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An Experimental and Theoretical Study of the Gasification of Miscanthus Briquettes in a Double-Stage Downdraft Gasifier: Syngas, Tar, and Biochar Characterization

机译:双阶段下行气化器中泥鳅煤气气化的实验与理论研究:合成气,焦油和生物炭特征

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摘要

The goal of this work is to understand the gasification process for Miscanthus briquettes in a double-stage downdraft gasifier, and the impact of different Equivalence Ratios (ER) on syngas, biochar, and tar characteristics. The optimal ER was found to be 0.35, which yielded a syngas maximum heating value of 5.5 MJ/Nm3 with a syngas composition of 20.29% CO, 18.68% H2, and 0.86% CH4. To better understand the observed behavior, an equilibrium reaction model was created and validated using the experimental data. The model showed that the heating value decreased with increasing ER, and that hydrogen production peaked at ER = 0.37, while methane (CH4) became negligible above ER = 0.42. Tar and particle content in the gas produced at a certain temperature can now be predicted. To assess the biochar characteristics, surface structure image analysis and a surface area porosity analysis were carried out. Employing images from a scanning electron microscope (SEM), the biochar cell bonds and pore structures were examined and analyzed. By using the Brunauer-Emmett-Teller (BET) analysis of the surface porosity, the surface area to be 186.06 m2/g and the micro pore volume was calculated to be 0.07 m3/g. The final aspect of the analysis involved an evaluation of tar production. Combining current and prior data showed a logarithmic relationship between the amount of tar produced and the gasifier bed temperature, where the amount of tar produced decreased with increasing bed temperature. This results in very low tar levels, which is one of the known advantages for a double-stage downdraft gasifier over a single-stage system.
机译:这项工作的目的是了解在双级吸式气化炉芒草煤球,并在合成气,生物炭和焦油特性不同当量比(ER)的影响,气化过程。最佳ER被发现是0.35,其产生5.5兆焦/标准立方米的合成气最大加热值与20.29%的CO的合成气组成,18.68%H 2,和0.86%的CH 4。为了更好地理解所观察到的行为,被创建的平衡反应模型,并使用该实验数据验证。该模型表明,热值随ER降低,并且产氢峰值在ER = 0.37,而甲烷(CH 4)成为上述ER = 0.42可以忽略不计。在一定温度下所产生的气体中的焦油和颗粒含量现在可以被预测。为了评估生物炭特性,表面结构的图像分析和进行了表面区域的孔隙率分析。采用从扫描型电子显微镜(SEM)图像,生物炭细胞债券和孔结构进行了检查和分析。通过使用表面孔隙率的布鲁诺尔 - 埃米特 - 特勒(BET)的分析,表面积为186.06平方米/ g,且微孔体积计算为0.07立方米/克。分析的最后一个方面涉及焦油产量的评估。组合电流和现有的数据显示所产生的焦油的量和气化器床温度,其中焦油的生成量随床温的升高而降低之间的对数关系。这导致非常低焦油的水平,这对于一个双级吸式气化炉在单级系统中的已知的优点之一。

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