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Effects of operating factors in the coal gasification reaction

机译:操作因素对煤气化反应的影响

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摘要

The effects of operating factors on a gasification system were reviewed by comparing a computational simulation and real operation results. Notable operation conditions include a conveying gas/coal ratio of 0.44, an oxygen/ coal ratio of 0.715, a reaction temperature of 1,000 °-C, and reaction pressure of 5bar in the case of Adaro coal; based on this, the cold gas efficiency was estimated as 82.19%. At the point of the reaction temperature effect, because the cold gas efficiencies are more than 80% when the reaction temperatures are higher than 900 °-C, the gasifier inner temperature must remain over 900 °-C. At high reaction temperature such as 1,400 °C, the reaction pressure shows little effect on the cold gas efficiency. The addition of steam into the gasifier causes an endothermic reaction, and then lowers the gasifier outlet temperature. This is regarded as a positive effect that can reduce the capacity of the syngas cooler located immediately after the gasifier. The most significant factor influencing the cold gas efficiency and the gasifier outlet temperature is the O-2/coal ratio. As the O-2/coal ratio is lower, the cold gas efficiency is improved, as long as the gasifier inner temperature remains over 1,000 °C. With respect to the calorific value (based on the lower heating value, LHV) of produced gas per unit volume, as the N-2/coal ratio is increased, the calorific value per syngas unit volume is lowered. Decreasing the amount of nitrogen for transporting coal is thus a useful route to obtain higher calorific syngas. This phenomenon was also confirmed by the operation results.
机译:通过比较计算模拟和实际操作结果,回顾了操作因素对气化系统的影响。值得注意的操作条件包括:输送气体/煤的比为0.44,氧气/煤的比为0.715,反应温度为1000°C,Adaro煤为5bar;基于此,冷气效率估计为82.19%。就反应温度影响而言,由于当反应温度高于900°C时冷气效率超过80%,因此气化炉内部温度必须保持在900°C以上。在较高的反应温度(例如1400°C)下,反应压力对冷气效率的影响很小。向气化炉中添加蒸汽会引起吸热反应,然后降低气化炉出口温度。这被认为是积极的效果,可以降低位于气化炉之后的合成气冷却器的容量。影响冷气效率和气化炉出口温度的最重要因素是O-2 /煤比。随着O-2 /煤比的降低,只要气化炉内部温度保持在1000°C以上,冷气效率就会提高。关于每单位体积产生的气体的热值(基于较低的发热量LHV),随着N-2 /煤比的增加,每合成气单位体积的热值降低。因此,减少用于运输煤炭的氮的量是获得更高热量的合成气的有用途径。操作结果也证实了这一现象。

著录项

  • 来源
    《The Korean journal of chemical engineering 》 |2011年第9期| p.1851-1858| 共8页
  • 作者单位

    Power Generation Laboratory, KEPCO Research Institute (KEPRI) of Korea Electric Power Corporation (KEPCO), Daejeon 305-760, Korea;

    Power Generation Laboratory, KEPCO Research Institute (KEPRI) of Korea Electric Power Corporation (KEPCO), Daejeon 305-760, Korea;

    Power Generation Laboratory, KEPCO Research Institute (KEPRI) of Korea Electric Power Corporation (KEPCO), Daejeon 305-760, Korea;

    Power Generation Laboratory, KEPCO Research Institute (KEPRI) of Korea Electric Power Corporation (KEPCO), Daejeon 305-760, Korea;

    Plant Engineering Center, Institute for Advanced Engineering (IAE), Suwon, Gyeonggi-do 443-749, Korea;

    Power Generation Laboratory, KEPCO Research Institute (KEPRI) of Korea Electric Power Corporation (KEPCO), Daejeon 305-760, Korea;

    Power Generation Laboratory, KEPCO Research Institute (KEPRI) of Korea Electric Power Corporation (KEPCO), Daejeon 305-760, Korea;

  • 收录信息 美国《科学引文索引》(SCI);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

    IGCC; Gasifier; O-2/Coal Ratio; N-2/Coal Ratio; Steam/Coal Ratio; Cold Gas Efficiency; Calories of Syngas Per Unit Volume;

    机译:IGCC;气化炉O-2 /煤比;N-2 /煤比;蒸汽/煤比;冷气效率;单位体积合成气的热量;

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