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Partitioning of inorganic elements in pilot-scale and demonstration-scale entrained-flow gasifiers

机译:中试规模和示范规模气流床气化炉中无机元素的分配

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摘要

The integrated gasification combined cycle (IGCC) has been recognized as one of the leading methods of power generation with near zero CO_2 emissions from fossil fuels via carbon capture and storage. A suite of emerging IGCC technologies provide the promise of both high efficiency and reduced capital costs. Many of these operate at elevated temperature and hence a number of inorganic elements (i.e. elements other than C, H, O, N and S) may be present in the syngas at later stages of processing than is typical of conventional processing arrangements. Experimental results are presented for inorganic element distribution in slag and fly ash from seven entrained-flow slagging gasification plants. Data for the Siemens, Louisiana Gasification Technology Inc. (LGTI), Wabash River, ELCOGAS and Shell gasification systems were taken from literature. Data for the CanmetENERGY and Pratt and Whitney Rocketdyne (PWR) systems are presented for the first time. Mass balances and enrichment factors are calculated. All values are available in supplementary data tables. Challenges in data interpretation and general trends are highlighted. Mass balance closures for low volatility elements are within the range of 80-120% for the PWR, LGTI and Shell systems. Closures for the CanmetENERGY, Wabash River and ELCOGAS systems are further from 100%. Accumulation, unaccounted streams, measurement inaccuracy and sampling imperfections can cause poor mass balance closures. Comparison of enrichment factors for slag and fly ash demonstrate that many elements have similar fates in gasification systems as they do in combustion systems, although several elements are less volatile in gasification systems. Partitioning can vary for a given element when comparing different gasification systems and different operating conditions. The assessments of several elements which are of environmental or technological concern are provided as examples.
机译:集成气化联合循环(IGCC)已被公认为是主要的发电方法之一,通过碳捕获和存储,化石燃料的CO_2排放几乎为零。一套新兴的IGCC技术提供了高效率并降低了资本成本的希望。这些中的许多在高温下操作,因此与常规处理装置相比,在后续处理阶段,合成气中可能存在许多无机元素(即C,H,O,N和S以外的元素)。给出了7个气流床渣气化炉渣和粉煤灰中无机元素分布的实验结果。西门子,路易斯安那州气化技术公司(LGTI),瓦巴什河,ELCOGAS和壳牌气化系统的数据均来自文献。首次提供了CanmetENERGY和Pratt and Whitney Rocketdyne(PWR)系统的数据。计算质量平衡和富集因子。所有值都在补充数据表中可用。强调了数据解释和总体趋势方面的挑战。对于PWR,LGTI和Shell系统,低挥发性元素的质量平衡关闭范围为80-120%。 CanmetENERGY,Wabash River和ELCOGAS系统的关闭率远非100%。积累,流量不足,测量不准确和采样不完善会导致质量平衡的关闭不良。矿渣和粉煤灰富集因子的比较表明,尽管许多元素在气化系统中的挥发性较小,但许多元素在气化系统中的命运与在燃烧系统中的相似。比较不同的气化系统和不同的运行条件时,给定元素的分区可能会有所不同。作为示例,提供了对环境或技术相关的几个要素的评估。

著录项

  • 来源
    《Fuel》 |2014年第1期|219-227|共9页
  • 作者单位

    Natural Resources Canada, CanmetENERGY, 1 Haanel Drive, Ottawa, Ontario K1A 1M1, Canada;

    Natural Resources Canada, CanmetENERGY, 1 Haanel Drive, Ottawa, Ontario K1A 1M1, Canada;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Entrained-flow gasification; Ash; Slag; Trace elements;

    机译:气流床气化;灰;矿渣;微量元素;

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