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Study of hydrodynamic characteristics in a circulating fluidized bed gasifier for plastic waste by computational fluid dynamics modeling and simulation

机译:计算流体动力学建模与仿真研究塑料废料循环流化床气化炉的水动力特性

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摘要

For designing an efficient circulating fluidized bed reactor, understanding the complex hydrodynamic characteristics in the reactor is required. Hence, in the present study, the modeling and simulation of the circulating fluidized bed gasifier using plastic waste were carried out with Eulerian-Granular approach. Several cases were investigated as changing superficial gas velocities or sizes of plastic waste particle. Firstly, cases were examined with four different velocities when the particle diameter is 1 mm. At the gas velocity of 6 or 8 m/s, gas volume fraction is more than 95 % throughout the reactor and particle velocity has positive value overall. Therefore, a circulating fluidized bed seems to be formed in both cases. Comparing those two cases, better solid mixing can be expected considering the mass fraction and solid velocity at the superficial gas velocity of 6 m/s. Thus this case was further studied for the effect of particle size. As the diameters of plastic waste particle are 1 or 3 mm, it is considered that a circulating fluidized bed is formed. And plastic waste and sand particles are well mixed throughout the reactor. However, the particle diameter increases over 3 mm then, it is very hard to maintain circulating fluid-ization condition.
机译:为了设计有效的循环流化床反应器,需要了解反应器中复杂的流体动力学特性。因此,在本研究中,利用欧拉-颗粒法对利用塑料废料的循环流化床气化炉进行了建模和仿真。调查了一些情况,这些情况是由于改变了表观气体速度或废塑料颗粒的大小而引起的。首先,当粒径为1 mm时,以四种不同的速度检查病例。在6或8 m / s的气体速度下,整个反应器的气体体积分数大于95%,并且颗粒速度总体上具有正值。因此,在两种情况下似乎都形成了循环流化床。比较这两种情况,考虑表观气体速度为6 m / s时的质量分数和固体速度,可以预期更好的固体混合。因此,对这种情况进一​​步研究了粒径的影响。当塑料废料颗粒的直径为1或3mm时,认为形成了循环流化床。并且塑料废料和沙子颗粒在整个反应器中充分混合。但是,如果粒径增加超过3mm,则很难维持循环流化条件。

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