Cite this article as:

Xiaolei Chen, Min Gong, Haojun Wu, Xiaodong Wu, Sijie Wang, and Zhenyang Cao, Quantitative analysis of surrounding rock damage induced by different blast hole types in drift blasting, Int. J. Miner. Metall. Mater., (2026). https://doi.org/10.1007/s12613-026-3429-2
Xiaolei Chen, Min Gong, Haojun Wu, Xiaodong Wu, Sijie Wang, and Zhenyang Cao, Quantitative analysis of surrounding rock damage induced by different blast hole types in drift blasting, Int. J. Miner. Metall. Mater., (2026). https://doi.org/10.1007/s12613-026-3429-2
引用本文 PDF XML SpringerLink

巷道爆破不同类型炮孔诱发围岩损伤的量化分析

摘要: 为定量化评价巷道爆破中不同类型炮孔对围岩损伤的影响,在微风化花岗岩中进行了现场分次爆破试验,并利用高频地质雷达成功获取掏槽、辅助和周边孔爆破后巷道边墙围岩损伤范围,得到三类炮孔对边墙围岩损伤贡献程度的真实量化值。为获取不同炮孔爆破时巷道围岩所有典型位置的损伤变化情况,采用LS-DYNA(3D)程序,建立炮孔分次爆破围岩损伤数值模型,基于边墙实测损伤数据验证了模型的可靠性,并确定了实测损伤范围与数值模型损伤因子的对应关系,揭示了不同类型炮孔爆破后围岩不同位置累计损伤特征及演变规律。研究表明:1)雷达实测损伤深度与数值模拟损伤因子0.3的深度相等,将该因子作为数值模拟中岩体损伤阈值。2)孔底平面的损伤深度约为孔口平面的55.7%–63.7%,两个平面中严重损伤深度的占比分别为58.4%和70.2%。3)距孔口0.8 m以内边墙损伤由距边墙最近的辅助孔和周边孔共同造成,辅助孔的最大贡献率为37.1%;0.8–1.08 m内辅助孔贡献率逐渐降低,周边孔占主导作用;1.08 m以后损伤主要由周边孔引起。拱顶损伤主要由周边孔爆破引起。底板损伤由距离底板最近掏槽孔和底板孔爆破造成,掏槽孔最大贡献率为22.1%。研究结果可为围岩损伤控制和炮孔参数优化提供参考。

 

Quantitative analysis of surrounding rock damage induced by different blast hole types in drift blasting

Abstract: To quantify the impact of the blast hole type on drift surrounding rock damage, on-site sequential blasting tests were conducted in slightly weathered gabbro. High-frequency ground-penetrating radar (GPR) was used to measure the sidewall damage after cut, auxiliary, and contour hole blasting to obtain damage contribution data. To acquire the damage data at all typical locations, a 3D LS-DYNA numerical model for sequential blasting-induced damage was established. The reliability of the model was verified using GPR data. Because rock mass damage in numerical simulations is typically characterized by a damage factor (which can take on multiple values), a correlation was established between the measured damage and the values of this factor obtained from the simulations. The cumulative damage characteristics and evolution laws at different locations were revealed. The results showed: 1) GPR-measured damage depth matched the simulated depth at a damage factor of 0.3, which was set as the rock mass damage threshold. 2) The surrounding rock damage depth at the hole bottom plane was 55.7%–63.7% of that at the hole collar plane, with severe damage depths accounting for 58.4% and 70.2% of the two planes, respectively. 3) Within 0.8 m from the hole collar, sidewall damage was caused by the combined action of auxiliary and contour holes, with auxiliary holes’ contribution reaching a maximum of 37.1%; between 0.8 and 1.08 m, the contribution of auxiliary holes decreased, and damage became dominated by contour holes; beyond 1.08 m, damage was primarily attributable to contour holes. Vault damage was primarily induced by contour holes, whereas floor damage was caused by cut and bottom holes, with a maximum cut-hole contribution of 22.1%. These findings provide a reference for surrounding rock damage control and blast hole parameter optimization in slightly weathered gabbro.

 

/

返回文章
返回