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Influence of reaction atmosphere (H2O, N2, H2, CO2, CO) on fluidized-bed fast pyrolysis of biomass using detailed tar vapor chemistry in computational fluid dynamics

机译:在计算流体动力学中使用详细的焦油蒸气化学,反应气氛(H2O,N2,H2,CO2,CO)对生物质流化床快速热解的影响

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摘要

Secondary pyrolysis in fluidized bed fast pyrolysis of biomass is the focus of this work. A novel computational fluid dynamics (CFD) model coupled with a comprehensive chemistry scheme (134 species and 4169 reactions, in CHEMKIN format) has been developed to investigate this complex phenomenon. Previous results from a transient three-dimensional model of primary pyrolysis were used for the source terms of primary products in this model. A parametric study of reaction atmospheres (H2O, N2, H2, CO2, CO) has been performed. For the N2 and H2O atmosphere, results of the model compared favorably to experimentally obtained yields after the temperature was adjusted to a value higher than that used in experiments. One notable deviation versus experiments is pyrolytic water yield and yield of higher hydrocarbons. The model suggests a not overly strong impact of the reaction atmosphere. However, both chemical and physical effects were observed. Most notably, effects could be seen on the yield of various compounds, temperature profile throughout the reactor system, residence time, radical concentration, and turbulent intensity. At the investigated temperature (873 K), turbulent intensity appeared to have the strongest influence on liquid yield. With the aid of acceleration techniques, most importantly dimension reduction, chemistry agglomeration, and in-situ tabulation, a converged solution could be obtained within a reasonable time (∼30 h). As such, a new potentially useful method has been suggested for numerical analysis of fast pyrolysis.
机译:流化床中的二次热解生物质的快速热解是这项工作的重点。已经开发了一种新颖的计算流体动力学(CFD)模型,并结合了全面的化学方案(134种和4169个反应,以CHEMKIN格式),以研究这一复杂现象。初级热解的瞬态三维模型的先前结果用作该模型中初级产物的来源术语。已经对反应气氛(H2O,N2,H2,CO2,CO)进行了参数研究。对于N2和H2O气氛,在将温度调节到高于实验所用的值之后,该模型的结果与实验获得的产率相比具有优势。与实验相比,一个值得注意的偏差是热解水的收率和高级烃的收率。该模型表明反应气氛的影响不太强烈。但是,观察到化学和物理作用。最值得注意的是,可以看到对各种化合物的收率,整个反应器系统的温度曲线,停留时间,自由基浓度和湍流强度的影响。在研究温度(873 K)下,湍流强度似乎对液体产率的影响最大。借助加速技术,最重要的是减小尺寸,化学团聚和原位制表,可以在合理的时间(约30小时)内获得收敛的溶液。这样,已经提出了一种新的潜在有用的方法用于快速热解的数值分析。

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