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CFD-DEM modeling of gas-solid flow and heat transfer in a FINEX meltergasifier

机译:FINEX熔融气化炉中气固流动和传热的CFD-DEM建模

摘要

The blast furnace is the traditional ironmaking process and the most important technology to produce the liquid iron. However, as the natural resource has been rapidly depleted and the awareness of environmental protection has risen, new ironmaking technologies were developed in the last two decades. FINEX, the smelting reduction process, is one of the promising technologies that could solve these problems. Based on fluidized bed reducing technologies, fine ore can be directly used in FINEX process rather than cokes or sinter which leads to the reduction of the costs and adverse effect on environment caused by pellets or sinter preparation. To improve the FINEX technology, the multiphase flow in the Melter&Gasifier needs to be recognized. Mathematical modeling is an efficient way to achieve this especially the coupling approach of discrete particle simulation (DEM) and computational fluid dynamics (CFD).Gas-solid flow and heat transfer phenomenon were investigated at a microscopic level by CFD-DEM. The results reveal how variables like particles charging angles, solid flow rate, gas flow rate and particles properties influence particle flow patterns. Microscopic information such as individual particle velocity, porosity, coordination number and force structure acquired from the simulation process is crucial for us to understand the mechanism of particle flow patterns.
机译:高炉是传统的炼铁工艺,也是生产液态铁的最重要技术。但是,随着自然资源的迅速枯竭以及人们对环保意识的增强,近二十年来开发了新的炼铁技术。 FINEX(冶炼还原工艺)是可以解决这些问题的有前途的技术之一。基于流化床还原技术,粉矿可直接用于FINEX工艺中,而不是焦炭或烧结矿,从而降低了成本,降低了球团矿或烧结矿制备对环境的不利影响。为了改进FINEX技术,需要认识熔炉和气化炉中的多相流。数学建模是实现这一目标的有效方法,尤其是离散粒子模拟(DEM)与计算流体动力学(CFD)的耦合方法。CFD-DEM在微观层面研究了气固两相流动和传热现象。结果揭示了诸如颗粒带电角度,固体流速,气体流速和颗粒性质之类的变量如何影响颗粒流型。从模拟过程中获得的微观信息,例如单个粒子的速度,孔隙率,配位数和受力结构,对于我们了解粒子流型的机理至关重要。

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