

Coal Engineering ›› 2026, Vol. 58 ›› Issue (4): 155-165.doi: 10.11799/ce202604019
Previous Articles Next Articles
Coupling influence mechanism of jet parameters on coal breaking performance of soft coal #br#
Received:2025-03-19
Revised:2025-05-06
Online:2026-04-10
Published:2026-05-12
CLC Number:
Add to citation manager EndNote|Reference Manager|ProCite|BibTeX|RefWorks
| [1]匡铁军.深部低渗透率煤层瓦斯抽采气固耦合机理研究[J].煤炭科学技术, 2017, 45(8):170-176[2]Kuang Tiejun.Study on gas-solid coupling mechanism of gas drainage from deep and low permeability seam[J].Coal Science and Technology, 2017, 45(8):170-176[3]齐庆新,潘一山,李海涛,等.煤矿深部开采煤岩动力灾害防控理论基础与关键技术[J].煤炭学报, 2020, 45(5):1567-1584[4]Qi Qingxin, Pan Yishan, Li Haitao, et al.Theoretical basis and key technology of prevention and control of coal-rock dynamie disasters in deep coal mining[J].Journal of China Coal Society, 2020, 45(5):1567-1584[5]王恩元, 张国锐, 张超林, 等.我国煤与瓦斯突出防治理论技术研究进展与展望[J].煤炭学报, 2022, 47(1):297-322[6]Wang Enyuan, Zhang Guorui, Zhang Chaolin, et al.Research progress and prospect on theory and technology for coal and gas outburst control and protection in China[J].Journal of China Coal Society, 2022, 47(1):297-322[7]马耕, 陶云奇.煤矿井下水力扰动抽采瓦斯技术体系[J].煤炭科学技术, 2016, 44(1):29-38[8]Ma Geng, Tao Yunqi.Technology system of hydraulic disturbance gas drainage in underground mine[J].Coal Science and Technology, 2016, 44(1):29-38[9]田坤云, 宫伟东, 魏二剑, 等.松软煤层及砂岩顶板水力挠动卸压增透效果对比分析[J].煤炭学报, 2021, 46(6):1888-1897[10]Tian Kunyun, Gong Weidong, Wei Erjian, et al.Gas pressure relief-permeability increase effect comparative analysis about hydraulie disturbance to soft coal seam and its sandstone roof[J].Journal of China Coal Society, 2021, 46(6):1888-1897[11]卢义玉, 黄 杉, 葛兆龙, 等.我国煤矿水射流卸压增透技术进展与战略思考[J].煤炭学报, 2022, 47(9):3189-3211[12]Lu Yiyu, Huang Shan, Ge Zhaolong, et al.Research progress and strategic thinking of coal mine water jet technology to enhance coal permeability in China[J].Journal of China Coal Society, 2022, 47(9):3189-3211[13]沈春明, 汪东, 张浪, 等.水射流切槽诱导高瓦斯煤体失稳喷出机制与应用[J].煤炭学报, 2015, 40(9):2097-2104[14]Shen Chunming, Wang Dong, Zhang Lang, et al.Mechanism and application of inducing high-gas coal outburst from borehole by waterjet slotting[J].Journal of China Coal Society, 2015, 40(9):2097-2104[15]易恩兵, 张永将.超高压水射流“横切纵断”防治复合煤岩动力灾害技术[J].煤炭学报, 2021, 46(4):1271-1279[16]Yi Enbing, Zhang Yongjiang.Composite hazards prevention with breaking coal seam and roof bysuper high pressure water jet[J].Journal of China Coal Society, 2021, 46(4):1271-1279[17]Xiao SQ, Ren QY, Guan RS, et al.Theoretical and experimental investigation on fracture response of coal impacted by high-velocity water jet[J].Energy Reports, 2021, 7:3210-3224[18]江红祥, 杜长龙, 刘送永, 等.高压水射流冲击破岩损伤场分析[J].中南大学学报自然科学版, 2015, 46(1):287-294[19]Jiang Hongxiang, Du Changlong, Liu Yongsong, et al.Numerical analysis on damage field of rock fragmentation with water jet[J].Journal of Central South University(Science and Technology), 2015, 46(1):287-294[20]Zhao J, Zhang GC, Xu YJ, Wang RH, Zhou WD, Han LX et al.Mechanism and effect of jet parameters on particle waterjet rock breaking[J]. Powder Technology, 2017, 313:231-244[21]蒋一峰, 杜锋, 刘昂, 等.高压水射流破碎煤体过程及应力变化规律的数值分析[J].矿业安全与环保, 2018, 45(4):1-5[22]Jiang Yifeng, Du Feng, Liu Ang, et al.Numerical Analysis of Coal Breakage Process and Stress Change Law Under High Pressure Water Jet[J].Mining Safety & Environmental Protection, 2018, 45(4):1-5[23]冯仁俊, 朱永建, 何建新.脉冲水射流冲击非均质受载煤岩的损伤破坏特征及影响分析[J].中国安全生产科学技术, 2025, 21(2):90-98[24]Feng Renjun, Zhu Yongjian, He Jianxin, et al.Damage and failure characteristies and influence analysis of heterogeneous loaded coal rock impacted by pulsed water jet[J].Journal of Safety Science and Technology, 2025, 21(2):90-98[25]葛兆龙, 赵汉云, 卢义玉, 等.高压水射流冲击作用下煤-砂岩-页岩损伤破裂特征[J].振动与冲击, 2021, 40(13):174-181[26]Ge Zhaolong, Zhao Hanyun, Lu Yiyu, et al.Damage and fracture characteristics of coal-sandstone-shale under high pressure water jet impact[J].Journal of Vibration and Shock, 2021, 40(13):174-181[27]高亚斌, 向鑫, 郭晓亚, 等.钻孔水射流冲击破煤岩特性及机制研究[J].振动与冲击, 2022, 41(23):51-59[28]Gao Yabin, Xiang Xin, Guo Xiaoya, et al.Characteristics and mechanism of coal and rock breaking with water jet impact in drill hole[J].Journal of Vibration and Shock, 2022, 41(23):51-59[29]魏建平, 王梦园, 杨恒, 等.磨料质量分数对预混合磨料水射流破岩效果的影响[J].煤炭学报, 2023, 48(1):251-262[30]Wei Jianping, Wang Mengyuan, Yang Heng, et al.Influence of abrasive mass fraction on the effect of premixed abrasive water jets on rock breaking[J].Journal of China Coal Society, 2023, 48(1):251-262[31]Goodin C, Priddy J D.Comparison of SPH simulations and cone index tests for cohesive soils[J].Journal of Terramechanics, 2016, 66:49-57[32]潘越, 杨帆, 张泽鹏, 等.截断式脉冲水射流冲蚀煤岩特性数值模拟[J].振动与冲击, 2021, 40(6):283-288[33]Pan Yu, Yang Fan, Zhang Zepeng, et al.Numerical simulation of coal rock fragmentation characteristics under interrupted pulse water jet[J].Journal of Vibration and Shock, 2021, 40(6):283-288[34]ASTM International.Standard test method for compressive strength and elastic moduli of intactrock core specimens under varying states of stress and temperatures[J].ASTM International, 2014, D7012:-[35]Ge ZL, Cao SR, Lu YY, Gao FF.Fracture mechanism and damage characteristics of coal subjected to a water jet under different triaxial stress conditions[J].Journal of Petroleum Science and Engineering, 2022, 208:109157-109157[36]黄璐云, 陈正寿, 倪路新, 等.靶距与冲击角对超高压水射流喷嘴水动力学性能影响的研究[J].振动与冲击, 2022, 41(15):169-178[37]Huang Luyun, Chen Zhengshou, Ni Luxin, et al.Effects of target distance and impact angle on hydrodynamie performance of ultra-high pressure water jet nozzle[J].Journal of Vibration and Shock, 2022, 41(15):169-178[38]刘送永, 商港, 李洪盛.水下跨介质射流破岩性能试验研究[J].煤炭学报, 2022, 47(4):1723-1733[39]Liu Songyong, Shang gang, Li Hongsheng.Experimental study on rock breaking performance of underwater cross medium jet[J].Journal of China Coal Society, 2022, 47(4):1723-1733 |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||