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A comparison of the torrefaction behavior of wood, miscanthus and palm kernel shells: Measurements on single particles with geometries of technical relevance

机译:木材,桔梗和棕榈仁壳的烘焙行为的比较:对具有技术相关性的几何形状的单个颗粒的测量

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A torrefaction test rig was designed to investigate large single biomass particles up to characteristic sizes of 25 mm, typical for industrial reactors. Time-resolved mass loss for such particles is measured with a magnetic suspension balance at well-defined torrefaction conditions (temperature, residence time, gas atmosphere). This paper comprises the results of woody and non-woody biomass: pine, a coniferous, and beech, a deciduous, wood, palm kernel shells and miscanthus. Influence of process temperature (240 to 320 degrees C), residence time (up to 1 h) and type of solid biomass on time-resolved mass loss is presented. Additional tests with oxygen in the process gas (0-15 vol%), typical for industrial torrefaction systems, are carried out for selected samples of beech wood. The differences in torrefaction behaviour of bark, sap-and heartwood of pine are evaluated. Finally, it is shown that the torrefaction reactor developed allows to derive kinetic parameters for mass loss. At temperatures up to 300 degrees C the mass loss for palm kern shells is highest followed by miscanthus, and pine. By examining pine, as an example, it is shown that heartwood is significantly more reactive than sapwood and bark. Finally, it is demonstrated, that for the particle sizes considered here heat and mass transfer limitations can be neglected for the determination of torrefaction kinetics. Kinetic data agree well with data from literature.
机译:设计了一种焙干试验台,以研究大的单个生物质颗粒,其特征尺寸最大为25 mm,这是工业反应堆的典型特征。此类颗粒的时间分辨质量损失是在明确定义的烘焙条件(温度,停留时间,气体气氛)下用磁悬浮天平测量的。本文包括木质和非木质生物量的结果:松树,针叶树和山毛榉,落叶树,木材,棕榈仁壳和桔梗。提出了工艺温度(240至320摄氏度),停留时间(长达1小时)和固体生物质类型对时间分辨质量损失的影响。对于选定的山毛榉木材样品,对工业烘烤系统中典型的工艺气体中的氧气(0-15体积%)进行了附加测试。评估了松树皮,树汁和心材的烘焙行为差异。最后,表明开发的焙烧反应器可以得出质量损失的动力学参数。在高达300摄氏度的温度下,棕榈仁壳的质量损失最高,其次是桔梗和松树。例如,通过检查松木,可以发现心材比边材和树皮的反应性强得多。最后,证明了对于此处考虑的粒径,在确定烘焙动力学时可以忽略传热和传质的限制。动力学数据与文献数据非常吻合。

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