Citation: | WANG Guilin,FEI Honglu,LIU Bingxuan,et al. Status quo and trend of blasting technology in open-pit coal mine fire area[J]. Coal Science and Technology,2025,53(1):145−160. DOI: 10.12438/cst.2024-0595 |
Blasting in open-pit coal mine fire areas poses a threat to the safety of blasting operations. In recent decades, engineering and technical personnel at home and abroad have made some achievements in the heat stability of explosive materials, monitoring technology of high-temperature fire area temperature field, and high-temperature blasting technology, providing technical support for the design and construction of fire area blasting. However, there are still bottlenecks in high-temperature fire area blasting technology, such as intelligent monitoring of blast hole temperature during blasting construction, development of high temperature resistant explosive materials, and large-scale fire area blasting technology. In order to achieve safe and efficient blasting in open-pit coal mine fire areas, this paper summarizes and analyzes the blasting technology in open-pit coal mine fire areas, proposes a system and development direction for efficient and safe blasting technology in fire areas: constructing a three-dimensional engineering geological model of the temperature field in the fire area, using fiber Bragg gratings for full hole depth temperature measurement, developing a real-time monitoring system for the temperature field in the fire area, and realizing temperature monitoring and early warning during blasting construction process; Optimize inhibitors and flash point enhancers for high-temperature resistant explosives, optimize explosive formulations, and develop high-temperature resistant explosive materials; The selection of cooling methods and insulation materials for high-temperature blast holes, as well as the design of insulation protection devices for drug packaging; Develop a failure apparatus of charge when the temperature safety threshold is exceeded for the charge inside the hole; Design an one-way blasting network for high-temperature fire areas; The zoning adopts a construction method that combines strengthened loosening, loosening blasting, weak loosening blasting techniques, and the "three small and one long" approach; Develop regulations for blasting operations in high-temperature coal seam fire areas to achieve information and intelligence in fire area blasting. Conducting in-depth research on key technologies for open-pit coal mine fire area blasting has important theoretical and engineering value for improving the safety and efficiency of open-pit coal mine fire area blasting.
[1] |
国家质量监督检验检疫总局,中国国家标准化管理委员会. 爆破安全规程:GB 6722—2014[S]. 北京:中国标准出版社,2015.
|
[2] |
廖明清. 高温矿体开采爆破的安全技术[J]. 爆破,1989,6(1):45−50.
LIAO Mingqing. Safety blasting technology for high temperature deposit mining[J]. Blasting,1989,6(1):45−50.
|
[3] |
杨永军. 温度测量技术现状和发展概述[J]. 计测技术,2009,29(4):62−65. doi: 10.3969/j.issn.1674-5795.2009.04.022
YANG Yongjun. Overview of current situation and development of temperature measurement technology[J]. Metrology & Measurement Technology,2009,29(4):62−65. doi: 10.3969/j.issn.1674-5795.2009.04.022
|
[4] |
曹进军,朱宽,郝亚飞,等. 露天煤矿高温火区爆破测温技术的研究与应用[J]. 爆破,2016,33(2):128−131,154. doi: 10.3963/j.issn.1001-487X.2016.02.025
CAO Jinjun,ZHU Kuan,HAO Yafei,et al. Research and application of temperature testing technique in fire area blasting in open-pit coal mine[J]. Blasting,2016,33(2):128−131,154. doi: 10.3963/j.issn.1001-487X.2016.02.025
|
[5] |
ANSAH M R,SHU Y,et al. High temperature wireless sensor network monitoring system for coalmine fire[J]. IOSR Journal of Electronics and Communication Engineering,2014,9(3):73−78.
|
[6] |
王君霞,郝亚飞,保天才,等. 露天煤矿火区爆破安全作业技术[J]. 工程爆破,2021,27(1):116−120.
WANG Junxia,HAO Yafei,BAO Tiancai,et al. Blasting safety technology in fire zones of open pit coal mine[J]. Engineering Blasting,2021,27(1):116−120.
|
[7] |
崔晓荣,林谋金,束学来. 露天煤矿火区爆破高温孔温度测量与分析[J]. 煤炭技术,2015,34(11):303−305.
CUI Xiaorong,LIN Moujin,SHU Xuelai. Measurement and analysis of high-temperature blast-holes in opencast coal mine with spontaneous combustion[J]. Coal Technology,2015,34(11):303−305.
|
[8] |
马民,李明明. 红外成像技术在煤矿中的应用[J]. 陕西煤炭,2009,28(5):103−105. doi: 10.3969/j.issn.1671-749X.2009.05.043
MA Min,LI Mingming. Application of infrared imaging technology in coal mine[J]. Shaanxi Coal,2009,28(5):103−105. doi: 10.3969/j.issn.1671-749X.2009.05.043
|
[9] |
徐凯磊,江晓光,万余庆,等. 煤田火区无人机热红外遥感监测技术[J]. 煤炭技术,2022,41(7):120−123.
XU Kailei,JIANG Xiaoguang,WAN Yuqing,et al. Thermal infrared remote sensing monitoring technology of UAV in coalfield fire area[J]. Coal Technology,2022,41(7):120−123.
|
[10] |
吴敏杰. 无人机在煤矿地表隐蔽灾害排查中的应用[J]. 煤矿安全,2021,52(11):123−129.
WU Minjie. Application of unmanned aerial vehicle in the investigation of hidden disasters on coal mine surface[J]. Safety in Coal Mines,2021,52(11):123−129.
|
[11] |
万小龙,兰小平. 急倾斜露天煤层高温火区爆破安全技术实践[J]. 西部探矿工程,2023,35(12):109−113. doi: 10.3969/j.issn.1004-5716.2023.12.029
WAN Xiaolong,LAN Xiaoping. Safety technology practice of high temperature fire zone blasting in steeply dipped open pit coal seams[J]. West-China Exploration Engineering,2023,35(12):109−113. doi: 10.3969/j.issn.1004-5716.2023.12.029
|
[12] |
YAMAUCHI R R,SHIOTA A T. Practical applications of tem-perature distribution sensing by Raman backscattering in optical fibers[J]. The International Society for Optical Engineering,1993(7):97−98.
|
[13] |
PERVEZ A. Multibit optical sensor networking[C]//Fiber Optic Sensors:Engineering and Applications. The Hague,Netherlands. SPIE,1991,1511:220-231.
|
[14] |
林谋金,刘昆,石文才,等. 分布式光纤测温技术在火区爆破中应用[J]. 爆破,2015,32(4):141−144. doi: 10.3963/j.issn.1001-487X.2015.04.027
LIN Moujin,LIU Kun,SHI Wencai,et al. Application of distributed optical fiber sensing technology in fire area blasting[J]. Blasting,2015,32(4):141−144. doi: 10.3963/j.issn.1001-487X.2015.04.027
|
[15] |
李洋洋,王洪海,谭玖. 基于FBG的煤矿采空区温度场监测系统的设计[J]. 仪表技术与传感器,2016(3):58−60. doi: 10.3969/j.issn.1002-1841.2016.03.018
LI Yangyang,WANG Honghai,TAN Jiu. Design of temperature field monitoring system for goaf of coal-mines based on FBG[J]. Instrument Technique and Sensor,2016(3):58−60. doi: 10.3969/j.issn.1002-1841.2016.03.018
|
[16] |
PARWEEN S,TRIPATHY A. Distributed FBG temperature sensor for coal mine fire detection[M]//ICT systems and sustainability. Singapore:Springer Nature Singapore,2022:337−344.
|
[17] |
李治纬,李福存,王凯,等. 采空区分布式光纤测温系统在王楼煤矿中的应用[J]. 煤炭技术,2020,39(12):156−158.
LI Zhiwei,LI Fucun,WANG Kai,et al. Application of distributed optical fiber temperature measurement system in Wanglou coal mine[J]. Coal Technology,2020,39(12):156−158.
|
[18] |
时培源,邓高鹏. 分布式光纤测温系统在陈四楼煤矿的应用[J]. 河南科技,2023,42(17):10−13.
SHI Peiyuan,DENG Gaopeng. Application of distributed optical fiber temperature measurement system in chensilou coal mine[J]. Henan Science and Technology,2023,42(17):10−13.
|
[19] |
雍明超. 新疆硫磺沟煤矿火区治理浅析[J]. 内蒙古煤炭经济,2020(7):113−114. doi: 10.3969/j.issn.1008-0155.2020.07.065
YONG Mingchao. A preliminary analysis of fire control in the sulphur gully coal mine in Xinjiang[J]. Inner Mongolia Coal Economy,2020(7):113−114. doi: 10.3969/j.issn.1008-0155.2020.07.065
|
[20] |
李亮盼. 哈尔乌素矿区永兴火区综合治理研究[J]. 露天采矿技术,2018,33(5):103−106.
LI Liangpan. Research on comprehensive control in Ha’erwusu mining area Yongxing fire area[J]. Opencast Mining Technology,2018,33(5):103−106.
|
[21] |
陈龙. 新疆煤田火灾治理中常遇的问题[J]. 冶金管理,2020(5):241−242.
CHEN Long. Common problems encountered in the treatment of coalfield fires in Xinjiang[J]. China Steel Focus,2020(5):241−242.
|
[22] |
罗淑政,玉米提·哈力克,SCHULZ Joerg,等. 新疆煤田火灾的成因、危害及综合治理[J]. 灾害学,2008,23(3):62−65,70. doi: 10.3969/j.issn.1000-811X.2008.03.015
LUO Shuzheng,HALIK U,SCHULZ Joer,et al. Causes,damages and comprehensive management of coalfield fires in Xinjiang[J]. Journal of Catastrophology,2008,23(3):62−65,70. doi: 10.3969/j.issn.1000-811X.2008.03.015
|
[23] |
王文才,李忠东. 露天开挖火区法在浅地表自燃煤层火区灭火中的应用[J]. 内蒙古科技大学学报,2007,26(4):289−292. doi: 10.3969/j.issn.2095-2295.2007.04.001
WANG Wencai,LI Zhongdong. Application of opencast excavating fire area method to the extinguishment of fires in shall-buried spontaneous combustion coal seam fire area[J]. Journal of Inner Mongolia University of Science and Technology,2007,26(4):289−292. doi: 10.3969/j.issn.2095-2295.2007.04.001
|
[24] |
王成. 露天煤矿大面积火区灭火方法[J]. 露天采煤技术,2002,17(5):31−32.
WANG Cheng. Fire-distinguishing method for large sealed fire area in open-pit coal mine[J]. Opencast Coal Mining Technology,2002,17(5):31−32.
|
[25] |
束学来,郑炳旭,郭子如,等. 煤矿火区降温措施的分析与实践[J]. 爆破,2014,31(3):154−158. doi: 10.3963/j.issn.1001-487X.2014.03.031
SHU Xuelai,ZHENG Bingxu,GUO Ziru,et al. Analysis and practical of cooling measures in coal mine fire area[J]. Blasting,2014,31(3):154−158. doi: 10.3963/j.issn.1001-487X.2014.03.031
|
[26] |
张贵峰,廖新旭,王涛. 大石头露天煤矿高温火区爆破技术应用[J]. 现代矿业,2014,30(2):135−136,138. doi: 10.3969/j.issn.1674-6082.2014.02.043
ZHANG Guifeng,LIAO Xinxu,WANG Tao. Application of high temperature fire zone blasting technology in Dashitou open-pit coal mine[J]. Modern Mining,2014,30(2):135−136,138. doi: 10.3969/j.issn.1674-6082.2014.02.043
|
[27] |
邱振华. 露天矿山高温炮孔爆破的处理方法[J]. 采矿技术,2016,16(4):94−96. doi: 10.3969/j.issn.1671-2900.2016.04.034
QIU Zhenhua. Treatment methods for high-temperature blast holes in open-pit mines[J]. Mining Technology,2016,16(4):94−96. doi: 10.3969/j.issn.1671-2900.2016.04.034
|
[28] |
陈亚军,陈宪. 铁长沟露天煤矿火区爆破安全性分析[J]. 能源技术与管理,2005,30(1):39−40. doi: 10.3969/j.issn.1672-9943-B.2005.01.018
CHEN Yajun,CHEN Xian. Safety analyses of blasting in the fire district of Tie Chang Gou open mine[J]. Jiangsu Coal,2005,30(1):39−40. doi: 10.3969/j.issn.1672-9943-B.2005.01.018
|
[29] |
梁树平,周西华,张宏伟,等. 液氮降温防灭火试验研究[J]. 辽宁工程技术大学学报(自然科学版),2010,29(6):1042−1045. doi: 10.3969/j.issn.1008-0562.2010.06.010
LIANG Shuping,ZHOU Xihua,ZHANG Hongwei,et al. Study on coal mine fire prevention & extinguishing test with liquid nitrogen[J]. Journal of Liaoning Technical University (Natural Science),2010,29(6):1042−1045. doi: 10.3969/j.issn.1008-0562.2010.06.010
|
[30] |
艾兴,王银辉,毛龙,等. 露天开采高温爆破钻孔液态CO2快速降温试验研究[J]. 中国安全生产科学技术,2017,13(1):5−10.
AI Xing,WANG Yinhui,MAO Long,et al. Experimental study on borehole rapid cooling by using liquid carbon dioxide in high-temperature blasting of opencast mining[J]. Journal of Safety Science and Technology,2017,13(1):5−10.
|
[31] |
马灵军,李玉民,周光华,等. 煤矿液氮防灭火、降温一体化技术装备与应用研究[J]. 中国煤炭,2014,40(11):98−101. doi: 10.3969/j.issn.1006-530X.2014.11.032
MA Lingjun,LI Yumin,ZHOU Guanghua,et al. Integrated equipment with functions of fire prevention and extinguishment by liquid nitrogen injection and cooling and its application in coal mine[J]. China Coal,2014,40(11):98−101. doi: 10.3969/j.issn.1006-530X.2014.11.032
|
[32] |
高喜军. 煤矿液氮防灭火技术应用标准及发展趋势[J]. 中国石油和化工标准与质量,2022,42(12):4−6. doi: 10.3969/j.issn.1673-4076.2022.12.002
GAO Xijun. Application standards and development trends of coal mine liquid nitrogen fire prevention and extinguishing technology[J]. China Petroleum and Chemical Standard and Quality,2022,42(12):4−6. doi: 10.3969/j.issn.1673-4076.2022.12.002
|
[33] |
刘宇. 煤矿液氮防灭火技术[J]. 当代化工研究,2020(12):36−37. doi: 10.3969/j.issn.1672-8114.2020.12.017
LIU Yu. Coal mine liquid nitrogen fire prevention and extinguishing technology[J]. Modern Chemical Research,2020(12):36−37. doi: 10.3969/j.issn.1672-8114.2020.12.017
|
[34] |
徐清叙. 对煤矿井下火区应用液氮防灭火技术效果的分析[J]. 新疆有色金属,2013,36(5):5−7.
XU Qingxu. Analysis of the effectiveness of liquid nitrogen fire prevention and extinguishing technology applied in underground fire areas of coal mines[J]. Xinjiang Nonferrous Metals,2013,36(5):5−7.
|
[35] |
王刚,侯程恒,刘宝华. 液氮防灭火技术在五虎山矿业公司中的应用[J]. 煤矿安全,2019,50(8):127−129,133.
WANG Gang,HOU Chengheng,LIU Baohua. Application of liquid nitrogen fire extinguishing technology in Wuhushan mining company[J]. Safety in Coal Mines,2019,50(8):127−129,133.
|
[36] |
王德明. 矿井防灭火新技术——三相泡沫[J]. 煤矿安全,2004,35(7):16−18. doi: 10.3969/j.issn.1003-496X.2004.07.007
WANG Deming. A novel technology of mine fire fighting—three- phrase foam[J]. Safety in Coal Mines,2004,35(7):16−18. doi: 10.3969/j.issn.1003-496X.2004.07.007
|
[37] |
周福宝,宋体良,王德明,等. 特大型火区的地面钻孔注三相泡沫灭火技术[J]. 煤炭科学技术,2005,33(7):1−3. doi: 10.3969/j.issn.0253-2336.2005.07.001
ZHOU Fubao,SONG Tiliang,WANG Deming,et al. Extinguishing technology with three phase foam grouting from surface boreholes for mine special large fire disaster[J]. Coal Science and Technology,2005,33(7):1−3. doi: 10.3969/j.issn.0253-2336.2005.07.001
|
[38] |
张志英,王志权,韩兵. 三相泡沫在综放工作面采空区火灾治理中的应用[J]. 煤炭技术,2017,36(8):187−188.
ZHANG Zhiying,WANG Zhiquan,HAN Bing. Application of three phase foam in fire district governance for fully mechanized caving goaf[J]. Coal Technology,2017,36(8):187−188.
|
[39] |
孙艳伟. 三相泡沫防灭火技术的研究与应用[J]. 山东工业技术,2017(3):257.
SUN Yanwei. Research and application of three-phase foam fire prevention and extinguishing technology[J]. Shandong Industrial Technology,2017(3):257.
|
[40] |
陈永强. 地面钻孔注浆在治理采空区自燃发火中的应用[J]. 冶金与材料,2020,12(4):136,138.
CHEN Yongqiang. Application of ground drilling and grouting in treating spontaneous combustion in goaf[J]. Metallurgy and Materials,2020,12(4):136,138.
|
[41] |
刘文文. 榆神矿区浅埋深房柱式采空区自燃火灾注浆治理[J]. 内蒙古煤炭经济,2020(9):1−2,18. doi: 10.3969/j.issn.1008-0155.2020.09.002
LIU Wenwen. Grouting treatment for spontaneous combustion fire in shallow buried deep room and pillar type goaf in Yushen mining area[J]. Inner Mongolia Coal Economy,2020(9):1−2,18. doi: 10.3969/j.issn.1008-0155.2020.09.002
|
[42] |
邓军,孙宝亮,费金彪,等. 胶体防灭火技术在煤层露头火灾治理中的应用[J]. 煤炭科学技术,2007,35(11):58−60. doi: 10.3969/j.issn.0253-2336.2007.11.016
DENG Jun,SUN Baoliang,FEI Jinbiao,et al. Application of colloidal fire extinguishing technology to fire disaster control of seam outcrop[J]. Coal Science and Technology,2007,35(11):58−60. doi: 10.3969/j.issn.0253-2336.2007.11.016
|
[43] |
刘玉福. 黑岱沟露天煤矿高温抛掷爆破孔降温处理[J]. 煤矿安全,2010,41(10):65−67.
LIU Yufu. Cooling treatment of high-temperature throwing blasting holes in Heidaigou open-pit coal mine[J]. Safety in Coal Mines,2010,41(10):65−67.
|
[44] |
周名辉,唐洪佩,杨开山. 露天煤矿高温爆破技术研究[J]. 爆破,2014,31(2):119−122. doi: 10.3963/j.issn.1001-487X.2014.02.026
ZHOU Minghui,TANG Hongpei,YANG Kaishan. Study of high temperature area blasting in opencast coal mine[J]. Blasting,2014,31(2):119−122. doi: 10.3963/j.issn.1001-487X.2014.02.026
|
[45] |
PANDEY J,BHAGAT N K,TRIPATHI D D,et al. Application of suitable methodology for control of coal fire according to its magnitude in hot strata blast-holes–an approach[J]. International Journal of Coal Preparation and Utilization,2024,44(9):1414−1430. doi: 10.1080/19392699.2023.2280689
|
[46] |
田晓华. 内蒙古桌子山煤田火区特征及灭火方法探讨[J]. 中国煤炭地质,2008,20(11):12−14. doi: 10.3969/j.issn.1674-1803.2008.11.004
TIAN Xiaohua. A discussion on burning area characteristics and fire extinguishing methods in Zhuozishan coalfield,Inner Mongolia[J]. Coal Geology of China,2008,20(11):12−14. doi: 10.3969/j.issn.1674-1803.2008.11.004
|
[47] |
伏旭. 平朔东露天矿火区爆破钻孔灭火降温实践[J]. 内蒙古煤炭经济,2017(16):127−129. doi: 10.3969/j.issn.1008-0155.2017.16.073
FU Xu. Practice of firefighting and cooling by blasting drilling in the fire zone of Pingshuo East Open-pit Mine[J]. Inner Mongolia Coal Economy,2017(16):127−129. doi: 10.3969/j.issn.1008-0155.2017.16.073
|
[48] |
王建华,陈冰凌. 汝箕沟矿区火区治理及监测方法的选择与应用[J]. 中国煤炭地质,2021,33(11):81−86. doi: 10.3969/j.issn.1674-1803.2021.11.16
WANG Jianhua,CHEN Bingling. Fire zone governance and monitoring method selection and application in Rujigou Coalmine area[J]. Coal Geology of China,2021,33(11):81−86. doi: 10.3969/j.issn.1674-1803.2021.11.16
|
[49] |
黄亚峰,王晓峰,冯晓军,等. 高温耐热炸药的研究现状与发展[J]. 爆破器材,2012,41(6):1−4. doi: 10.3969/j.issn.1001-8352.2012.06.001
HUANG Yafeng,WANG Xiaofeng,FENG Xiaojun,et al. Preset research and perspective of the high-temperature heat-resistance explosive[J]. Explosive Materials,2012,41(6):1−4. doi: 10.3969/j.issn.1001-8352.2012.06.001
|
[50] |
OXLEY J C,SMITH J L,ROGERS E,et al. Ammonium nitrate:Thermal stability and explosivity modifiers[J]. Thermochimica Acta,2002,384(1-2):23−45. doi: 10.1016/S0040-6031(01)00775-4
|
[51] |
DJERDJEV A M,PRIYANANDA P,GORE J,et al. The mechanism of the spontaneous detonation of ammonium nitrate in reactive grounds[J]. Journal of Environmental Chemical Engineering,2018,6(1):281−288. doi: 10.1016/j.jece.2017.12.003
|
[52] |
KENJI T,TANAKA S,SAWADA T. Development of heat resistant industrial explosives[J]. Journal of the Japan Explosives Society:Explosion,Explosives and Pyrotechnics,2002,63:144−150.
|
[53] |
TANAKA K,TANAKA S,SAWADA T,et al. Study of Heat Resistant Commercial Explosives[C]//Pro-ceedings of the Annual Conference on Explosives and Blasting Technique. ISEE. 2003:175−184.
|
[54] |
于谦,郭子如,何志伟,等. 典型工业炸药耐热性实验研究[J]. 爆破器材,2019,48(1):47−51,57. doi: 10.3969/j.issn.1001-8352.2019.01.009
YU Qian,GUO Ziru,HE Zhiwei,et al. Experimental study on heat resistance of typical industrial explosives[J]. Explosive Materials,2019,48(1):47−51,57. doi: 10.3969/j.issn.1001-8352.2019.01.009
|
[55] |
刘伟,郭子如,王洋,等. 耐热型铵油炸药的制备及性能[J]. 火炸药学报,2020,43(4):372−377.
LIU Wei,GUO Ziru,WANG Yang,et al. Preparation and properties of heat-resistant ammonium nitrate fuel oil explosive[J]. Chinese Journal of Explosives & Propellants,2020,43(4):372−377.
|
[56] |
郭子如, 方琦, 段晓兵, 等. 耐热型铵油炸药露天煤矿火区爆破试验及分析[J]. 煤矿爆破,2019,37(5):1−3,12.
GUO Ziru, FANG Qi, DUAN Xiaobing, et al. Blasting test and analysis of heat resistant ANFO explosives in high temperature overburdens of open coal mine[J]. Coal Mine Blasting,2019,37(5):1−3,12.
|
[57] |
廖明清, 聂辉成. 高硫高温矿用安全炸药的研究[J]. 矿业研究与开发,1993,13(2):48−55.
LIAO Mingqing, NIE Huicheng. A study on safe explosive re-sistant to high sulphur and high temperature[J]. Mining Research and Development,1993,13(2):48−55.
|
[58] |
林谋金,郑炳旭,李战军,等. 高温炮孔中乳化炸药升温规律分析[J]. 爆破器材,2016,45(1):47−50,55. doi: 10.3969/j.issn.1001-8352.2016.01.011
LIN Moujin,ZHENG Bingxu,LI Zhanjun,et al. Temperature raising analysis of emulsion explosive in blast holes at high temperature[J]. Explosive Materials,2016,45(1):47−50,55. doi: 10.3969/j.issn.1001-8352.2016.01.011
|
[59] |
束学来,郑炳旭,郭子如,等. 耐热炸药机理分析与优化浅析[J]. 工程爆破,2014,20(5):59−63. doi: 10.3969/j.issn.1006-7051.2014.05.013
SHU Xuelai,ZHENG Bingxu,GUO Ziru,et al. Mechanism and optimization analysis of heat-resistant explosives[J]. Engineering Blasting,2014,20(5):59−63. doi: 10.3969/j.issn.1006-7051.2014.05.013
|
[60] |
傅建秋,李战军,蔡建德,等. 胶状乳化炸药和电雷管的耐高温性能试验研究[J]. 爆破,2008,25(4):7−10,27. doi: 10.3963/j.issn.1001-487X.2008.04.002
FU Jianqiu,LI Zhanjun,CAI Jiande,et al. Experimental research on resistance to elevated temperatures of colloidal emulsion explosive and electric detonator[J]. Blasting,2008,25(4):7−10,27. doi: 10.3963/j.issn.1001-487X.2008.04.002
|
[61] |
李晓磊. 百川煤业首采区高温孔爆破的安全处理方法[J]. 山西化工,2019,39(4):85−86,92.
LI Xiaolei. Safety treatment of high temperature hole blasting in first mining area of Baichuan Coal Industry[J]. Shanxi Chemical Industry,2019,39(4):85−86,92.
|
[62] |
廖明清,李荣其,邹素珍. 硫化矿高温采区的爆破技术[J]. 长沙矿山研究院季刊,1987,7(3):64−71.
LIAO Mingqing,LI Rongqi,ZOU Suzhen. A new blasting technique used in sulhide ore mining with temperature and spontaneous combustion[J]. Mining Research and Development,1987,7(3):64−71.
|
[63] |
廖明清,孙孚锜. 普通导爆索在高温爆破中的应用[J]. 爆破器材,1991,20(1):19−21.
LIAO Mingqing,SUN Fuqi. Applications of common detonating fuses in high-temperature blasting jobs[J]. Explosive Materials,1991,20(1):19−21.
|
[64] |
王飞,马宏昊,沈兆武. 一种应用于高温火区爆破中的不可逆起爆网路的耐温与传爆性能[J]. 含能材料,2016,24(1):106−110.
WANG Fei,MA Honghao,SHEN Zhaowu. Heat resistance and explosion transfer performance in the irreversible detonating network applied in high temperature mine blasting[J]. Chinese Journal of Energetic Materials,2016,24(1):106−110.
|
[65] |
刘大斌,2004. 塑料导爆管研究进展[C]//中国民用爆破器材学会. 中国民用爆破器材学会第六届年会论文集. 南京:南京理工大学国家民用爆破器材质量监督检验中心:172−178.
|
[66] |
黄金栋. 高强度耐高温导爆雷管在齐大山铁矿的应用[J]. 中国矿业,2000,9(S1):177−179.
HUANG Jindong. Application of high-strength high-temperature resistant detonator in Qidashan Iron Mine[J]. China Mining Magazine,2000,9(S1):177−179.
|
[67] |
张力. 数码电子雷管的发展及应用研究[J]. 采矿技术,2014,14(5):68−69,165. doi: 10.3969/j.issn.1671-2900.2014.05.028
ZHANG Li. Development and application research of digital electronic detonators[J]. Mining Technology,2014,14(5):68−69,165. doi: 10.3969/j.issn.1671-2900.2014.05.028
|
[68] |
韩庆坤. 耐温180 ℃电雷管的研究[J]. 爆破器材,1980,9(2):12−14,30.
HAN Qingkun. Research on temperature resistant 180 ℃ electric detonators[J]. Explosive Materials,1980,9(2):12−14,30.
|
[69] |
任泰昌,邹志兵. GT-1A型电子雷管的研究与应用[J]. 煤矿爆破,2020,38(2):34−37. doi: 10.3969/j.issn.1674-3970.2020.02.010
REN Taichang,ZOU Zhibing. Research and application of GT-1A electronic detonator[J]. Coal Mine Blasting,2020,38(2):34−37. doi: 10.3969/j.issn.1674-3970.2020.02.010
|
[70] |
郑炳旭. 中国高温介质爆破研究现状与展望[J]. 爆破,2010,27(3):13−17,35. doi: 10.3963/j.issn.1001-487X.2010.03.004
ZHENG Bingxu. Current status and prospect of high-temperature blasting research in China[J]. Blasting,2010,27(3):13−17,35. doi: 10.3963/j.issn.1001-487X.2010.03.004
|
[71] |
陈寿如,柳健康,史秀志,等. 高温控制爆破中新型隔热材料的试验研究[J]. 爆破器材,2002,31(5):32−35. doi: 10.3969/j.issn.1001-8352.2002.05.010
CHEN Shouru,LIU Jiankang,SHI Xiuzhi,et al. The experimental study of a new type of heat insulation material used in high temperature control blasting[J]. Explosive Materials,2002,31(5):32−35. doi: 10.3969/j.issn.1001-8352.2002.05.010
|
[72] |
史秀志,谢本贤,鲍侠杰. 高温控制爆破工艺及新型隔热材料的试验研究[J]. 矿业研究与开发,2005,25(1):68−71. doi: 10.3969/j.issn.1005-2763.2005.01.021
SHI Xiuzhi,XIE Benxian,BAO Xiajie. Experimental study of controlled blasting technology of high temperature coagulation and new heat insulation material[J]. Mining Research and Development,2005,25(1):68−71. doi: 10.3969/j.issn.1005-2763.2005.01.021
|
[73] |
张月欣,黄东平,黄木辉,等. 宝鼎矿区煤层燃烧治理中的爆破灭火技术[J]. 煤矿爆破,2007,25(2):18−20.
ZHANG Yuexin,HUANG Dongping,HUANG Muhui,et al. Blasting technique for fire fighting during the coal bed combustion treatment in Baoding coal mine area[J]. Coal Mine Blasting,2007,25(2):18−20.
|
[74] |
林谋金,石文才,郑炳旭,等. 应用于火区爆破的耐火隔热套筒设计[J]. 爆破,2017,34(4):133−136. doi: 10.3963/j.issn.1001-487X.2017.04.024
LIN Moujin,SHI Wencai,ZHENG Bingxu,et al. Designing of refractory insulating sleeve for fire area blasting[J]. Blasting,2017,34(4):133−136. doi: 10.3963/j.issn.1001-487X.2017.04.024
|
[75] |
李晓虎,万红彬,周桂松,等. 煤矿火区中锡箔纸防水袋注水爆破研究与应用[J]. 爆破,2016,33(1):110−113. doi: 10.3963/j.issn.1001-487X.2016.01.022
LI Xiaohu,WAN Hongbin,ZHOU Guisong,et al. Research and application of water blasting method with tin foil paper waterproof bag in coal mine of fire area[J]. Blasting,2016,33(1):110−113. doi: 10.3963/j.issn.1001-487X.2016.01.022
|
[76] |
束学来. 火区爆破用炸药的隔热装置研究[J]. 煤矿安全,2016,47(2):119−122.
SHU Xuelai. Study on thermal insulation device for fire area blasting explosives[J]. Safety in Coal Mines,2016,47(2):119−122.
|
[77] |
郝亚飞,周桂松,李晓虎,等. 适用于高温炮孔装药的隔温被筒及高温爆破装药的方法:CN104567566B[P]. 2017−02−01.
|
[78] |
费鸿禄,黄金彪,杨智广,等. 一种火区炮孔爆破药包智能隔热装置:CN107990796B[P]. 2019−12−24.
|
[79] |
王飞,马宏昊,沈兆武. 隔热胶体装药结构的耐热防护与爆炸性能[J]. 含能材料,2023,31(3):306−315. doi: 10.11943/CJEM2022199
WANG Fei,MA Honghao,SHEN Zhaowu. Thermal protection and explosive performance of charge structure with thermally insulating colloid[J]. Chinese Journal of Energetic Materials,2023,31(3):306−315. doi: 10.11943/CJEM2022199
|
[80] |
石文才. 耐温隔热护套:CN104006709B[P]. 2016−06−01.
|
[81] |
吕兆海,赵长红,曹建涛,等. 高温火区赋存下露天开采爆破及边坡稳定性研究[J]. 煤矿安全,2017,48(7):162−165.
LYU Zhaohai,ZHAO Changhong,CAO Jiantao,et al. Study on blasting and slope stability of open-pit mining under high temperature fire occurrence mode[J]. Safety in Coal Mines,2017,48(7):162−165.
|
[82] |
谢钱斌. 基于PDCA循环的高温爆破技术[J]. 工程爆破,2021,27(2):125−129.
XIE Qianbin. Technology of high temperature blasting based on PDCA cycle[J]. Engineering Blasting,2021,27(2):125−129.
|
[83] |
张加权,王丽萍. 采空区、火区爆破作业的安全管理[J]. 露天采矿技术,2012,27(S1):110−111.
ZHANG Jiaquan,WANG Liping. Safety management of blasting operations in goaf and fire areas[J]. Opencast Mining Technology,2012,27(S1):110−111.
|
[84] |
杨茂森,李进霞,岳玉刚,等. 露天火区煤矿高温爆破安全管理探究[J]. 煤矿爆破,2022,40(3):32−34. doi: 10.3969/j.issn.1674-3970.2022.03.008
YANG Maosen,LI Jinxia,YUE Yugang,et al. Research on safety management of high-temperature blasting in fire area of open-pit coal mine[J]. Coal Mine Blasting,2022,40(3):32−34. doi: 10.3969/j.issn.1674-3970.2022.03.008
|
[85] |
张飞天. 露天煤矿火区爆破安全管理措施实践与分析[J]. 内蒙古煤炭经济,2018(19):96−97. doi: 10.3969/j.issn.1008-0155.2018.19.052
ZHANG Feitian. Practice and analysis of safety management measures for blasting in open pit coal mines[J]. Inner Mongolia Coal Economy,2018(19):96−97. doi: 10.3969/j.issn.1008-0155.2018.19.052
|
[86] |
张杰,郝新民,马伟,等. 高温炮孔爆破的安全处理探讨[J]. 工程爆破,2013,19(S1):102−104,111.
ZHANG Jie,HAO Xinmin,MA Wei,et al. Discussion on the safe disposal of the high temperature hole blasting[J]. Engineering Blasting,2013,19(S1):102−104,111.
|