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Oxidation Of Acetylene-ethanol Mixtures And Their Interaction with No

机译:乙炔-乙醇混合物的氧化及其与NO的相互作用

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摘要

An experimental and theoretical study of the oxidation of acetylene-ethanol mixtures in the absence and presence of NO has been carried out. The experiments were conducted in an isothermal quartz flow reactor at atmospheric pressure in the 775-1375 K temperature range. The influence of the temperature, stoichiometry (by varying the O_2 concentration for given C_2H_2 and C_2H_5OH initial concentrations), presence of different amounts of ethanol added to acetylene, and presence of NO on the concentrations of C_2H_2, C_2H_5OH, CO, CO_2, NO, and HCN has been analyzed. The gas-phase kinetic mechanism used for calculations was that developed by Alzueta et al. (Alzueta, M. U.; Borruey, M.; Callejas, A.; Millera, A.; Bilbao, R. Combust. Flame 2008, 152, 377-386) for acetylene conversion, on the basis of a previous work by Skj0th-Rasmussen et al. (Skjoth-Rasmussen, M. S.; Glarborg, P.; Ostberg, M.; Johannessen, J. T.; Livbjerg, H.; Jensen, A. D.; Christensen, T. S. Combust. Flame 2004, 136, 91-128), with reactions added from the ethanol oxidation mechanism of Alzueta and Hernandez (Alzueta, M. U.; Hernandez, J. M. Energy Fuels 2002,16, 166-171), as well as reactions from the mechanism developed by Glarborg et al. (Glarborg, P.; Alzueta, M. U.; Dam-Johansen, K.; Miller, J. A. Combust. Flame 1998, 775, 1-27) to describe the interactions among C_1/C_2 hydrocarbons and nitric oxide. The experimental results show that the ethanol presence significantly modifies the acetylene conversion regime, inhibiting soot formation. An increase of the oxygen level and temperature favor acetylene conversion. The presence of NO results in some differences in relation to the oxidation regimes of the acetylene-ethanol blends. The reduction of NO by the mixture is favored at the highest temperatures of the considered range, above 1275 K, and for moderately fuel-rich conditions (λ = 0.7). In general, the kinetic model satisfactorily simulates the experimental trends. Model predictions indicate that, under the conditions of this study, HCCO + NO is the most important reaction in reducing NO. Moreover, the ethanol presence slightly inhibits the NO reduction in relation to the oxidation of pure acetylene.
机译:已经进行了在不存在和存在NO的情况下乙炔-乙醇混合物的氧化的实验和理论研究。实验在等温石英流动反应器中在大气压下在775-1375 K的温度范围内进行。温度,化学计量(通过改变给定C_2H_2和C_2H_5OH的初始浓度下O_2的浓度),向乙炔中添加不同量乙醇的存在以及NO的存在对C_2H_2,C_2H_5OH,CO,CO_2,NO,并且已经对HCN进行了分析。用于计算的气相动力学机理是由Alzueta等人开发的。 (Skj0th-Rasmussen的先前工作)(Alzueta,MU; Borruey,M .; Callejas,A .; Millera,A .; Bilbao,R.Combust.Flame 2008,152,377-386)进行乙炔转化。等。 (Skjoth-Rasmussen,MS; Glarborg,P .; Ostberg,M .; Johannessen,JT; Livbjerg,H .; Jensen,AD; Christensen,TS Combust.Flame 2004,136,91-128),并从Alzueta和Hernandez的乙醇氧化机理(Alzueta,MU; Hernandez,JM Energy Fuels 2002,16,166-171),以及Glarborg等开发的机理的反应。 (Glarborg,P。; Alzueta,M.U。; Dam-Johansen,K。; Miller,J.A.Combust.Flame 1998,775,1-27)描述了C_1 / C_2烃与一氧化氮之间的相互作用。实验结果表明,乙醇的存在会显着改变乙炔转化机制,从而抑制烟灰的形成。氧水平和温度的升高有利于乙炔转化。 NO的存在导致与乙炔-乙醇共混物的氧化方式有关的一些差异。在考虑的范围内的最高温度(高于1275 K)和适度燃料丰富的条件下(λ= 0.7),有利于混合物还原NO。通常,动力学模型可以令人满意地模拟实验趋势。模型预测表明,在本研究条件下,HCCO + NO是还原NO中最重要的反应。此外,相对于纯乙炔的氧化,乙醇的存在会稍微抑制NO的还原。

著录项

  • 来源
    《Energy & fuels》 |2008年第6期|p.3814-3823|共10页
  • 作者单位

    Aragon Institute of Engineering Research, Department of Chemical and Environmental Engineering, C/Maria de Luna 3 (Torres Quevedo Building), University of Zaragoza, Zaragoza 50018, Spain;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 TK-;
  • 关键词

  • 入库时间 2022-08-18 00:42:37

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