首页> 外文期刊>Journal of the air & waste management association >Development of a chemical kinetic model for a biosolids fluidized-bed gasifier and the effects of operating parameters on syngas quality
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Development of a chemical kinetic model for a biosolids fluidized-bed gasifier and the effects of operating parameters on syngas quality

机译:生物固体流化床气化炉化学动力学模型的开发以及运行参数对合成气质量的影响

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摘要

In an effort to decrease the land disposal of sewage sludge biosolids and to recover energy, gasification has become a viable option for the treatment of waste biosolids. The process of gasification involves the drying and devolatilization and partial oxidation of biosolids, followed closely by the reduction of the organic gases and char in a single vessel. The products of gasification include a gaseous fuel composed largely of N_2, H_2O, CO_2, CO, H_2, CH_4, and tars, as well as ash and unburned solid carbon. A mathematical model was developed using published devolatilization, oxidation, and reduction reactions, and calibrated using data from three different experimental studies of laboratory-scale fluidized-bed sewage sludge gasifiers reported in the literature. The model predicts syngas production rate, composition, and temperature as functions of the biosolids composition and feed rate, the air input rate, and gasifier bottom temperature. Several data sets from the three independent literature sources were reserved for model validation, with a focus placed on five species of interest (CO, CO_2, H_2, CH_4, and C_6H_6). The syngas composition predictions from the model compared well with experimental results from the literature. A sensitivity analysis on the most important operating parameters of a gasifier (bed temperature and equivalence ratio) was performed as well, with the results of the analysis offering insight into the operations of a biosolids gasifier.
机译:为了减少污水污泥生物固体的土地处置并回收能源,气化已成为处理废物生物固体的可行选择。气化过程包括生物固体的干燥,脱挥发分和部分氧化,紧接着在单个容器中还原有机气体和焦炭。气化产物包括主要由N_2,H_2O,CO_2,CO,H_2,CH_4和焦油组成的气态燃料,以及灰分和未燃烧的固体碳。使用已发表的脱挥发分,氧化和还原反应开发了数学模型,并使用文献报道的实验室规模流化床污水污泥气化炉的三项不同实验研究的数据进行了校准。该模型根据生物固体成分和进料速率,空气输入速率和气化炉底部温度预测合成气的产生速率,组成和温度。保留了来自三个独立文献来源的几个数据集用于模型验证,重点放在五种感兴趣的物种(CO,CO_2,H_2,CH_4和C_6H_6)上。该模型对合成气成分的预测与文献中的实验结果进行了比较。还对气化炉最重要的运行参数(床温和当量比)进行了敏感性分析,分析结果为深入了解生物固体气化炉的运行提供了依据。

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    Department of Civil, Environmental, and Construction Engineering, University of Central Florida, Orlando, FL, USA;

    Department of Civil, Environmental, and Construction Engineering, University of Central Florida, Orlando, FL 32129, USA;

    Department of Civil, Environmental, and Construction Engineering, University of Central Florida, Orlando, FL, USA;

    Maxwest Environmental Systems, Inc., Sanford, FL, USA;

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