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Numerical Simulation of Single Coal Char Particle Combustion with the Overall Gas-Phase Reaction

机译:单煤炭颗粒燃烧与整体气相反应的数值模拟

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摘要

The quasi-steady state heat and mass transfer around a single coal char particle with and without CO oxidation was numerically analyzed to investigate the effect of CO oxidation on the reaction process of char. With CO oxidation, the gas temperature around the particle is increased by the exothermic heat of CO oxidation, and the particle itself also experiences a temperature increase due to the heat transfer between high-temperature gas and the particle. In addition, the generation of additional CO2 by CO oxidation promotes the CO2 gasification of char, whereas the consumption of O-2 suppresses the char oxidation. As a result of balancing among these factors, the net reaction rate of char, which is the sum of the partial oxidation rate and CO2 gasification rate, with CO oxidation became larger than that without CO oxidation. Under conditions of a higher temperature and larger particle size, the net reaction rate with CO oxidation was larger than that without CO oxidation, though the partial oxidation rate with CO oxidation was smaller than that without CO oxidation because of the promoted consumption of O-2 by CO oxidation. This result indicates that CO2 gasification compensates for the decrease in the net reaction rate due to the suppression of char oxidation. Therefore, CO oxidation should greatly affect the heterogeneous reaction rates of char, especially CO2 gasification, through changes in the temperature and compositions of the gas-phase near a coal char particle.
机译:数值分析了围绕单个煤炭颗粒的准稳态热量和围绕单个煤炭粒子的传质,以研究CO氧化对Char反应过程的影响。通过CO氧化,通过CO氧化的放热热,颗粒周围的气体温度增加,并且颗粒本身也经历了由于高温气体和颗粒之间的热传递而产生的温度升高。另外,通过CO氧化产生额外的CO 2促进CHAR的CO2气化,而O-2的消耗抑制了炭氧化。由于这些因素之间平衡,CHAR的净反应速率,即部分氧化率和CO2气化率的总和,具有共同氧化而不是没有共同氧化。在较高温度和较大粒径的条件下,具有CO氧化的净反应速率大于没有共同氧化的净反应速率,尽管由于促进O-2的消耗而没有CON氧化的部分氧化速率小于没有共同氧化的部分氧化速率通过共同氧化。该结果表明,由于抑制炭氧化,CO2气化补偿了净反应速率的降低。因此,共氧化应极大地影响炭,特别是CO 2气化的异质反应速率,通过煤炭粒子附近的气相温度和组成的变化。

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