化工学报 ›› 2019, Vol. 70 ›› Issue (7): 2811-2818.DOI: 10.11949/0438-1157.20190070
• 过程安全 • 上一篇
时高龙1(),温小萍1(),王发辉1,裴蓓2,潘荣锟2,刘志超1,陈卫1
收稿日期:
2019-01-22
修回日期:
2019-04-19
出版日期:
2019-07-05
发布日期:
2019-07-05
通讯作者:
温小萍
作者简介:
时高龙(1993—),男,硕士研究生,<email>1013402675@qq.com</email>
基金资助:
Gaolong SHI1(),Xiaoping WEN1(),Fahui WANG1,Bei PEI2,Rongkun PAN2,Zhichao LIU1,Wei CHEN1
Received:
2019-01-22
Revised:
2019-04-19
Online:
2019-07-05
Published:
2019-07-05
Contact:
Xiaoping WEN
摘要:
为研究预混气体爆炸火焰和压力的耦合振荡特性,自行搭建了尺寸为80 mm×80 mm×1000 mm透明有机玻璃爆炸管道实验平台。实验结果表明,在氧气浓度E和泄爆面积比S变化的条件下,会对CH4/O2/N2预混气体爆炸火焰与压力的耦合振荡产生影响。当氧气浓度E从0.21到0.40变化时,火焰传播时间逐渐缩短,火焰结构发生动态演变,火焰后期的振荡现象愈加明显,同时测到的压力曲线在后期也存在振荡增强现象;当泄爆面积比S从0.125到1.000变化时,E=0.21工况下S=0.125和S=0.250两个工况与其他工况的压力曲线有所不同,出现了一个更高的压力峰值,E=0.30工况下S=0.125也出现了新的压力峰值,E=0.30和E=0.40两种工况的压力峰值都逐渐减小,压力后期的振荡幅值与泄爆面积比有关。
中图分类号:
时高龙, 温小萍, 王发辉, 裴蓓, 潘荣锟, 刘志超, 陈卫. 预混气体爆炸火焰与压力的耦合振荡特性[J]. 化工学报, 2019, 70(7): 2811-2818.
Gaolong SHI, Xiaoping WEN, Fahui WANG, Bei PEI, Rongkun PAN, Zhichao LIU, Wei CHEN. Coupling oscillation characteristics of premixed gas explosion flame and pressure[J]. CIESC Journal, 2019, 70(7): 2811-2818.
工况 | E | CH4 content/%(vol) | O2 content/%(vol) | N2 content/%(vol) |
---|---|---|---|---|
1 | 0.21 | 9.50 | 19.00 | 71.50 |
2 | 0.30 | 13.70 | 27.40 | 58.90 |
3 | 0.40 | 16.70 | 33.30 | 50.00 |
表1 实验条件
Table 1 Experimental conditions
工况 | E | CH4 content/%(vol) | O2 content/%(vol) | N2 content/%(vol) |
---|---|---|---|---|
1 | 0.21 | 9.50 | 19.00 | 71.50 |
2 | 0.30 | 13.70 | 27.40 | 58.90 |
3 | 0.40 | 16.70 | 33.30 | 50.00 |
参数 | E=0.21 | E=0.30 | E=0.40 |
---|---|---|---|
UL/(m/s) | 0.414 | 0.981 | 1.367 |
R/cm | 5.65 | 5.65 | 5.65 |
to/ms | 0 | 0 | 0 |
tsphere/ms | 10.92—16.37 | 4.61—6.91 | 3.31—4.96 |
twall/ms | 32.75—38.21 | 13.82—16.12 | 9.92—11.57 |
ttulip/ms | 42.23—45.76 | 17.85—20.15 | 12.81—14.46 |
表2 不同氧气浓度条件下火焰传播主要参数的计算值
Table 2 Calculated values of main parameters of flame propagation under different oxygen concentrations
参数 | E=0.21 | E=0.30 | E=0.40 |
---|---|---|---|
UL/(m/s) | 0.414 | 0.981 | 1.367 |
R/cm | 5.65 | 5.65 | 5.65 |
to/ms | 0 | 0 | 0 |
tsphere/ms | 10.92—16.37 | 4.61—6.91 | 3.31—4.96 |
twall/ms | 32.75—38.21 | 13.82—16.12 | 9.92—11.57 |
ttulip/ms | 42.23—45.76 | 17.85—20.15 | 12.81—14.46 |
工况 | S | T1/ms | A1/kPa | T2/ms | A2/kPa |
---|---|---|---|---|---|
1 | 1.000 | 1.78×10-3 | 3.00 | 2.89×10-3 | 25.00 |
2 | 0.750 | 2.83×10-3 | 2.00 | 1.71×10-3 | 5.00 |
3 | 0.500 | 1.67×10-3 | 1.00 | 1.73×10-3 | 2.50 |
4 | 0.250 | 1.77×10-3 | 0.80 | 1.1×10-3 | 2.00 |
5 | 0.125 | 1.67×10-3 | 0.20 | 1.25×10-3 | 0.25 |
表3 压力振荡参数
Table 3 Pressure oscillation parameters
工况 | S | T1/ms | A1/kPa | T2/ms | A2/kPa |
---|---|---|---|---|---|
1 | 1.000 | 1.78×10-3 | 3.00 | 2.89×10-3 | 25.00 |
2 | 0.750 | 2.83×10-3 | 2.00 | 1.71×10-3 | 5.00 |
3 | 0.500 | 1.67×10-3 | 1.00 | 1.73×10-3 | 2.50 |
4 | 0.250 | 1.77×10-3 | 0.80 | 1.1×10-3 | 2.00 |
5 | 0.125 | 1.67×10-3 | 0.20 | 1.25×10-3 | 0.25 |
1 | CiccarelliG, DorofeevS B. Flame acceleration and transition to detonation[J]. Progress in Energy and Combustion Science, 2008, 34(4): 499-550. |
2 | 郑立刚, 吕先舒, 郑凯, 等. 点火源位置对甲烷-空气爆燃超压特征的影响[J]. 化工学报, 2015, 66(7): 2749-2756. |
ZhengL G, LyuX S, ZhengK, et al. Influence of ignition position on overpressure of premixed methane-air deflagration[J]. CIESC Journal, 2015, 66(7): 2749-2756. | |
3 | PhylaktouH, AndrewsG E. Gas explosions in long closed vessels [J]. Combustion Science and Technology, 1991, 77(1/2/3): 27-39. |
4 | 沈伟, 杜扬. 受限空间尺度对可燃气体爆燃波发展过程的影响[J]. 实验力学, 2006, 21(2): 122-128. |
ShenW, DuY. Effect of scale on deflagration of fuel-air mixture in confined space[J]. Journal of Experimental Mechanics, 2006, 21(2): 122-128. | |
5 | ZhangQ, LiW, RumeiT, et al. Combustion parameters of gaseous epoxypropane/air in a confined vessel[J]. Fuel, 2013, 105(2): 512-517. |
6 | XiaoH H, SunJ H, ChenP. Experimental and numerical study of premixed hydrogen/air flame propagating in a combustion chamber[J]. Journal of Hazardous Materials, 2014, 268: 132-139. |
7 | XiaoH H, DuanQ L, JiangL, et al. Effects of ignition location on premixed hydrogen/air flame propagation in a closed combustion tube [J]. International Journal of Hydrogen Energy, 2014, 39(16): 8557-8563. |
8 | 林柏泉. 瓦斯爆炸动力学特征参数的测定及其分析[J]. 煤炭学报, 2002, 27(2): 164-167. |
LinB Q. The measurement and analysis of dynamics feature parameter in gas explosion[J]. Journal of China Coal Society, 2002, 27(2) : 164-167. | |
9 | 朱传杰, 林柏泉, 江丙友, 等. 瓦斯爆炸在封闭管道内冲击振荡特征的数值模拟[J]. 振动与冲击, 2012, 31(16): 8-12. |
ZhuC J, LinB Q, JiangB Y, et al. Numerical simulation on oscillation and shock of gas explosion in a closed end pipe[J]. Journal of Vibration and Shock, 2012, 31(16): 8-12. | |
10 | 朱传杰, 林柏泉, 江丙友, 等. 受限空间内爆燃波瞬态流速与超压的耦合关系[J]. 燃烧科学与技术, 2012, 18(4): 326-330. |
ZhuC J, LinB Q, JiangB Y, et al. Coupled relationship between gas velocity and peak overpressure of deflagration wave in confined space[J]. Journal of Combustion Science and Technology, 2012, 18(4): 326-330. | |
11 | KerampranS, DesbordesD, VeyssiÈReB. Study of the mechanisms of flame acceleration in a tube of constant cross section [J]. Combustion Science and Technology, 2000, 158(1): 71-91. |
12 | BenedettoA D, CammarotaF, SarliV D , et al. Combustion-induced rapid-phase transition (cRPT) in CH4/CO2/O2-enriched mixtures [J]. Energy and Fuels, 2012, 26 (8): 4799–4803. |
13 | BenedettoA D, CammarotaF, SarliV D, et al. Direction of pressure wave propagation during combustion-induced rapid phase transition[J]. Journal of Loss Prevention in the Process Industries, 2016, 40: 524-528. |
14 | BenedettoA D, CammarotaF, SarliV D, et al. Effect of diluents on rapid phase transition of water induced by combustion[J]. AIChE Journal, 2012, 58(9): 2810-2819. |
15 | BascoA, CammarotaF, SarliV D, et al. Theoretical analysis of anomalous explosion behavior for H2/CO/O2/N2 and CH4/O2/N2/CO2 mixtures in the light of combustion-induced rapid phase transition[J]. International Journal of Hydrogen Energy, 2015, 40(25): 8239-8247. |
16 | ThomasG O. Flame acceleration and the development of detonation in fuel-oxygen mixtures at elevated temperatures and pressures[J]. Journal of Hazardous Materials, 2009, 163(2): 783-794. |
17 | SchildbergH P. The course of the explosions of combustible/O2/N2 mixtures in vessel-like geometry[J]. Forschung Im Ingenieurwesen, 2009, 73(1): 33-65. |
18 | ClanetC, SearbyG. On the “tulip flame” phenomenon [J]. Combustion and Flame, 1996, 105(1/2): 225-238. |
19 | 曾令可, 邓伟强, 刘艳春, 等. 富氧燃烧技术在陶瓷窑炉中的应用分析[J]. 陶瓷学报, 2007, 28(2): 123-128. |
ZengL K, DengW Q, LiuY C, et al. Application of oxygen-enriched combustion technology in ceramic kiln [J]. Journal of Ceramics, 2007, 28(2): 123-128. | |
20 | PonizyB, ClaverieA, VeyssièreB. Tulip flame — the mechanism of flame front inversion[J]. Combustion and Flame, 2014, 161(12): 3051-3062. |
21 | 贾迎梅, 刘贞堂, 王从银, 等. 瓦斯爆炸气体成分实验研究[J]. 煤炭技术, 2009, 28(12): 78-81. |
JiaY M, LiuZ T, WangC Y, et al. Experimental study on gas composition after gas explosion[J]. Coal Technology, 2009, 28(12): 78-81. | |
22 | 温小萍, 武建军, 解茂昭. 瓦斯爆炸火焰结构与压力波的耦合规律[J]. 化工学报, 2013, 64(10): 3871-3877. |
Wen X P, Wu J J, Xie M Z, Coupled relationship between flame structure and pressure wave of gas explosion[J]. CIESC Journal, 2013, 64(10): 3871-3877. | |
23 | WenX P, YuM G, LiuZ C, et al. Large eddy simulation of methane-air deflagration in an obstructed chamber using different combustion models[J]. Journal of Loss Prevention in the Process Industries, 2012, 25(4): 730-738. |
24 | ZhengK, YuM G, ZhengL G, et al. Experimental study on premixed flame propagation of hydrogen/methane/air deflagration in closed ducts[J]. International Journal of Hydrogen Energy, 2017, 42(8): 5426-5438. |
25 | YuM G, ZhengK, ZhengL G, et al. Scale effects on premixed flame propagation of hydrogen/methane deflagration[J]. International Journal of Hydrogen Energy, 2015, 40(38): 13121-13133. |
26 | ZhengK, YuM G, LiangY P, et al. Large eddy simulation of premixed hydrogen/methane/air flame propagation in a closed duct[J]. International Journal of Hydrogen Energy, 2018, 43(7): 3871-3884. |
27 | ZhengK, YuM G, ZhengL G, et al. Effects of hydrogen addition on methane-air deflagration in obstructed chamber[J]. Experimental Thermal and Fluid Science, 2017, 80: 270-280. |
28 | ZhengK, YuM G, ZhengL G, et al. Comparative study of the propagation of methane/air and hydrogen/air flames in a duct using large eddy simulation[J]. Process Safety and Environmental Protection, 2018, 120: 45-56. |
29 | BenedettoA D, CammarotaF, SarliV D. Anomalous behavior during explosions of CH4 in oxygen-enriched air[J]. Combustion and Flame, 2011, 158(11): 2214-2219. |
30 | 任少峰, 陈先锋, 王玉杰, 等. 无约束泄爆对甲烷/空气火焰传播特性影响的试验研究[J]. 中国安全科学学报, 2013, 23(4): 84-88. |
RenS F, ChenX F, WangY J, et al. Experimental study on effect of unconstrained explosion venting on methane-air flame propagation characteristics[J]. China Safety Science Journal, 2013, 23(4): 84-88. | |
31 | 曹勇, 郭进, 胡坤伦, 等. 点火位置对氢气-空气预混气体泄爆过程的影响[J]. 爆炸与冲击, 2016, 36(6): 847-852. |
CaoY, GuoJ, HuK L, et al. Effect of ignition locations on vented explosion of premixed hydrogen-air mixtures[J]. Explosion and Shock Waves, 2016, 36(6): 847-852. | |
32 | 任少峰, 陈先锋, 王玉杰, 等. 泄压口比率对气体泄爆过程中的动力学行为的影响[J]. 煤炭学报, 2011, 36(5): 830-833. |
RenS F, ChenX F, WangY J, et al. Effect of pressure-orifice ratio on dynamic behavior during gas venting[J]. Journal of China Coal Society, 2011, 36(5): 830-833. |
[1] | 李珍宝, 李超, 王虎, 王绍瑞, 黎泉. MPP抑制铝镁合金粉尘爆炸微观机理研究[J]. 化工学报, 2023, 74(8): 3608-3614. |
[2] | 杨克, 贾岳, 纪虹, 邢志祥, 蒋军成. 垃圾焚烧飞灰对瓦斯爆炸压力及火焰传播的抑制作用及机理研究[J]. 化工学报, 2023, 74(8): 3597-3607. |
[3] | 郑志航, 马郡男, 闫子涵, 卢春喜. 提升管射流影响区内压力脉动特性研究[J]. 化工学报, 2023, 74(6): 2335-2350. |
[4] | 李晨曦, 刘永峰, 张璐, 刘海峰, 宋金瓯, 何旭. O2/CO2氛围下正庚烷的燃烧机理研究[J]. 化工学报, 2023, 74(5): 2157-2169. |
[5] | 王晓萱, 胡晓红, 陆雨楠, 王士勇, 凡凤仙. 旋转膜过滤器内部流动特性数值模拟[J]. 化工学报, 2023, 74(4): 1489-1498. |
[6] | 包嘉靖, 别洪飞, 王子威, 肖睿, 刘冬, 吴石亮. 正庚烷对冲扩散火焰中添加长链醚类对碳烟前体生成特性的影响[J]. 化工学报, 2023, 74(4): 1680-1692. |
[7] | 武子超, 汪志雷, 李荣业, 李可昕, 华敏, 潘旭海, 王三明, 蒋军成. 点火方式对欠膨胀氢气射流爆炸超压影响规律研究[J]. 化工学报, 2023, 74(3): 1409-1418. |
[8] | 陈晨, 杨倩, 陈云, 张睿, 刘冬. 不同氧浓度下煤挥发分燃烧的化学动力学研究[J]. 化工学报, 2022, 73(9): 4133-4146. |
[9] | 杨克, 王辰升, 纪虹, 郑凯, 邢志祥, 毕海普, 蒋军成. 聚多巴胺包覆混合粉体抑制甲烷爆炸的实验研究[J]. 化工学报, 2022, 73(9): 4245-4254. |
[10] | 廖珊珊, 张少刚, 陶骏骏, 刘家豪, 汪金辉. 竖直射流火撞击障碍管道数值模拟分析[J]. 化工学报, 2022, 73(9): 4226-4234. |
[11] | 王燕, 何佳, 杨晶晶, 林晨迪, 纪文涛. 草酸盐和碳酸氢盐抑制聚乙烯粉尘爆炸特性[J]. 化工学报, 2022, 73(9): 4207-4216. |
[12] | 王永倩, 王平, 程康, 毛晨林, 刘文锋, 尹智成, Ferrante Antonio. 氨气/甲烷贫预混旋转湍流火焰稳定性及NO生成[J]. 化工学报, 2022, 73(9): 4087-4094. |
[13] | 段文婷, 任思月, 冯霄, 王彧斐. 与换热网络热集成的精馏塔压优化[J]. 化工学报, 2022, 73(5): 2052-2059. |
[14] | 张宇伦, 陈长坤, 雷鹏. 不同可燃液体层高度下浸润多孔介质砂床组合燃烧特性实验研究[J]. 化工学报, 2022, 73(4): 1826-1833. |
[15] | 王晔, 张婉雨, 汪彬, 耑锐, 任枫, 蔡爱峰, 杨光, 吴静怡. 多孔网幕泡破压力预测模型的建立及实验验证[J]. 化工学报, 2022, 73(3): 1102-1110. |
阅读次数 | ||||||
全文 |
|
|||||
摘要 |
|
|||||