Citation: | WEI Zongyong, XUE Menghua, HU Yuhang, FAN Fuhuai, ZHOU Yuxuan, YANG Ting, GONG Yanbing. Multi-factor Influence Test for Gas Discharge Characteristics of Coal[J]. Safety in Coal Mines, 2019, 50(9): 9-12. |
[1] |
林海飞,丁智超,李树刚,等.煤样瓦斯放散性能多因素敏感性试验研究[J].安全与环境学报,2016(4):168-172.
|
[2] |
陈学习,张凯,张亮,等.不同变质程度煤的瓦斯放散特性实验研究[J].华北科技学院学报,2016,13(5):1-4.
|
[3] |
LI Yibo, ZHENG Wancheng, WANG Fengshuang. The effect of coal sample particle size on coaladsorption constants and initial speed of methane diffusing[J].Safety in Coal Mines, 2013, 44(1): 5-8.
|
[4] |
CHEN Xiangjun, CHENG Yuanping, WANG Lin. Experimental study on the inhibition of injection waterto the gas desorption of coal[J]. Journal of Mining & Safety Engineering, 2013, 30(2): 296-301.
|
[5] |
李晓伟,蒋承林.温度对瓦斯放散初速度测定的影响研究[J].煤矿安全,2009,40(1):1-3.
|
[6] |
李树刚,赵鹏翔,林海飞,等.软硬煤质量比对煤吸附甲烷的影响[J].采矿与安全工程学报,2013,30(1):118-122.
|
[7] |
肖知国,王兆丰,陈立伟,等.煤层高压注水防治煤与瓦斯突出效果考察与机理分析[J].河南理工大学学报(自然科学版),2010,29(3):287-292.
|
[8] |
Wu D M, Zhao Y M, Cheng Y P, et al. △p Index with Different Gas Compositions for Instantaneous Outburst Prediction in Coal Mines[J]. Mining Science and Technology, 2010, 20(5): 723-726.
|
[9] |
TONG Jinyu, YANG Jihong, YANG Guoxiang.Research on similar material proportioning test ofmodel test based on orthogonal design[J]. Journal of China Coal Society, 2012, 37(1): 44-49.
|
[10] |
李晓伟,蒋承林,季明,等.初始释放瓦斯膨胀能与煤体破碎程度的关系研究[J].煤矿安全,2008,39(5):1-7.
|
[11] |
贾东旭,孙景来.不同变质程度煤体破碎度对瓦斯放散初速度的影响[J].煤炭科学技术,2013(8):68.
|
[12] |
国家安全生产监督管理总局.煤的瓦斯放散初速度指标(△p)测定方法[M].北京:煤炭工业出版社,2010.
|
[13] |
孟召平,刘珊珊,王保玉,等.不同煤体结构煤的吸附性能及其孔隙结构特征[J].煤炭学报,2015,40(8):1865-1870.
|
[14] |
钟玲文,张慧,员争荣,等.煤的比表面积、孔体积及其对煤吸附能力的影响[J].煤田地质与勘探,2002, 30(3):26-29.
|
[1] | REN Jianxi, YI Gui, CHEN Xu, CAO Xitailang. Experimental study on creep failure mechanism of artificially frozen sandstone of Luohe Formation after thawing[J]. Safety in Coal Mines, 2022, 53(7): 74-81. |
[2] | WANG Heng, GUO Junhua. Application of C100 high performance concrete in freezing shaft wall[J]. Safety in Coal Mines, 2021, 52(9): 122-128. |
[3] | WANG Xiaoyun, YAO Zhishu, JI Wenjie, HUANG Xianwen, MENG Xiangqian. Optimization of three-circle pipe layout for freezing shaft sinking based on combined weighting-grey correlation method[J]. Safety in Coal Mines, 2021, 52(8): 218-225. |
[4] | LI Huaixin, LIN Bin, FAN Dengzheng. Uniaxial Compressive Strength Test on Artificially Frozen Clay[J]. Safety in Coal Mines, 2020, 51(7): 55-60. |
[5] | LIU Wei, ZHANG Futao, LIU Limin. Analysis of Freezing Characteristics and Compressive Strength of Weathered Rock Mass in Northwest China[J]. Safety in Coal Mines, 2019, 50(11): 216-219. |
[6] | WANG Mingzhi, CHEN Xian, LI Zhongsen, CHE Faming. Key Technologies for Fast Construction of Freezing Deep Vertical Shaft[J]. Safety in Coal Mines, 2019, 50(7): 100-102,107. |
[7] | TIAN Yingguo, YANG Gengshe, LI Borong, ZHENG Xuanrong. Interaction of Freezing Shaft "Two-wall" in Cretaceous Strata[J]. Safety in Coal Mines, 2015, 46(12): 42-45. |
[8] | LI Borong, YANG Gengshe, XI Jiami, CHEN Xinnian. Pressure Field and Tempreture Field Monitoring of Shaft Wall by Freezing Shaft Sinking in Rich Water and Soft Rock[J]. Safety in Coal Mines, 2015, 46(5): 58-62. |
[9] | FANG Shi-yu, YUE Feng-tian, SHI Rong-jian, LIU Ping, ZHANG Hao-bei. Application of Liquid Nitrogen Freezing Method on Sealing Water of Pipelining Formation in Inclined Shaft[J]. Safety in Coal Mines, 2013, 44(4): 165-167. |
[10] | ZHAO Qiang, WU Guang-hui. The Mechanism and Control Technology of Thawing Water Disaster Caused by the Bedrock Freezing Construction[J]. Safety in Coal Mines, 2013, 44(4): 91-93. |