• BLASTING
  • Vol. 41, Issue 4, 91 (2024)
ZHAO Xu-kun1, WU Long-hai2, KE Bo1,3, SU Cheng-zhe4..., XIONG Jian5, YU Ming-wei5, TAN Hai1,*, ZHANG Qi-xuan6, PAN Ruo-han1, HUANG Jia-jun1 and LIU Zhi-hao1|Show fewer author(s)
Author Affiliations
  • 1School of Resources and Environment Engineering, Wuhan University of Technology, Wuhan 430070, China
  • 2Hubei Provincial Department of Emergency Management, Wuhan 430000, China
  • 3Wuchang Institute of Technology, Wuhan 430223, China
  • 4Lanzhou Nonferrous Metallurgy Design and Research Institute Co., Ltd., Lanzhou 730000, China
  • 5Luzhou North Chemical Industry Co., Ltd., Luzhou 646000, China
  • 6Public security administration detachment of Huludao Public Security Bureau, Huludao 125000, China
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    DOI: 10.3963/j.issn.1001-487x.2024.04.011 Cite this Article
    ZHAO Xu-kun, WU Long-hai, KE Bo, SU Cheng-zhe, XIONG Jian, YU Ming-wei, TAN Hai, ZHANG Qi-xuan, PAN Ruo-han, HUANG Jia-jun, LIU Zhi-hao. Research on Demolition Technology of Unstable Rock Mass based on High Precision 3D Model[J]. BLASTING, 2024, 41(4): 91 Copy Citation Text show less

    Abstract

    Researching controlled blasting technology for hazardous rock bodies in complex environments holds significant theoretical importance and provides valuable reference points for enhancing highway construction efficiency and mitigating potential risks. This study focuses on the Gulin-Jinsha highway construction project, aiming to eliminate the dangers posed by hazardous rock bodies during construction. Six scanning stations were established using 3D laser scanning technology to create a high-precision 3D Digital Terrain Model (DTM) of the hazardous rock bodies. Additionally, four object detection lines were deployed using a high-density electrical method to achieve 3D visualization of the geological features in the hazardous rock area. A fracturing test was conducted based on the high-precision 3D model. The designed depth of the shell hole was 70% of the height of the hazardous rock body, with fracturing pipes connected in series and each pipe carrying a total charge of 720 g. The results demonstrated that the constructed high-precision 3D model accurately reflects the morphological characteristics of the hazardous rock body, providing reliable information for the blasting design. The fracturing pipes showed effective fracturing performance, facilitating the removal of the hazardous rock body during subsequent stages. This method offers a viable reference for similar projects, showcasing the potential for efficient and safe removal of hazardous rock bodies in complex environments.
    ZHAO Xu-kun, WU Long-hai, KE Bo, SU Cheng-zhe, XIONG Jian, YU Ming-wei, TAN Hai, ZHANG Qi-xuan, PAN Ruo-han, HUANG Jia-jun, LIU Zhi-hao. Research on Demolition Technology of Unstable Rock Mass based on High Precision 3D Model[J]. BLASTING, 2024, 41(4): 91
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