煤炭工程 ›› 2026, Vol. 58 ›› Issue (3): 182-190.doi: 10.11799/ce202603022

• 研究探讨 • 上一篇    下一篇

动静组合加载下冲击倾向性煤样动力学特性及破碎分形特征研究

亓佳利,李伟清,吴 震,赵仁宝,王怀远,卢绪涛,郭伟耀,谷雪斌   

  1. 1. 山东能源鲁西矿业有限公司,山东 菏泽 274700

    2. 内蒙古昊盛煤业有限公司,内蒙古 鄂尔多斯 017000

    3. 山东能源鲁西矿业有限公司 郭屯煤矿,山东 菏泽 274704

    4. 山东科技大学 能源与矿业工程学院,山东 青岛 266590

    5. 济宁学院 资源环境与安全工程学院,山东 曲阜 273199

  • 收稿日期:2025-07-19 修回日期:2025-11-01 出版日期:2026-03-10 发布日期:2026-04-14
  • 通讯作者: 谷雪斌 E-mail:gxb_wy2021@163.com

Dynamic characteristics and fractal features of burst-prone coal samples under static-dynamic combined loading#br# #br#

  • Received:2025-07-19 Revised:2025-11-01 Online:2026-03-10 Published:2026-04-14

摘要:

为研究动静组合加载下冲击倾向性煤样的破坏规律,采用分离式霍普金森压杆(SHPB)系统开展不同动静组合加载试验,结合高速相机观测与破碎块度筛分分析,对冲击倾向性煤样的动力响应特征与破碎规律进行系统研究。结果表明:煤样动态强度随冲击气压升高呈显著增大趋势,随轴向静载增大呈现先升高后降低的非线性变化特征;在相同轴向静载条件下,随着冲击气压增大,破碎产物中小粒径块体质量占比不断提高,碎块分形维数随之上升;在相同冲击荷载下,试样破坏程度随轴向静载增大呈先减轻后加剧的规律,分形维数表现为先降低后升高,说明煤体抗动载能力随静载升高先增强后减弱,当静载超过单轴抗压强度的50%时,煤样更易发生动力破坏。

关键词:

SHPB, 动态强度, 轴向静载, 破碎块度, 分形维数, 冲击地压

Abstract:

To investigate the failure mechanisms of coal samples with impact tendency under combined static and dynamic loading, split Hopkinson pressure bar (SHPB) tests were conducted under varying loading conditions. High-speed camera monitoring and macroscopic fragment size analysis were employed to examine the dynamic response characteristics of the coal samples. The results demonstrate that the dynamic strength of the coal samples exhibits a positive correlation with impact air pressure but a negative correlation with axial pressure. Notably, the dynamic strength initially increases and then decreases with rising axial pressure. Under constant static axial load, higher impact air pressure leads to an increased proportion of small-sized fragments and a rising fractal dimension, indicating greater fragmentation. Conversely, under fixed impact loading, sample damage first decreases and then increases with static load, while the fractal dimension follows a decreasing-then-increasing trend, suggesting that the coal’s resistance to dynamic loading initially strengthens before weakening as axial pressure increases. When the static load exceeds 50% of the uniaxial compressive strength, the samples become significantly more susceptible to dynamic failure. These findings provide valuable theoretical insights for the prevention and control of dynamic disasters in deep coal and rock masses.

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