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Application of response surface methodology to assess the combined effect of operating variables on high-pressure coal gasification for H_2-rich gas production

机译:应用响应面方法评估操作变量对富H_2气生产中高压煤气化的综合影响

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摘要

Coal gasification was performed by means of a high-pressure fixed bed gasifier fitted with a solids feeding system in continuous mode, using oxygen and steam as gasifying agents. The main aim of the paper was to assess the combined effects of the operating variables (temperature, oxygen and steam concentrations) on high-pressure coal gasification. To this end a face centered central composite design (FCCCD) based on response surface methodology (RSM) was used. The response variables studied were: H_2, CO and syngas production, H_2/CO ratio, cold gas efficiency (η), and carbon conversion (X). The study was carried out at temperatures of 900,950 and 1000 ℃, using oxygen concentrations of 5,10 and 15 vol.%, and steam concentrations of 25,40 and 55 vol.%. The gasification temperature was found to be the most influential variable, with high temperatures leading to an increase in all the response variables studied. An increase in the oxygen content of the gasifying agent led to a decrease in H_2 and CO production, and cold gas efficiency, whilst carbon conversion was favoured. An increase in steam concentration, on the other hand, favoured the production of H_2 and syngas production, whereas CO production underwent a reduction; cold gas efficiency and carbon conversion were observed to increase. Response surface methodology (RSM) revealed the effects of interaction between the operating variables, which would not have been identified by the traditional "one-factor-at-a-time" method. The models developed successfully fitted the experimental results for all the response variables studied.
机译:借助于装有固体进料系统的高压固定床气化炉,以氧气和蒸汽作为气化剂,以连续模式进行煤气化。本文的主要目的是评估操作变量(温度,氧气和蒸汽浓度)对高压煤气化的综合影响。为此,使用了基于响应表面方法(RSM)的面心中央复合设计(FCCCD)。研究的响应变量为:H_2,CO和合成气产量,H_2 / CO比,冷气效率(η)和碳转化率(X)。该研究是在900,950和1000℃的温度下进行的,其中氧气浓度为5,10和15 vol。%,蒸汽浓度为25,40和55 vol。%。发现气化温度是影响最大的变量,高温导致研究的所有响应变量增加。气化剂中氧含量的增加导致H_2和CO的产生以及冷气效率的降低,同时有利于碳转化。另一方面,蒸汽浓度的增加有利于H_2的产生和合成气的产生,而CO的产生则减少。观察到冷气效率和碳转化率增加。响应面方法(RSM)揭示了操作变量之间相互作用的影响,而传统的“一次一因素”方法无法识别这些变量之间的相互作用。开发的模型成功地拟合了所研究的所有响应变量的实验结果。

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  • 来源
    《International journal of hydrogen energy》 |2010年第3期|1191-1204|共14页
  • 作者单位

    Instituto National del Carbon, CSIC, Apartado 73, 33080 Oviedo, Spain;

    Instituto National del Carbon, CSIC, Apartado 73, 33080 Oviedo, Spain;

    Instituto National del Carbon, CSIC, Apartado 73, 33080 Oviedo, Spain;

    Instituto National del Carbon, CSIC, Apartado 73, 33080 Oviedo, Spain;

    Instituto National del Carbon, CSIC, Apartado 73, 33080 Oviedo, Spain;

    Instituto National del Carbon, CSIC, Apartado 73, 33080 Oviedo, Spain;

    Instituto National del Carbon, CSIC, Apartado 73, 33080 Oviedo, 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
  • 关键词

    hydrogen production; high-pressure gasification; coal; response surface methodology;

    机译:制氢高压气化煤;响应面法;

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