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Computational modelling of the impact of particle size to the heat transfer coefficient between biomass particles and a fluidised bed

机译:颗粒尺寸对生物质颗粒与流化床之间传热系数影响的计算模型

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摘要

The fluid-particle interaction and the impact of different heat transfer conditions on pyrolysis of biomass inside a 150 g/h fluidised bed reactor are modelled. Two different size biomass particles (350 μm and 550 um in diameter) are injected into the fluidised bed. The different biomass particle sizes result in different heat transfer conditions. This is due to the fact that the 350 μm diameter particle is smaller than the sand particles of the reactor (440 μm), while the 550 μm one is larger. The bed-to-particle heat transfer for both cases is calculated according to the literature. Conductive heat transfer is assumed for the larger biomass particle (550 μm) inside the bed, while biomass-sand contacts for the smaller biomass particle (350 μm) were considered unimportant. The Eulerian approach is used to model the bubbling behaviour of the sand, which is treated as a continuum. Biomass reaction kinetics is modelled according to the literature using a two-stage, semi-global model which takes into account secondary reactions. The particle motion inside the reactor is computed using drag laws, dependent on the local volume fraction of each phase. FLUENT 6.2 has been used as the modelling framework of the simulations with the whole pyrolysis model incorporated in the form of User Defined Function (UDF).
机译:模拟了150 g / h流化床反应器内的流体-颗粒相互作用以及不同传热条件对生物质热解的影响。将两种不同大小的生物质颗粒(直径350μm和直径550 um)注入流化床中。不同的生物质粒度导致不同的传热条件。这是由于以下事实:直径为350μm的颗粒小于反应堆的沙粒(440μm),而直径为550μm的颗粒则更大。根据文献计算两种情况的床-颗粒传热。假设床内较大的生物质颗粒(550μm)进行了导热,而较小生物质颗粒(350μm)的生物质与沙的接触被认为不重要。欧拉方法用于模拟被视为连续体的沙的起泡行为。根据文献,使用考虑了次级反应的两阶段半全局模型对生物质反应动力学进行建模。使用阻力定律可以计算反应堆内部的粒子运动,具体取决于每个相的局部体积分数。 FLUENT 6.2已用作模拟的建模框架,整个热解模型以用户定义函数(UDF)的形式包含在内。

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