期刊文献+

Fe_2O_3控制再燃脱硝中间产物HCN 被引量:19

HCN control by Fe_2O_3 during re-burning of waste tires
原文传递
导出
摘要 再燃脱硝过程的中间产物HCN在燃尽过程的二次氧化对最终NO的脱除效率影响很大,有效控制HCN的转化对提高再燃脱硝的效率具有重要意义.以天然气和150目废轮胎粉为再燃燃料,利用模拟烟气在陶瓷管反应器中对典型条件下的再燃脱硝特性和中间产物HCN/NH3的生成特性进行了实验研究.结果表明在典型的再燃条件下,随着再燃区空气系数的增大(再燃燃料的给料量减少),HCN的生成量逐渐下降,再燃过程生成的HCN的浓度远大于NH3,表明HCN是主要的中间产物.进一步对HCN在不同温度下的分解特性以及在Fe2O3的催化作用下的还原特性进行了实验测试,发现Fe2O3能够有效地减少再燃过程HCN的生成,水蒸气和温度对Fe2O3的催化作用具有一定的影响.在再燃温度为1250℃,燃尽温度为1150℃,进口NO体积浓度为0.05%,烟气中水蒸气体积比为6.35%以及再燃段和燃尽段的空气系数分别为0.9和1.2条件下,当Fe的摩尔浓度为4000×10-6时,废轮胎的再燃+燃尽脱硝效率达到88%. The re-oxidation of HCN during burnout strongly influences the final NO reduction efficiency by reburning.Effective control of HCN conversion is important to improve NO reduction efficiency.Natural gas and waste tire powders of 150-mesh were used as reburning fuel and experimental investigation of the reburning performance and HCN/NH3 formation under typical reburning conditions were carried out with simulated flue gases in a ceramic reactor.Results showed that the amount of HCN decreased as the air/fuel ratio in the reburning zone increased.The HCN concentration was much more than that of NH3 during reburning,which confirmed that HCN was the major intermediate product.Further experiments were conducted on the thermal decomposition of HCN and reduction of HCN catalysed by Fe2O3.Fe2O3 was effective in reducing the formation of HCN.Water vapor and temperature had an influence on Fe2O3 catalysis effectiveness.The NO reduction efficiency of 88% was achieved at a reburning temperature of 1250 ℃,burnout temperature of 1150 ℃,air/fuel ratio of reburning 0.9,air/fuel ratio of burnout zone 1.2,molar concentration of Fe 4000×10-6 and volume fraction of water vapor in simulated flue gases 6.35%.
出处 《环境科学学报》 CAS CSCD 北大核心 2011年第6期1181-1186,共6页 Acta Scientiae Circumstantiae
基金 东华大学中央高校基本科研业务费专项资金(No.20091304-4-01) 上海市自然科学基金(No.11ZR1401000)~~
关键词 氮氧化物(NOx) 再燃脱硝 HCN/NH3 FE2O3 nitrogen oxides reburning HCN/NH3 Fe2O3
  • 相关文献

参考文献23

  • 1Bilbao R, Alzueta M U, Millera A, et al. 1995. Simplified kinetic model of the chemistry in the reburning zone [ J ]. Ind Eng Chem Res, 34:4540-4548. 被引量:1
  • 2Chen W Y, Gathitu B B. 2006. Design of mixed fuel for heterogeneous reburning[J]. Fuel, 85:178t-1793. 被引量:1
  • 3Chen W Y, Ma L. 1996. Effect of heterogeneous mechanisms during reburning of nitrogen oxide[ J ]. AIChE Journal, 42 (7) : 1968-1976. 被引量:1
  • 4Chen W Y, Tang L. 2001. Variables, Kinetics and mechanisms of heterogeneous reburning [J]. AIChE Journal, 47 (12) : 2781-2797. 被引量:1
  • 5Glarborg P, Kristensen P G, Dam-Johansen K. 2000. Nitric oxide reduction by non-hydrocarbon fuels, hnplications for reburning with gasification gases[ J].Energy and Fuels, 14 : 828-838. 被引量:1
  • 6Gradon B, Lasek J. 2010. Investigations of the reduction of NO to N2 by reaction with Fe[ J]. Fuel, 89:3505-3509. 被引量:1
  • 7Harding N S, Adams B R. 2000. Biomass as a reburning fuel: a specialized cofiring application[ J]. Biomass and Bioenergy, 19:429- 445. 被引量:1
  • 8Hayhurst A N, Ninomiya Y. 1998. Kinetics of the conversion of NO to N2 during the oxidation of iron particles by NO 1. a hot fluidised bed [ J]. Chemical Engineering Science, 53 ( 8 ) : 1481 - 1489. 被引量:1
  • 9金晶,张忠孝,李瑞阳.超细煤粉再燃的模拟计算与试验研究[J].中国电机工程学报,2004,24(10):215-218. 被引量:31
  • 10Johnson D K, Engelhardt D A, Harvilla J, et al. 1999. Reburning technologies for the control of nitrogen oxides emissions from coal- fired boilers[ R]. Topical Report No. 14, Washington, DC: United States Dept of Energy. 1-32. 被引量:1

二级参考文献24

  • 1Mereb, B. J and Wendt,J. O. L.. Reburning mechanisms in a pulverized coal combustor, in Twenty-Third symposiom (international) on Combustion[C]. The Combustion Institute,Pittsburgh,PA,pp. 1273 - 1279(1990). 被引量:1
  • 2Chen Wei-Yin, Liu Tang. Variables, kinetics and mechanisms of heterogeneous reburning[J]. AIChE Journal, 2001,47( 12): 2781-2797. 被引量:1
  • 3Tree D R, Calark A W. Advanced reburning measurements of temperature and species in a pulverized coal flame[J]. Fuel. 2000,79: 1687-1695. 被引量:1
  • 4Maly, Peter, M, Zamansky, et al. Alternative fuel reburning[J]. Fuel,1999,78(3): 327-334. 被引量:1
  • 5Zhong B J, Shi W W, Fu W B. Effect of catalysts on the NO reduction during the reburning with coal chars as the fuel. combust[J]. Sci. and Tech.,2001,164: 239-251. 被引量:1
  • 6Nakamura M, Takashi K, Muwahara M, et al. Demonstration test and practical studies on combustion technologies of micro-pulverized coal [A].International Conference on Power Engineering[C]., Tokyo, 1997, 2: 453-458. 被引量:1
  • 7Smoot L D and Smith P J. NOx Pollutant formation in a turbulent coal system[A]. In Coal Combustion and Gasification[C]. Plenum, NY,1985, 373-378. 被引量:1
  • 8Fortsch Dieter, Kluger Frank, Schnell we, et al. A kinetic model for the prediction of NO emission from staged combustion of pulverized coal[A]. In 27th Symp. (Int′l.) on Combustion[C]. Japan, Tokyo, 1998,3037 -3044. 被引量:1
  • 9Smoot L D, Hill S C, Xu H. NOx control through reburning [J].Progress in Energy and Combustion Science, 1998, 24(5): 385-408. 被引量:1
  • 10Turns S R. An Introduction to Combustion[M]. New York,McGraw-Hill Inc, 1996. 被引量:1

共引文献127

同被引文献296

引证文献19

二级引证文献85

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部