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Numerical analysis of gasification characteristics in combined coal gasification and flash ironmaking process

机译:煤气化综合气化特性的数值分析及闪蒸炼铁工艺

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The combined coal gasification and flash ironmaking process has been stated as a type of multi-generation system, which can be employed to obtain metallic iron and qualified synthesis gas simultaneously. In this study, a separate coal gasification process under the unique conditions of the multi-generation system was investigated using a numerical method. Turbulent flow, heat transfer, and chemical reactions were included in the computational fluid dynamics (CFD) model to predict the internal velocity field, temperature distribution, component distribution, and carbon conversion rate. The simulation results revealed the gasification characteristics in the multi-generation system; these were compared with the results obtained for the traditional gasification process. The sudden expansion structure divided the velocity field into three regions: jet zone, recirculation zone, and plug flow region, in which the stable turbulent structure was formed. The unheated oxidant and inert carrier gas N-2 were injected directly to suppress the extremely high temperatures during the pure oxygen-entrained gasification process without a traditional coolant, such as H2O or CO2. A high-quality syngas was obtained with a lower consumption of pure oxygen, and the effective-gas ratio reached 91.73% when the optimum oxygen/coal rate was 0.7. The slender shaft was proven effective for the gasification process to match the subsequent reduction process.
机译:组合的煤气化和闪蒸炼铁工艺已被称为一种多代系统,可用于同时获得金属铁和合成的合成气。在这项研究中,使用数值方法研究了在多代系统的独特条件下单独的煤气化过程。湍流,传热和化学反应包括在计算流体动力学(CFD)模型中,以预测内部速度场,温度分布,组分分布和碳转化率。仿真结果显示了多代系统的气化特性;将这些与用于传统气化过程的结果进行比较。突然的膨胀结构将速度场分成三个区域:喷射区,再循环区域和塞流区域,其中形成了稳定的湍流结构。未加热的氧化剂和惰性载气N-2直接注射以抑制纯氧气化过程中的极高温度,而没有传统的冷却剂,例如H 2 O或CO 2。获得高质量的合成气,纯氧消耗较低,当最佳氧/煤率为0.7时,有效气体比率达到91.73%。已证明细长轴对气化过程有效,以匹配随后的还原过程。

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