首页> 外文期刊>International journal of hydrogen energy >Effects of equivalence ratio, H-2 and CO2 addition on the heat release characteristics of premixed laminar biogas-hydrogen flame
【24h】

Effects of equivalence ratio, H-2 and CO2 addition on the heat release characteristics of premixed laminar biogas-hydrogen flame

机译:当量比,H-2和CO2添加量对层流沼气-氢气混合火焰放热特性的影响

获取原文
获取原文并翻译 | 示例
       

摘要

The effects of equivalence ratio, H-2 and CO2 on the heat release characteristics of the premixed laminar biogas-hydrogen flame were investigated with the chemical kinetics simulation using the detailed chemical mechanism. The heat release rates, reaction rates and mole fractions of species of the BG50, BG75 and methane flames were calculated at different hydrogen additions (10%-50%) and equivalence ratios (0.8, 1.0, 1.2). The contributions of major elementary reactions were obtained based on the simulation data. The results show that H + O-2 = OH + H is the major endothermic reaction for biogas-hydrogen flame, while H + CH3(+M) = CH4(+M), O + CH3 = H + CH2O, OH + H-2 = H + H2O, O + CH3 double right arrow H + H-2 + CO and OH + CO = H + CO2 can always play significant roles in heat release. O + CH3 = H + CH2O and O + CH3 double right arrow H + H-2 + CO can consistently account for a relatively stable proportion of total heat release, meaning that the O x CH3 product can be an indicator to predict the total heat release. Due to the variation of O-2 concentration, the changes of major exothermic reactions are predominated by the equivalence ratio. Though the global heat release rate is maximum at stoichiometric condition, there exists more heat release in the high temperature zone at rich condition due to the exothermic recombination of radicals. The total heat release can be increased evidently with the H-2 addition which can induce the early heat release and enhance the peak heat release rate, and the significances of OH + H-2 = H + H2O and H + OH + M = H2O + M on the total heat release are enhanced most evidently. CO2 exerts influences on heat release characteristics through its dilution/thermal effect and chemical effect. As CO2 is introduced, the decreasing trend of the global heat release rate is dominated by the dilution/thermal effect, and H + CH3(+M) = CH4(+M), OH + H-2 = H + H2O and 2CH(3)(+M) = C2H6(+M) become increasingly important on the heat release. Copyright (C) 2016, Hydrogen Energy Publications, LLC. Published by Elsevier Ltd. All rights reserved.
机译:利用详细的化学机理,通过化学动力学模拟研究了当量比,H-2和CO2对层流沼气-氢气混合气体放热特性的影响。在不同的氢气添加量(10%-50%)和当量比(0.8、1.0、1.2)下,计算出BG50,BG75和甲烷火焰的放热速率,反应速率和物质的摩尔分数。根据模拟数据获得了主要元素反应的贡献。结果表明,H + O-2 = OH + H是沼气-氢气火焰的主要吸热反应,而H + CH3(+ M)= CH4(+ M),O + CH3 = H + CH2O,OH + H -2 = H + H2O,O + CH3双向右箭头H + H-2 + CO和OH + CO = H + CO2始终在放热中起重要作用。 O + CH3 = H + CH2O和O + CH3双右箭头H + H-2 + CO可以始终占总热量释放的相对稳定比例,这意味着O x CH3产物可以作为预测总热量的指标释放。由于O-2浓度的变化,主要的放热反应的变化以当量比为主。尽管总的放热率在化学计量条件下最大,但由于自由基的放热重组,在富集条件下的高温区存在更多的放热。加入H-2可以明显提高总放热量,可以诱导早期放热并提高峰值放热率,OH + H-2 = H + H2O和H + OH + M = H2O的意义总热量释放的+ M最明显地增加。 CO2通过其稀释/热效应和化学效应对放热特性产生影响。随着二氧化碳的引入,全球放热率的下降趋势主要由稀释/热效应决定,H + CH3(+ M)= CH4(+ M),OH + H-2 = H + H2O和2CH( 3)(+ M)= C2H6(+ M)在放热方面变得越来越重要。 Hydrogen Energy Publications,LLC(C)2016版权所有。由Elsevier Ltd.出版。保留所有权利。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号