岩土力学 ›› 2026, Vol. 47 ›› Issue (8): 2810-2823.doi: 10.16285/j.rsm.2025.00371CSTR: 32223.14.j.rsm.2025.00371

• 数值分析 • 上一篇    下一篇

爆破作用下砾岩的动态响应及损伤机制

余梦飞1,吴春平1, 2,徐泽辉1,崔新男3,黄磊4,刘创1   

  1. 1. 北京科技大学 资源与安全工程学院,北京 100083; 2. 北京科技大学 中国-赞比亚矿产资源绿色安全开发“一带一路”联合实验室,北京 100083; 3. 北京科技大学 国家卓越工程师学院,北京 100083;4. 中广核铀业发展有限公司,北京 100037
  • 收稿日期:2025-08-19 接受日期:2025-11-24 出版日期:2026-08-11 发布日期:2026-08-18
  • 通讯作者: 吴春平,男,1980年生,博士,教授,主要从事智能爆破方面的教学和研究。E-mail: clydewu@ustb.edu.cn
  • 作者简介:余梦飞,男,1997年生,博士研究生,主要从事爆破工程和智能爆破设备的研究。E-mail: ymf19980922@163.com
  • 基金资助:
    国家重点研发计划(No. 2024YFC2909500);深地国家重大科技专项(No. 2024ZD1003800)。

Dynamic response and damage mechanism of conglomerate under blasting loading

YU Meng-fei1, WU Chun-ping1, 2, XU Ze-hui1, CUI Xin-nan3, HUANG Lei4, LIU Chuang1   

  1. 1. School of Resources and Safety Engineering, University of Science and Technology Beijing, Beijing 100083, China; 2. China-Zambia Belt and Road Joint Laboratory on Green and Safe Development of Mineral Resources, University of Science and Technology Beijing, Beijing 100083, China; 3. National College for Excellent Engineers, University of Science and Technology Beijing, Beijing 100083, China; 4. CGNPC Uranium Resources Development Co., Ltd., Beijing 100037, China
  • Received:2025-08-19 Accepted:2025-11-24 Online:2026-08-11 Published:2026-08-18
  • Supported by:
    This work was supported by the National Key Research and Development Program of China (2024YFC2909500) and the Major National Science and Technology Project for Deep Earth (2024ZD1003800).

摘要: 为研究砾岩在爆破作用下的力学响应与损伤机制,基于多重介质波动力学,针对砾岩的结构特征提出了砾岩爆破分区的理论计算模型。建立了包含基质、砾石及其胶结界面的介观尺度砾岩爆破数值模型。采用电磁分离式霍普金森压杆(split Hopkinson pressure bar,简称SHPB)系统对砾岩进行了动态冲击试验,以验证数值模型材料参数的准确性。随后,针对不同炸药类型和炮孔直径开展了砾岩单孔爆破模拟,对粉碎区面积及裂纹分布进行了定量表征。结果表明:爆破作用下砾石内部的有效应力大于基质内部,但砾石周围的基质更易发生损伤。随着炮孔直径和炸药性能的增加,粉碎区面积和裂纹分形维数均随之增大。然而,当使用低性能炸药时,随着炮孔直径的增加,粉碎区面积的增长率减缓,而裂纹分形维数的增长率加快。这些发现可为砾岩爆破工程提供参考。

关键词: 砾岩, 爆破机制, 细观有限元模型, 多介质波动力学, 动态响应

Abstract: To investigate the mechanical response and damage characteristics of conglomerate under blasting conditions, a theoretical computational model for conglomerate blasting zoning was proposed, grounded in the principles of multi-media wave dynamics and tailored to the structural properties of conglomerate. A mesoscopic numerical model for conglomerate blasting was developed, incorporating the matrix, gravel, and their cementation interfaces. Dynamic impact tests on conglomerate specimens were conducted using an electromagnetic split Hopkinson pressure bar (SHPB) system to validate the accuracy of the numerical model material parameters. Subsequently, single-hole blasting simulations were performed on conglomerate with varying explosive types and blast hole diameters, and the area of the crushed zone and crack distribution were quantitatively characterized. The results show that the effective stress in gravel exceeds that in the matrix under blasting loading, and the matrix around gravel is more prone to damage. With the increase in blast hole diameter and explosive performance, both the area of the crushed zone and the fractal dimension of cracks increase. However, when using low-performance explosives, the growth rate of the crushed zone area slows down as the diameter of the borehole increases, while the growth rate of the fractal dimension of cracks accelerates. These findings can provide reference for gravel blasting engineering.

Key words: conglomerate, blasting mechanism, mesoscopic finite element model, multi-media wave dynamics, dynamic response

中图分类号: TU 452
[1] 杨明辉, 蔡明辉, 陈波, 杨汉, . 考虑波致海床动态响应的单桩水平阻抗计算方法[J]. 岩土力学, 2025, 46(5): 1563-1572.
[2] 文晓泽, 冯国瑞, 王朋飞, 郭军, 钱瑞鹏, 白锦文, 樊一江, 朱林俊, . 高静应力与低频扰动耦合作用下砂岩的 力学响应特征[J]. 岩土力学, 2022, 43(12): 3426-3436.
[3] 牛婷婷, 孙广超, . 高速铁路X形桩桩网复合地基动态响应分析[J]. 岩土力学, 2021, 42(5): 1266-1280.
[4] 王逢睿, 焦大丁, 刘平, 孙博, 王家杰, 杨鸿锐, . 硫酸盐对麦积山砂砾岩风化影响的试验研究[J]. 岩土力学, 2020, 41(7): 2199-2206.
[5] 马东东, 陈庆, 周辉, 滕起, 李科, 胡大伟, . 砂砾岩液态CO2破裂机制试验研究[J]. 岩土力学, 2020, 41(12): 3996-4004.
[6] 范 雷, 张宜虎, 陈 冲, 王复兴. 弱胶结西域砾岩引水隧洞围岩抗力特性试验研究[J]. 岩土力学, 2019, 40(8): 2982-2988.
[7] 董志宏, 钮新强, 丁秀丽, 翁永红, 黄书岭, 裴启涛, 张 练, . 乌东德左岸地下厂房洞室群施工期 围岩变形特征及反馈分析[J]. 岩土力学, 2018, 39(S2): 326-336.
[8] 王新志,谌 民,魏厚振,孟庆山,余克服,. 车辆荷载作用下钙质砂路基的动态响应试验研究[J]. , 2018, 39(11): 4093-4101.
[9] 庞龙龙 ,徐学锋 ,司 亮 ,张 浩 ,李正可 , . 开采上保护层对巨厚砾岩诱发冲击矿压的减冲机制分析[J]. , 2016, 37(S2): 120-128.
[10] 王汉鹏 ,薛俊华 ,李建明 ,张庆贺 ,马芹永,. 隧洞开挖围岩动态卸载响应特征模拟研究[J]. , 2015, 36(5): 1481-1487.
[11] 徐 平 ,李小春 ,周新民,. 瓦斯抽采过程中孔壁的动态响应分析[J]. , 2015, 36(1): 123-130.
[12] 贺明武 ,彭吉银 ,王义峰 ,周扬一 ,江 权 ,徐鼎平,. 乌东德水电站左岸地下厂房区角砾岩地质力学特性及其工程防治实践[J]. , 2014, 35(4): 1063-1068.
[13] 杨岳峰、梁正召、唐春安、. 冲击作用下的压头破岩机制研究[J]. , 2013, 34(6): 1775-1785.
[14] 李连崇 ,李 根 ,孟庆民 ,王 昊 ,王 振 . 砂砾岩水力压裂裂缝扩展规律的数值模拟分析[J]. , 2013, 34(5): 1501-1507.
[15] 何本国 ,朱永全 ,孙明磊 ,张志强 ,孙元国 . 高速铁路膏溶角砾岩深埋隧道支护荷载确定方法[J]. , 2013, 34(3): 827-832.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!