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Molecular simulation of coal-fired plant flue gas competitive adsorption and diffusion on coal

机译:燃煤植物烟气在煤上竞争吸附和扩散的分子模拟

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摘要

Better understanding the microcosmic mechanism of CO2, O-2, and N-2 competitive adsorption can benefit the effective CO2 storage and fire prevention by injecting coal-fired flue gas into the goaf. Toward this aim, macromolecular coal model was established. Grand Canonical Monte Carlo and Molecular Dynamics simulation were carried out at single, binary, and ternary component systems under the conditions of 298.15-318.15 K and up to 10000 kPa. Simulation results demonstrate that the absolute adsorption amount decreases with the increase of temperature and water content in coal, and increases with the pressure increasing and corresponding bulk mole fraction. The competitiveness is CO2 O-2 N-2 basing on the ternary adsorption selectivity of CO2/O-2 (5.6-24.2), CO2/N-2 (8.4-29.3), and O-2/N-2 (1.2-1.5). The isosteric adsorption heat of CO2 (about 29.1-30.9 kJ/ mol) is nearly double of O-2 or N-2 (about 16.6-17.3 kJ/mol), and CO2 occupies stronger adsorption sites without being affected by O-2 or N-2. The interaction energy between CO2 and coal is greater than O-2 or N-2 due to the electrostatic energy and much larger van der Waals energy. The adsorbed molecules swell the coal and the trend of self-diffusion coefficients with pressure is consistent with loading and volumes. So the flue gas injecting into the goaf is better than pure N-2, and can store large amounts of CO2 (0.406 mmol/g), meanwhile inhibit the coal spontaneous combustion, visually displayed by density distributions. The findings provide essential evidence for injection parameters such as temperature, pressure, gas concentration, injectivity, moisture, and so on.
机译:更好地了解CO2,O-2和N-2竞争性吸附的微观机理,可以通过将采煤烟气注入采空区,从而有利于有效的CO2储存和防火。为此,建立了大分子煤模型。在298.15-318.15 K和最高10000 kPa的条件下,在单,二元和三元组分系统上进行了Grand Canonical Monte Carlo和分子动力学模拟。仿真结果表明,绝对吸附量随温度和煤中水含量的增加而降低,随压力的增加和相应的体积摩尔分数的增加而增加。基于CO2 / O-2(5.6-24.2),CO2 / N-2(8.4-29.3)和O-2 / N-2( 1.2-1.5)。 CO2的等位吸附热(约29.1-30.9 kJ / mol)几乎是O-2或N-2的两倍(约16.6-17.3 kJ / mol),并且CO2占据更强的吸附位而不受O-2或N-2。由于静电能和更大的范德华能量,CO 2与煤之间的相互作用能大于O-2或N-2。吸附的分子使煤溶胀,自扩散系数随压力的变化趋势与载荷和体积一致。因此,注入到采空区的烟道气要比纯N-2好,并且可以储存大量的CO2(0.406 mmol / g),同时抑制了煤的自燃,通过密度分布直观地显示出来。这些发现为诸如温度,压力,气体浓度,喷射率,湿度等喷射参数提供了重要证据。

著录项

  • 来源
    《Fuel》 |2019年第1期|87-96|共10页
  • 作者单位

    Liaoning Tech Univ, Coll Safety Sci & Engn, Fuxing 123000, Peoples R China;

    Liaoning Tech Univ, Coll Safety Sci & Engn, Fuxing 123000, Peoples R China|Shanxi Coking Coal Grp Co Ltd, Taiyuan 030053, Shanxi, Peoples R China;

    Liaoning Tech Univ, Coll Safety Sci & Engn, Fuxing 123000, Peoples R China|Liaoning Tech Univ, Secur Engn Technol Res Inst, Fuxing 123000, Peoples R China;

  • 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

    Flue gas; Goaf; CO2 storage; Competitive adsorption; Diffusion coefficient;

    机译:烟气采空区二氧化碳储存竞争吸附扩散系数;

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