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第 46 卷 程 兵,等: 槽腔深度对掘进断面后续破岩特性的影响 第 8 期
GONG M, WEN B, WANG H. Influences of cut parameters on blasting effect in rock roadway of coal mine [J]. Explosion and
Shock Waves, 2015, 35(4): 576–584. DOI: 10.11883/1001-1455(2015)04-0576-09.
[6] 王雁冰, 孔维文, 王国豪, 等. 深孔掏槽超深爆破破岩机制及最佳超深值研究 [J]. 采矿与安全工程学报, 2023, 40(6):
1210–1218. DOI: 10.13545/j.cnki.jmse.2022.0122.
WANG Y B, KONG W W, WANG G H, et al. Mechanism of rock breaking by deep hole ultra-deep cut blasting and the
optimum ultra-deep value determination [J]. Journal of Mining and Safety Engineering, 2023, 40(6): 1210–1218. DOI: 10.13545/
j.cnki.jmse.2022.0122.
[7] 李祥龙, 张志平, 王建国, 等. 双空孔间距对爆破槽腔断面大小的影响 [J]. 爆炸与冲击, 2022, 42(11): 115201. DOI:
10.11883/bzycj-2021-0471.
LI X L, ZHANG Z P, WANG J G, et al. Influence of double empty hole spacing on section size of blasting chamber [J].
Explosion and Shock Waves, 2022, 42(11): 115201. DOI: 10.11883/bzycj-2021-0471.
[8] GAO P F, ZONG Q, CHENG B, et al. Investigation on cutting blasting efficiency of hard rock tunnels under different charge
diameters [J]. Applied Sciences, 2022, 12(19): 9906. DOI: 10.3390/APP12199906.
[9] HUO X F, SHI X Z, QIU X Y, et al. Rock damage control for large-diameter-hole lateral blasting excavation based on charge
structure optimization [J]. Tunnelling and Underground Space Technology, 2020, 106: 103569. DOI: 10.1016/j.tust.2020.
103569.
[10] 程兵, 汪海波, 程扬帆, 等. 不同管材侧向环形切缝装药爆炸能量传递特性 [J]. 含能材料, 2024, 32(9): 921–929. DOI:
10.11943/CJEM2023266.
CHENG B, WANG H B, CHENG Y F, et al. Transfer characteristics of explosion energy released by the charge confined to
tubes of different materials with lateral annular slits [J]. Chinese Journal of Energetic Materials, 2024, 32(9): 921–929. DOI:
10.11943/CJEM2023266.
[11] 程兵, 汪泉, 汪海波, 等. 侧向环形切缝装药爆破效应及其在硬岩掏槽中的应用 [J]. 含能材料, 2023, 31(12): 1245–1254.
DOI: 10.11943/CJEM2023208.
CHENG B, WANG Q, WANG H B, et al. Blasting effects and of lateral annular slit charge and application in hard rock
cutting [J]. Chinese Journal of Energetic Materials, 2023, 31(12): 1245–1254. DOI: 10.11943/CJEM2023208.
[12] 程兵, 叶福, 汪泉, 等. 孔内分层装药爆破破岩成腔机理及应用 [J]. 含能材料, 2025, 33(7): 714–724. DOI: 10.11943/
CJEM2025040.
CHENG B, YE F, WANG Q, et al. Mechanisms of rock breaking and cavity formation of hole-inner layered charge blasting
[J]. Chinese Journal of Energetic Materials, 2025, 33(7): 714–724. DOI: 10.11943/CJEM2025040.
[13] ZHANG H, LI T C, DU Y T, et al. Theoretical and numerical investigation of deep-hole cut blasting based on cavity cutting
and fragment throwing [J]. Tunnelling and Underground Space Technology, 2021, 111: 103854. DOI: 10.1016/j.tust.2021.
103854.
[14] 高启栋, 靳军, 王亚琼, 等. 隧道掏槽爆破中起爆点位置对爆炸能量传输的影响作用及其比选研究 [J]. 中国公路学报,
2022, 35(5): 140–152. DOI: 10.19721/j.cnki.1001-7372.2022.05.013.
GAO Q D, JIN J, WANG Y Q, et al. Study on influence law of initiation position on transmission of explosion energy and its
comparison and selection in tunnel cutting blasting [J]. China Journal of Highway and Transport, 2022, 35(5): 140–152. DOI:
10.19721/j.cnki.1001-7372.2022.05.013.
[15] CARDU M, SECCATORE J. Quantifying the difficulty of tunnelling by drilling and blasting [J]. Tunnelling and Underground
Space Technology, 2016, 60: 178–182. DOI: 10.1016/j.tust.2016.08.010.
[16] 杨仁树, 丁晨曦, 杨立云, 等. 岩石爆破基础理论研究进展 [J]. 工程爆破, 2024, 30(5): 11–19. DOI: 10.19931/j.EB.
20240195.
YANG R S, DING C X, YANG L Y, et al. Research progress on the fundamental theory of rock blasting [J]. Engineering
Blasting, 2024, 30(5): 11–19. DOI: 10.19931/j.EB.20240195.
[17] 杨阳, 杨仁树, 陈骏, 等. 岩石爆破基础理论研究进展与展望Ⅰ:本构关系 [J]. 工程科学学报, 2024, 46(11): 1931–1947.
DOI: 10.13374/j.issn2095-9389.2024.06.02.003.
YANG Y, YANG R S, CHEN J, et al. Advancements and future prospects in the fundamental theories of rock blasting
research Ⅰ : constitutive relationships [J]. Chinese Journal of Engineering, 2024, 46(11): 1931–1947. DOI: 10.13374/j.
issn2095-9389.2024.06.02.003.
[18] 李冉鑫, 陈骏, 李成孝, 等. 煤矿巷道相似掏槽爆破技术原理与实验验证 [J]. 煤炭学报, 2025, 50(S1): 74–86. DOI:
10.13225/j.cnki.jccs.2024.0928.
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