Ignition of methane-air mixtures by laser heated small particles

被引:18
作者
Dubaniewicz, TH [1 ]
Cashdollar, KL [1 ]
Green, GM [1 ]
Chaiken, RF [1 ]
机构
[1] NIOSH, Pittsburgh Res Lab, Pittsburgh, PA 15236 USA
关键词
hazardous locations; laser; methane;
D O I
10.1016/S0950-4230(99)00042-X
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Optical technologies have progressed rapidly in the past 15 years. One application of laser technology in underground coal mines currently under evaluation is the remote measurement of explosive methane gas. Federal regulations require that atmospheric monitoring systems used in gassy underground mines where permissible equipment is required shall be intrinsically safe. Mine Safety and Health Administration criteria for the evaluation and testing of intrinsically safe apparatus and associated apparatus contain no specific guidance for optoelectronic components such as diode lasers. The National Institute for Occupational Safety and Health is conducting a study to help provide a scientific basis for developing appropriate safety guidelines for optical equipment in underground coal mines. Results of experiments involving ignition of methane-air mixtures by collections of small heated particles of Pittsburgh seam coal and black iron oxide are reported. The inert but more strongly absorbing iron oxide targets consistently ignited methane-air mixtures at lower powers than the coal targets. Minimum observed igniting powers for laser energy delivered by 200, 400 and 800 mu m core fiber optic cables and directed onto iron oxide targets in methane-air atmospheres were 0.6, 1.1, and 2.2 W, respectively. Comparisons with the results of other researchers are made. A thermal layer theoretical approach to describing the process is included as an appendix. Published by Elsevier Science Ltd.
引用
收藏
页码:349 / 359
页数:11
相关论文
共 50 条
[31]   Influence of ignition position and obstacles on explosion development in methane-air mixture in closed vessels [J].
Kindracki, J. ;
Kobiera, A. ;
Rarata, G. ;
Wolanski, P. .
JOURNAL OF LOSS PREVENTION IN THE PROCESS INDUSTRIES, 2007, 20 (4-6) :551-561
[32]   Ignition and flame propagation in methane-air multi-stratified vortical flow field [J].
Umeda, Y ;
Fujiwara, T .
COMBUSTION SCIENCE AND TECHNOLOGY, 1996, 115 (4-6) :391-418
[33]   Homogeneous charge compression ignition with nondilute stoichiometric methane-air at extreme compression ratios [J].
Svrcek, Matt N. ;
Edwards, Chris F. .
INTERNATIONAL JOURNAL OF ENGINE RESEARCH, 2013, 14 (05) :479-495
[34]   Impacts of turbulence on explosion characteristics of methane-air mixtures with different fuel concentration [J].
Bai, Chunhua ;
Chang, Xinyu ;
Zhang, Bo .
FUEL, 2020, 271
[35]   Kinetics of thermal combustion of lean methane-air mixtures in reverse flow reactors [J].
Institute of Chemical Engineering, Polish Academy of Sciences, ul. Baltycka 5, 44-100 Gliwice, Poland ;
不详 .
Chem. Process Eng., 2007, 2 (335-345)
[36]   The flammability limits and explosion behaviours of hydrogen-enriched methane-air mixtures [J].
Hao, Qiangqiang ;
Luo, Zhenmin ;
Wang, Tao ;
Xie, Chao ;
Zhang, Siqi ;
Bi, Mingshu ;
Deng, Jun .
EXPERIMENTAL THERMAL AND FLUID SCIENCE, 2021, 126
[37]   Optimizing information content in MOF sensor arrays for analyzing methane-air mixtures [J].
Gustafson, Jenna A. ;
Wilmer, Christopher E. .
SENSORS AND ACTUATORS B-CHEMICAL, 2018, 267 :483-493
[38]   Combustion of a hydrogen jet normal to multiple pairs of opposing methane-air mixtures [J].
Hamed, A. M. ;
Hussin, A. E. ;
Kamal, M. M. ;
Elbaz, A. R. .
PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART A-JOURNAL OF POWER AND ENERGY, 2017, 231 (02) :145-158
[39]   Flame propagation in methane-air mixtures with transverse concentration gradients in horizontal duct [J].
Wang, Chunhua ;
Li, Jialin ;
Tang, Zesi ;
Zhuang, Yanzhen ;
Guo, Jin .
FUEL, 2020, 265 (265)
[40]   Filtration combustion of hydrogen-air, propane-air, and methane-air mixtures in inert porous media [J].
N. A. Kakutkina ;
A. A. Korzhavin ;
M. Mbarawa .
Combustion, Explosion and Shock Waves, 2006, 42 :372-383