度的增加,岩石碎片的投掷需要更多的爆破能量,这可以通过增加电荷重量δ的比率有效地实现。需要适当地设计孔间距,以确保孔之间的岩石渗透和破碎。大直径碎片投掷孔指导爆破裂缝的发展,促进岩石碎片。最后,两个工程箱,即一步轴挖掘和岩石隧道中的深孔钻孔和爆破,说明了CCFT切割爆破的应用。良好的应用程序结果为类似的工程项目提供了参考。

著录项

  • 来源
    《Tunnelling and underground space technology》 |2021年第5期|103854.1-103854.18|共18页
  • 作者单位

    Shandong Univ Sci & Technol Shandong Key Lab Civil Engn Disaster Prevent & Mi Qingdao 266590 Peoples R China;

    Shandong Univ Sci & Technol Shandong Key Lab Civil Engn Disaster Prevent & Mi Qingdao 266590 Peoples R China;

    Shandong Univ Sci & Technol Shandong Key Lab Civil Engn Disaster Prevent & Mi Qingdao 266590 Peoples R China;

    Shandong Univ Sci & Technol Shandong Key Lab Civil Engn Disaster Prevent & Mi Qingdao 266590 Peoples R China;

    Shandong Univ Sci & Technol Shandong Key Lab Civil Engn Disaster Prevent & Mi Qingdao 266590 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Cut blasting; Cut cavity efficiency; Deep-hole blasting; Parameter optimization; SPH-FEM;

    机译:削减爆破;切腔效率;深孔爆破;参数优化;SPH-FEM;
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