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Simulation on Operating Conditions of Chemical Looping Combustion of Methane in a Continuous Bubbling Fluidized-Bed Process

机译:连续鼓泡流化床过程中甲烷化学循环燃烧运行条件的模拟

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摘要

In order to simulate the performance of chemical looping combustion (CLC) of pure methane in a continuous bubbling fiuidized bed process using a NiO based oxygen carrier under various operating conditions, this study has developed a mathematical model based on the reaction kinetics and population balance of oxygen carrier (OC) particles in each reactor. Proper operating conditions have been discussed for complete combustion of methane. The minimum OC circulation rate for complete combustion was determined with the variation of temperature and fuel bed mass. The methane combustion efficiency was strongly affected by the distribution of OC between the air reactor (AR) and fuel reactor (FR) at a constant temperature, circulation rate of OC, and total bed mass. The range of OC distribution possible to achieve complete combustion became wider with increasing either the temperature or the circulation rate of OC at a constant total bed mass. In tested conditions of a lab-sole process, the range on the OC mass ratio of the fuel reactor to the total bed mass extended from 0.527-0.607 to 0.430-0.705 with an increasing temperature of AR and FR from 850 to 900 ℃ (circulation rate of OC = 3 g/s, total bed mass = 22.89 kg). It also extended from 0.527-0.607 to 0.491-0.643 with increasing the circulation rate of OC from 3 g/s to 10 g/s (temperature of AR and FR = 850 ℃, total bed mass = 2239 kg). In this range, the amount of elutriated OC particles decreased a little as the FR mass increased because of the higher rates of particle elutriation and attrition in AR than in FR.
机译:为了模拟在不同操作条件下使用基于NiO的氧气载体在连续鼓泡流化床过程中纯甲烷的化学循环燃烧(CLC)的性能,本研究基于反应动力学和氢的种群平衡建立了数学模型。每个反应器中的氧气载体(OC)颗粒。为了使甲烷完全燃烧,已经讨论了适当的操作条件。完全燃烧的最小OC循环速率取决于温度和燃料床质量的变化。甲烷燃烧效率受恒定温度下空气反应器(AR)和燃料反应器(FR)之间的OC分布,OC循环速率和总床质量的影响。在恒定的总床质量下,随着OC温度或循环速率的增加,可能实现完全燃烧的OC分布范围变得更宽。在实验室专用工艺的测试条件下,随着AR和FR的温度从850升高到900℃,燃料反应器的OC质量比与总床质量的范围从0.527-0.607扩展到0.430-0.705。 OC = 3 g / s,床总质量= 22.89 kg)。随着OC循环速率从3 g / s增加到10 g / s(AR和FR的温度= 850℃,总床质量= 2239 kg),它也从0.527-0.607扩展到0.491-0.643。在此范围内,随着FR质量的增加,淘洗的OC颗粒的数量略有减少,这是因为AR中的颗粒淘析和磨损率高于FR。

著录项

  • 来源
    《Energy & fuels》 |2012年第1期|p.1441-1448|共8页
  • 作者单位

    Department of Chemical Engineering, Konkuk University, Seoul 143-701, Korea;

    Department of Chemical Engineering, Konkuk University, Seoul 143-701, Korea;

    Department of Chemical Engineering, Konkuk University, Seoul 143-701, Korea;

    SK Innovation, Daejeon 305-712, Korea;

    Department of Chemical & Bumolecular Engineering and Energy & Environment Research Center, KAIST, Daejeon 305-701, Korea;

    Korea Institute of Energy Research, Daejeon 305-343, Korea;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);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

  • 入库时间 2022-08-18 00:41:15

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