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Devolatilization kinetics of woody biomass at short residence times and high heating rates and peak temperatures

机译:木质生物质在短停留时间和高加热速率和峰值温度下的脱挥发分动力学

摘要

This work combines experimental and computational fluid dynamics (CFD) results to derive global kinetics for biomass (pine wood) devolatilization during heating rates on the order of 10Ks, bulk flow peak temperatures between 1405 and 1667K, and particle residence times below 0.1s. Experiments were conducted on a laboratory laminar entrained flow reactor (LFR) using solid fuel feed rates on the order of 10-20mgh. Employing a simple single step first order (SFOR) mechanism with an Arrhenius type rate expression, the best fit of the pyrolysis kinetics was found to be: A=18.9×10s, E=21305Jmol. The accuracy of the derived global kinetics was supported by comparing predictions to experimental results from a 15kW furnace. The work emphasizes the importance of characterizing the temperature history of the biomass particles when deriving pyrolysis kinetics. The present results indicate faster kinetics than found in the literature, leading to predicted residence times required for full conversion one order of magnitude lower than when compared to thermogravimetric analysis (TGA) derived kinetics.
机译:这项工作结合了实验和计算流体动力学(CFD)结果,得出了加热速率为10Ks,总流量峰值温度在1405和1667K之间以及颗粒停留时间低于0.1s时生物量(松木)挥发的整体动力学。实验是在实验室层流式气流床(LFR)上进行的,使用的固体燃料进料速度为10-20mgh。利用具有Arrhenius型速率表达的简单单步一阶(SFOR)机制,发现热解动力学的最佳拟合为:A = 18.9×10s,E = 21305Jmol。通过将预测结果与15kW炉的实验结果进行比较,可以支持所得出的全局动力学的准确性。这项工作强调了推导热解动力学时表征生物质颗粒温度历史的重要性。目前的结果表明动力学比文献中发现的要快,导致与热重分析(TGA)得出的动力学相比,完全转化所需的预计停留时间要低一个数量级。

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