Page 154 - 《爆炸与冲击》2026年第8期
P. 154
第 46 卷 王雁冰,等: 不同外壳材料对高能产气剂孔壁压力的影响 第 8 期
characteristics by liquid CO 2 [J]. Chinese Journal of Rock Mechanics and Engineering, 2021, 40(S1): 2633–2642. DOI:
10.13722/j.cnki.jrme.2020.0267.
[5] 杨思凡, 郝凯. 高能气体预裂增透抽采瓦斯技术及实践 [J]. 山西焦煤科技, 2023, 47(11): 48–51. DOI: 10.3969/j.issn.1672-
0652.2023.11.011.
YANG S F, HAO K. High energy gas pre-cracking and enhanced permeability gas extraction technology and practice [J].
Shanxi Coking Coal Science & Technology, 2023, 47(11): 48–51. DOI: 10.3969/j.issn.1672-0652.2023.11.011.
[6] 李士超, 李光. 高能气体压裂及评价技术分析与研究 [J]. 化工管理, 2025(11): 162–164. DOI: 10.19900/j.cnki.ISSN1008-
4800.2025.11.040.
LI S C, LI G. Analysis and research on high-energy gas fracturing and evaluation technologies [J]. Chemical Enterprise
Management, 2025(11): 162–164. DOI: 10.19900/j.cnki.ISSN1008-4800.2025.11.040.
[7] WANG E B, ZHU H Y, YI X Y, et al. Numerical simulation of fracture propagation in high-energy gas fracturing of shale
reservoir [J]. Geoenergy Science and Engineering, 2025, 252: 213915. DOI: 10.1016/j.geoen.2025.213915.
[8] WEI X R, WANG X, CAO M T, et al. Study on rock fracture mechanism based on the combustion and explosion
characteristics of high-energy expansive agent [J]. Engineering Fracture Mechanics, 2023, 289: 109428. DOI: 10.1016/j.
engfracmech.2023.109428.
[9] 潘若寒. 基于高能气体的控制爆破技术及其地震波能量分析 [D]. 武汉: 武汉理工大学, 2023. DOI: 10.27381/d.cnki.
gwlgu.2023.001143.
PAN R H. Energy analysis of high-energy gas seismic waves based on controlled blasting of dangerous rock masses [D].
Wuhan: Wuhan University of Technology, 2023. DOI: 10.27381/d.cnki.gwlgu.2023.001143.
[10] 李宁, 陈莉静, 张平. 爆生气体驱动岩石裂缝动态扩展分析 [J]. 岩土工程学报, 2006, 28(4): 460–463. DOI: 10.3321/j.
issn:1000-4548.2006.04.007.
LI N, CHEN L J, ZHANG P. Dynamic analysis for fracturing progress by detonation gas [J]. Chinese Journal of Geotechnical
Engineering, 2006, 28(4): 460–463. DOI: 10.3321/j.issn:1000-4548.2006.04.007.
[11] 张友澎, 赵利信, 王亚奴, 等. 高能气体致裂技术在低渗砂岩型铀矿地浸开采中的应用 [J]. 铀矿冶, 2024, 43(3): 1–8. DOI:
10.13426/j.cnki.yky.2024.02.02.
ZHANG Y P, ZHAO L X, WANG Y N, et al. Application of high energy gas fracturing in in-situ leaching of low-permeable
sandstone uranium deposit [J]. Uranium Mining and Metallurgy, 2024, 43(3): 1–8. DOI: 10.13426/j.cnki.yky.2024.02.02.
[12] 黄向飞, 刘佳. 压裂技术在石油工程中的应用及效果评估 [J]. 中国石油和化工标准与质量, 2025, 45(2): 187–189. DOI:
10.3969/j.issn.1673-4076.2025.02.061.
HUANG X F, LIU J. Application and effect evaluation of fracturing technology in petroleum engineering [J]. China Petroleum
and Chemical Standard and Quality, 2025, 45(2): 187–189. DOI: 10.3969/j.issn.1673-4076.2025.02.061.
[13] 俞海玲. 高压气体预裂爆轰作用致裂煤岩机理及应用研究 [D]. 青岛: 山东科技大学, 2019. DOI: 10.27275/d.cnki.
gsdku.2019.000003.
YU H L. Mechanism and application of high pressure gas presplitting detonation on coal rock fracturing [D]. Qingdao:
Shandong University of Science and Technology, 2019. DOI: 10.27275/d.cnki.gsdku.2019.000003.
[14] 蒲春生, 任山, 吴飞鹏, 等. 气井高能气体压裂裂缝系统动力学模型研究 [J]. 武汉工业学院学报, 2009, 28(3): 12–17. DOI:
10.3969/j.issn.1009-4881.2009.03.003.
PU C S, REN S, WU F P, et al. The study on fracture system dynamics models of HEGF in gas wells [J]. Journal of Wuhan
Polytechnic University, 2009, 28(3): 12–17. DOI: 10.3969/j.issn.1009-4881.2009.03.003.
[15] 吴飞鹏, 蒲春生, 陈德春, 等. 多级脉冲爆燃压裂作用过程耦合模拟 [J]. 石油勘探与开发, 2014, 41(5): 605–611. DOI:
10.11698/PED.2014.05.13.
WU F P, PU C S, CHEN D C, et al. Coupling simulation of multistage pulse conflagration compression fracturing [J].
Petroleum Exploration and Development, 2014, 41(5): 605–611. DOI: 10.11698/PED.2014.05.13.
[16] 刘敬, 吴晋军, 周培尧. 低渗煤层多脉冲压裂激励作用的裂缝模型研究 [J]. 煤炭技术, 2016, 35(1): 1–4. DOI: 10.
13301/j.cnki.ct.2016.01.001.
LIU J, WU J J, ZHOU P Y. Incentive fracture physical model study on multiple pulse fracturing of low permeability coal [J].
Coal Technology, 2016, 35(1): 1–4. DOI: 10.13301/j.cnki.ct.2016.01.001.
[17] MOGI T, MATSUNAGA T, DOBASHI R. Propagation of blast waves from a bursting vessel with internal hydrogen-air
085201-13

