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Modeling fast biomass pyrolysis in a gas-solid vortex reactor

机译:在气固涡流反应器中模拟快速生物质热解

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Conversion of biomass via fast pyrolysis and other methods is positioned to be an important part of the energy landscape in the future. Pyrolysis of lignocellulosic biomass in a gas/solid vortex reactor (GSVR) is modeled to assess the potential of this centrifugal fluidization reactor technology and to explore its process intensification abilities. The production of pyrolysis gases, tar/liquids, and char/ash are examined for various operational scenarios using a simple reaction network. A brief comparison with traditional fluidization technologies is performed. The applied CFD model has been previously validated for non-reacting flows using experimental data from an in-house cold-flow apparatus. The product distribution from biomass pyrolysis between 450 and 500 °C was determined to be 14-17 wt.% char, 73-76 wt.% tar, and 8.5-9.5 wt.% pyrolysis gas, depending on the specific conditions of the process simulation, with all conditions yielding complete biomass conversion. The calculated convective gas/solid heat transfer coefficients in the GSVR were determined to be ~650 W/(m~2 K), which is significantly larger than in non-rotating fluidization reactors. The GSVR exhibited the ability to intensify the biomass pyrolysis process with respect to both production per reactor volume and selectivity toward the desired products, indicating that further investigations with more detailed kinetics and/or experimental reactors is warranted.
机译:通过快速热解和其他方法转化生物质被定位为未来能源格局的重要组成部分。对木质/纤维素涡旋反应器(GSVR)中木质纤维素生物质的热解进行了建模,以评估这种离心流化反应器技术的潜力并探索其工艺强化能力。使用简单的反应网络,可以检查热解气体,焦油/液体和焦炭/灰分的生产情况,以了解各种操作方案。与传统流化技术进行了简要比较。先前已使用来自内部冷流设备的实验数据对所应用的CFD模型进行了非反应流验证。根据工艺的特定条件,在450至500°C之间的生物质热解产物分布确定为14-17 wt%的焦炭,73-76 wt。%的焦油和8.5-9.5 wt。%的热解气体。模拟,在所有条件下均可完成生物质转化。确定在GSVR中计算出的对流气体/固体传热系数约为650 W /(m〜2 K),这比非旋转流化反应器要大得多。相对于每反应器体积的产量和对所需产物的选择性而言,GSVR展示了增强生物质热解过程的能力,这表明有必要对动力学和/或实验反应器进行更详细的研究。

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