Visualization of Flame Propagation and Quenching of Methane/Air Mixture in a cubic enclosure with Perforated Plates: Experimental Study

被引:2
作者
Younesian, Hadi [1 ]
Nazari, Mohsen [1 ,2 ]
Shahmardan, Mohammad Mohsen [1 ]
机构
[1] Shahrood Univ Technol, Fac Mech Engn, Shahrood, Iran
[2] Shahrood Univ Technol, Visualizat & Tracking Lab, Shahrood, Iran
关键词
Cubic enclosure; methane; air mixtures; perforated plates; flame propagation; flame quenching; Froude number; ACCELERATION; DETONATION; ATTENUATION; SIMULATION; EXPLOSION; POSITION; CHAMBER;
D O I
10.1080/00102202.2022.2032684
中图分类号
O414.1 [热力学];
学科分类号
摘要
Flame Propagation in closed chambers is one of the most important process in the industry which may lead to a severe damage in the systems. The purpose of this study is to observe the flame propagation process of methane/air mixture and to investigate the flame velocity using perforated plates in a cubic enclosure. The experiments are performed at atmospheric pressure. The flame front of the methane/air mixture is visualized by using a high speed camera. In this study, perforated plates are used with hole sizes of 5 mm, 4 mm, 3 mm and 2 mm. by increasing the hole size of the perforated plates, the velocity of the flame increases after hitting the perforated plates. Therefore, in the case of a hole diameter of 5 mm in the perforated plate, the maximum flame tip speed (i.e. 12 m/s) is recorded. By increasing the hole diameter (between 2 mm to 5 mm), the absolute pressure generated by combustioninside the chamber is augmented up to 2.97 (bara). In addition to considering the effect of the hole diameter of perforated plates, the effects of the position of perforated barriers (quenching distance) on flame progress, flame velocity, combustion chamber pressure and flame quenchingare investigated. Also, flame quenching patterns (head on and sidewall) arevisualized and the effects of the position of obstacles from the spark plug on changing the flame quenching patterns are analyzed. By visualization of the quenching process of premixed flame in the presence of perforated plates, both head-on quenching, and sidewall quenching are analyzed by using nondimensional groups. According to the results, by increasing distance of the perforated obstacle from spark, the flame quenching pattern changes from head-on mode to side-wall mode. The quenching mode, in this condition, is related to the flame Reynolds number.
引用
收藏
页码:2676 / 2695
页数:20
相关论文
共 50 条
[31]   Experimental study on CO2/CF3I suppression of methane-air explosion and flame propagation [J].
Luo, Zhenmin ;
Nan, Fan ;
Cheng, Fang-ming ;
Xiao, Yang ;
Wang, Tao ;
Shao, Jie ;
Wang, Chenchen .
JOURNAL OF LOSS PREVENTION IN THE PROCESS INDUSTRIES, 2023, 83
[32]   Experimental study on characteristics of flame propagation and pressure development evolution during methane-air explosion in different pipeline structures [J].
Si, Rongjun ;
Zhang, Leilin ;
Niu, Yihui ;
Wang, Lei ;
Huang, Zichao ;
Jia, Quansheng ;
Li, Ziran .
FRONTIERS IN EARTH SCIENCE, 2024, 12
[33]   Experimental and numerical studies of premixed methane-hydrogen/air mixtures flame propagation in closed duct [J].
Rao, Guoning ;
Zhang, Yun ;
Cao, Weiguo ;
Zhao, Mengke ;
Gao, Wei ;
Liang, Hao ;
Tan, Yinxing .
CANADIAN JOURNAL OF CHEMICAL ENGINEERING, 2018, 96 (12) :2684-2689
[34]   Study on the Characteristics of Laminar Premixed Flame and NOx Emission in Methane-Hydrogen-Air Mixture [J].
Niu Fang ;
Liu Qingming ;
He Xueqiu ;
Bat Chunhua .
PROGRESS IN SAFETY SCIENCE AND TECHNOLOGY, VOL. VIII, PTS A AND B, 2010, 8 :1334-1339
[35]   Experimental study and three-dimensional simulation of premixed hydrogen/air flame propagation in a closed duct [J].
Xiao, Huahua ;
Shen, Xiaobo ;
Sun, Jinhua .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2012, 37 (15) :11466-11473
[36]   Experimental investigation on initiation mechanism, overpressure, and flame propagation characteristics of methane-air mixtures explosion induced by hexogen in a closed pipeline [J].
Yu, Runze ;
Qiu, Yanyu ;
Xing, Huadao ;
Xu, Guangan ;
Wang, Mingyang ;
Li, Bin ;
Xie, Lifeng .
ENERGY, 2024, 288
[37]   Experimental and numerical study of laminar premixed dimethyl ether/methane-air flame [J].
Yu, Huibin ;
Hu, Erjiang ;
Cheng, Yu ;
Zhang, Xinyi ;
Huang, Zuohua .
FUEL, 2014, 136 :37-45
[38]   Experimental study of premixed syngas/air flame propagation in a half-open duct [J].
Yu, Minggao ;
Yang, Xufeng ;
Zheng, Kai ;
Zheng, Ligang ;
Wan, Shaojie .
FUEL, 2018, 225 :192-202
[39]   Experimental and chemical kinetic study on the flame propagation characteristics of ammonia/hydrogen/air mixtures [J].
Chen, Xu ;
Liu, Qingming ;
Zhao, Wenbin ;
Li, Runzhi ;
Zhang, Qi ;
Mou, Zonglei .
FUEL, 2023, 334
[40]   Numerical Study on Premixed Methane-Air Flame Propagation in a Confined Vessel at Low Initial Temperature [J].
Cui, Gan ;
Li, Zili ;
Li, Hongbo ;
Bi, Zhenxiao ;
Wang, Shun .
ENERGY & FUELS, 2018, 32 (02) :2465-2478