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Conversion characteristics of a single coal char particle with high porosity moving in a hot O_2/CO_2 atmosphere

机译:在热O_2 / CO_2气氛中移动的高孔隙率单一煤焦颗粒的转化特性

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The conversion characteristics of a single particle with high porosity moving in a high temperature O-2/CO2 atmosphere were simulated to complement the particle conversion sub-model. Considering the significant changes in the pore structure of high porosity particles, the effects of the high porosity (0.5-0.9) on conversion process were investigated. According to the experimental studies, two different types of char structures were considered for the particles with different porosity to establish the particle structure model, which include large pore structure and cenosphere structure. The reaction model contains water-gas-shift reaction, CO oxidation reaction and four heterogeneous reactions. The results show that the diffusion of the species is less limited inside the particle when the particle porosity is higher than 0.8. With the increase of particle size, the surface temperature and temperature gradient decrease. With the increase of the particle porosity, the surface temperature decreases and the temperature gradient increases. In addition, the specific carbon consumption rates decrease along with the increase of the particle size. When the particle porosity increases, the specific carbon consumption rates decrease firstly then significantly increase.
机译:模拟了在高温O-2 / CO2气氛中移动的高孔隙度单个粒子的转换特性,以补充粒子转换子模型。考虑到高孔隙度颗粒孔隙结构的显着变化,研究了高孔隙度(0.5-0.9)对转化过程的影响。根据实验研究,针对孔隙率不同的颗粒,考虑了两种不同类型的炭结构,建立了大孔隙结构和空心层结构的颗粒结构模型。该反应模型包含水煤气变换反应,CO氧化反应和四个非均相反应。结果表明,当颗粒孔隙率高于0.8时,物质在颗粒内部的扩散受到的限制较小。随着粒度的增加,表面温度和温度梯度降低。随着颗粒孔隙率的增加,表面温度降低,温度梯度增加。另外,比碳消耗率随着粒径的增加而降低。当颗粒孔隙率增加时,比碳消耗率先降低然后显着增加。

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