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Single-column cryogenic air separation: Enabling efficient oxygen production with rapid startup and low capital costs-application to low-carbon fossil-fuel plants

机译:单柱低温空气分离:通过快速启动和低资本成本 - 适用于低碳化石燃料厂的高效氧气生产

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摘要

The rapid integration of intermittent renewable sources into the electricity grid is driving the need for more flexible, low-carbon fossil-fuel plants with lower capital costs. This then drives the need to improve the cryogenic air separation unit (ASU). To address this changing landscape, we explore a Praxair single-column ASU (PSCASU) design with the goal of reducing costs and improving flexibility, compared to a conventional doublecolumn ASU. The PSC-ASU incorporates partial air condensation and air pre-separation in the bottom reboiler with a phase separator as well as N2-enriched vapor condensation in the upper reboiler to decrease energy consumption, as compared to Linde's single-column ASU. All three of the above-mentioned ASU designs are simulated in Aspen Plus and analyzed. An economic analysis is applied to evaluate the relative cost savings of the PSC-ASU compared to the double-column ASU. Results suggest that the specific energy consumption of the PSCASU is significantly lower than that of Linde's single-column ASU due to a drastically improved oxygen recovery rate. Although this improved oxygen recovery rate is still lower than that of the double-column ASU, the required pressure ratio of the main air compressor is 21% lower than that of the double-column ASU. As a result, the specific energy consumption of the PSC-ASU is only 1.9% greater than that of the double-column ASU for producing 95.1 mol% O2. However, the PSC-ASU reduces the hourly capital cost by 19% due to the elimination of a high-pressure column. This would effectively decrease the total hourly cost of the ASU, and thus the total hourly cost of low-carbon, fossil-fuel power plants that require oxygen.
机译:间歇可再生源进入电网的快速整合正在推动对具有较低资金成本的更灵活,低碳化石燃料厂的需求。然后驱动需要改善低温空气分离单元(ASU)的需要。为了解决这种不断变化的景观,与传统的双层ASU相比,我们探索了普拉克斯单列ASU(PSCASU)设计,以降低成本和提高灵活性。与Linde的单柱ASU相比,PSC-ASU在底部再沸器中掺入底部再沸器中的底部再沸器中的部分空气冷凝剂和空气预分离,以及上再沸器中的N 2富含蒸汽凝结,以降低能量消耗。所有上述ASU设计中的所有三个都在Aspen Plus和分析中进行了模拟。与双柱ASU相比,应用经济分析评估PSC-ASU的相对成本节省。结果表明,由于氧气恢复速率大大提高,PSCASU的特定能量消耗显着低于林德单柱ASU。尽管这种改善的氧气回收率仍然低于双柱ASU,但主空气压缩机的所需压力比低于21%,低于双柱ASU。结果,PSC-ASU的特定能量消耗仅比生产95.1mol%O2的双柱ASU大的1.9%。然而,由于消除高压柱,PSC-ASU将每小时资本成本降低19%。这将有效降低ASU的总每小时成本,从而降低需要氧气的低碳化石燃料发电厂的总成本。

著录项

  • 来源
    《Energy Conversion & Management》 |2021年第11期|114773.1-114773.10|共10页
  • 作者单位

    Washington Univ Consortium Clean Coal Utilizat Dept Energy Environm & Chem Engn One Brookings Dr St Louis MO 63130 USA;

    Washington Univ Consortium Clean Coal Utilizat Dept Energy Environm & Chem Engn One Brookings Dr St Louis MO 63130 USA;

    Washington Univ Consortium Clean Coal Utilizat Dept Energy Environm & Chem Engn One Brookings Dr St Louis MO 63130 USA;

    Washington Univ Consortium Clean Coal Utilizat Dept Energy Environm & Chem Engn One Brookings Dr St Louis MO 63130 USA;

  • 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

    ASU; Single-column; Air separation; Energy consumption; Capital cost; Rapid startup;

    机译:ASU;单柱;空分;能量消耗;资本成本;快速启动;

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