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Simulation of circulating fluidized bed gasification for characteristic study of pakistani coal

机译:巴基斯坦煤炭特性研究的循环流化床气化模拟。

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A process model for turbulent pressurized circulating fluidized-bed coal gasifier is created using ASPEN PLUS software. Both hydrodynamic and reaction kinetics parameter are taken into account, whose expressions for fluidized bed are adopted from the literature. Various reactor models available in ASPEN PLUS with calculator as External Block are nested to solve hydrodynamics and kinetics. Multiple operational parameters for a pilot-plant circulating fluidized-bed coal gasifier are used to demonstrate the effects on coal gasification characteristics. This paper presents detailed information regarding the simulation model, including robust analysis of the effect of stoichiometric ratio, steam to coal ratio, gasification temperature and gasification agent temperature. It is observed that, with the increase in the flow rate of air, the components hydrogen, carbon monoxide, carbon dioxide and methane reduce, which causes the Lower Heating Value (LHV) of synthesis gas (Syn. Gas) to decrease by about 29.3%, while increment in the steam flow rate shows a minute increase in heating value of only 0.8%. Stoichiometric ratio has a direct relationship to carbon conversion efficiency and carbon dioxide production. Increasing the steam to coal ratio boosts the production of hydrogen and carbon monoxide, and causes a drop in both carbon dioxide concentration and the conversion efficiency of carbon. High gasifying agent temperature is desired because of high concentration of CO and H2, increasing carbon conversion and LHV. A high gasifying agent temperature is the major factor that affects the coal gasification to enhance H2 and CO production rapidly along with other gasification characteristics.
机译:使用ASPEN PLUS软件创建了湍流增压循环流化床煤气化炉的过程模型。同时考虑了流体动力学参数和反应动力学参数,从文献中采用了流化床的表达式。嵌套在ASPEN PLUS中的各种反应堆模型以及带有计算器作为外部模块的嵌套模型可以解决流体动力学和动力学问题。中试循环流化床煤气化炉的多个运行参数用于证明对煤气化特性的影响。本文介绍了有关模拟模型的详细信息,包括对化学计量比,汽煤比,气化温度和气化剂温度的影响进行稳健分析。观察到,随着空气流量的增加,氢,一氧化碳,二氧化碳和甲烷的成分减少,这导致合成气(合成气)的低热值(LHV)降低约29.3。 %,而蒸汽流量的增加表明发热量的微小增加仅为0.8 %。化学计量比与碳转化效率和二氧化碳产生有直接关系。增加水蒸气与煤的比率可提高氢气和一氧化碳的产量,并导致二氧化碳浓度和碳转化效率的下降。由于高的CO和H 2浓度,增加了碳转化率和LHV,因此需要高的气化剂温度。较高的气化剂温度是影响煤气化以快速提高氢气和二氧化碳产量以及其他气化特性的主要因素。

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