首页> 外文期刊>Journal of Analytical & Applied Pyrolysis >Heat transfer-limited flash pyrolysis of woody biomass: Overall reaction rate and time analysis using an integral model with experimental support
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Heat transfer-limited flash pyrolysis of woody biomass: Overall reaction rate and time analysis using an integral model with experimental support

机译:木质生物质的传热限制闪速热解:使用带有实验支持的积分模型进行整体反应速率和时间分析

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摘要

High temperature flash pyrolysis takes place on the second to sub-second time-scale depending on particle size. This particle size dependency conveys an overall heat transfer-limited reaction process as shown by characteristic time analysis. For processes that employ rapid pyrolysis, such as gasification, global or semi-global reaction models are used and are confounded with competing physical phenomena. A heat transfer-limited integral model was used to resolve characteristic pyrolysis times and rates fitted to experimental results from a drop-tube reactor and woody biomass at temperatures in the range 1773-2273 K. Two model derivations were compared and little difference was observed. Particle size, biomass density, reactor wall temperature, and heat of reaction were the most significant parameters from a sensitivity analysis. Experimentally, it was found that increasing initial particle temperature above the boiling point of water changed the thermophysical properties of the reacting particle such that the reaction time was accelerated up to 30%, affecting the calculated heat of reaction and thermal diffusivity. Halving the particle size resulted in up to 75% decreased pyrolysis reaction time, and increasing reactor wall temperature from 1773 K to 2273 K resulted in up to 50% faster reaction times. (C) 2015 Elsevier B.V. All rights reserved.
机译:高温闪速热解发生在第二到亚秒级的时间范围内,具体取决于粒径。该粒度依赖性传达了整个传热受限的反应过程,如特征时间分析所示。对于采用快速热解的过程(例如气化),使用整体或半全局反应模型,并将其与竞争性物理现象相混淆。有限传热积分模型用于解析特征温度下的热解时间和速率,这些温度和速率适用于滴管式反应器和木质生物质在1773-2273 K范围内的实验结果。比较了两个模型推导,观察到的差异很小。粒度,生物量密度,反应器壁温和反应热是灵敏度分析中最重要的参数。实验上发现,将初始颗粒温度提高至高于水的沸点会改变反应颗粒的热物理性质,从而使反应时间加速至30%,从而影响了计算出的反应热和热扩散率。将颗粒大小减半可将热解反应时间缩短多达75%,将反应器壁温从1773 K提高到2273 K可将反应时间缩短多达50%。 (C)2015 Elsevier B.V.保留所有权利。

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