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CFD modeling of multiphase reacting flow in blast furnace shaft with layered burden

机译:分层负荷的高炉竖井多相反应流的CFD模拟

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摘要

The ironmaking blast furnace is a counter-current chemical reactor which includes the ascending gas flow and the counter-current descending porous bed (burden). A Computational Fluid Dynamics (CFD) model has been developed to simulate the multiphase reacting flow in blast furnace shaft. The gas flow dynamics, burden movement, chemical reactions, heat and mass transfer between the gas phase and burden phase are included in the CFD model. The blast furnace burden consists of alternative layers of iron ore and coke. A novel methodology is proposed to efficiently model the effects of alternative burden layer structure on gas flow, heat transfer, mass transfer and chemical reactions. Different reactions and heat transfer characteristics are applied for difference types of layer. In addition, the layered CFD model accurately predicts the Cohesive Zone (CZ) shape where the melting of solid burden taking place. The shape and location of the CZ are determined by an iterative method based on the ore temperature distribution. The theoretical formation and the methodology of the CFD model are presented and the model is applied to simulate industry blast furnaces. The proposed method can be applied to investigate the blast furnace shaft process and other moving bed system with periodic burden structure configuration.
机译:炼铁高炉是一个逆流化学反应器,它包括上升气流和逆流下降多孔床(负荷)。已经开发了计算流体动力学(CFD)模型来模拟高炉竖井中的多相反应流。 CFD模型中包括气流动力学,物料移动,化学反应,气相和物料相之间的热量和质量传递。高炉炉料由铁矿石和焦炭的替代层组成。提出了一种新颖的方法来有效地模拟替代性负荷层结构对气流,传热,传质和化学反应的影响。对于不同类型的层应用不同的反应和传热特性。此外,分层CFD模型可准确预测发生固体物料熔化的内聚区(CZ)形状。 CZ的形状和位置通过基于矿石温度分布的迭代方法确定。介绍了CFD模型的理论结构和方法,并将其应用于工业高炉的模拟。该方法可用于高炉竖井工艺及其他具有周期性负荷结构配置的移动床系统的研究。

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