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Techno-economic assessment of process integration models for boosting hydrogen production potential from coal and natural gas feedstocks

机译:工艺集成模型的技术经济评估,可提高煤炭和天然气原料的制氢潜力

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摘要

The elevated energy demands from past decades has created the energy gaps which can mainly be fulfilled through the consumption of natural fossil fuels but at the expense of increased greenhouse gas emissions. Therefore, the need of clean and sustainable options to meet energy gaps have increased significantly. Gasification and steam methane reforming are the efficient technologies which resourcefully produce the syngas and hydrogen from coal and natural gas, respectively. The syngas and hydrogen can be further utilized to generate power or other Fischer Tropsch chemicals. In this study, two process models are developed and technically compared to analyze the production capacity of syngas and hydrogen. First model is developed based on conventional entrained flow gasification process which is validated with data provided by DOE followed by its integration with the reforming process that leads to the second model. The integrated gasification and reforming process model is developed to maximize the hydrogen production while reducing the overall carbon dioxide emissions. Furthermore, the integrated model eradicates the possibility of reformer's catalyst deactivation due to significant amount of H2S present in the coal derived syngas. It has been seen from results that updated model offers 37% increase in H-2/CO ratio, 10% increase in cold gas efficiency (CGE), 25% increase in overall H2 production, and 13% reduction in CO2 emission per unit amount of hydrogen production compared to base case model. Furthermore, economic analysis indicated 8% reduction in cost for case 2 while presenting 7% enhanced hydrogen contents.
机译:过去几十年来不断增长的能源需求造成了能源缺口,这些缺口主要可以通过消耗天然化石燃料来解决,但以增加温室气体排放为代价。因此,对于解决能源缺口的清洁和可持续选择的需求已大大增加。气化和蒸汽甲烷重整是有效的技术,可分别从煤炭和天然气中资源化生产合成气和氢气。合成气和氢气可以进一步用于发电或其他费-托化学品。在这项研究中,开发了两个工艺模型并进行了技术比较,以分析合成气和氢气的生产能力。根据常规的气流床气化工艺开发了第一个模型,该模型已通过DOE提供的数据进行了验证,然后与重整过程集成,从而生成了第二个模型。开发了集成的气化和重整过程模型,以最大程度地提高氢气产量,同时减少总体二氧化碳排放量。此外,集成模型消除了由于煤衍生的合成气中存在大量的H2S而导致重整器催化剂失活的可能性。从结果中可以看出,更新后的模型可将H-2 / CO比例提高37%,冷气效率(CGE)提高10%,氢气总产量提高25%,每单位量二氧化碳排放量降低13%与基本案例模型相比氢气产量此外,经济分析表明,案例2的成本降低了8%,而氢气含量却提高了7%。

著录项

  • 来源
    《Fuel》 |2020年第15期|117111.1-117111.12|共12页
  • 作者

  • 作者单位

    Texas Tech Univ Dept Chem Engn Lubbock TX 79409 USA|Lahore Univ Management Sci Dept Chem & Chem Engn Lahore 54792 Pakistan;

    Lahore Univ Management Sci Dept Chem & Chem Engn Lahore 54792 Pakistan;

    King Fahd Univ Petr & Minerals Chem Engn Dept Dhahran Saudi Arabia;

    Yonsei Univ Dept Chem & Biomol Engn Seoul South Korea;

    COMSATS Univ Islamabad Dept Chem Engn Lahore Campus Lahore Pakistan;

  • 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

    Gasification; Steam methane reforming; Heat integration; H-2 production; CO2 emissions;

    机译:气化;蒸汽甲烷重整;热集成;H-2生产;二氧化碳排放量;

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