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首页> 外文期刊>The Canadian Journal of Chemical Engineering >Modelling the Complex Interactions Between Reformer and Reduction Furnace in a Mldrex-Based Iron Plant
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Modelling the Complex Interactions Between Reformer and Reduction Furnace in a Mldrex-Based Iron Plant

机译:对基于Mldrex的铁厂中重整炉和还原炉之间的复杂相互作用进行建模

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This article studies the complex mass and energy interactions between the reformer and the reduction furnace in an iron plant based on Midrex technology. The methodology consists in the development of rigorous first principle models for the reformer and the reduction furnace, in addition to models for auxiliary units such as heat recuperator, scrubber and compressor. In this regard, a one-dimensional heterogeneous model for the catalyst tubes which takes into account the intraparticle mass transfer resistance was developed for the reformer unit, while the furnace was modelled with bottom-firing configuration. As for the reduction furnace, the mathematical model was based on the concept of shrinking core model. The furnace was modelled as a moving bed reactor taking into consideration the effects of water gas shift reaction, steam reforming of methane and carburisation reactions. The model was first validated using data from a local iron/steel plant and was then simulated to determine key output variables such as bustle gas temperature, degree of metalisation, carbon content, ratio of hydrogen to carbon monoxide, reductants to oxidants ratio and required compression energy. The effects of key input parameters on the performance of the plant were studied. These parameters included recycle ratio, scrubber exit temperature, injected oxygen flow rate, flow rate of natural gas after reformer, to transition zone, to reformer and to cooling zone. Useful profiles were compiled to illustrate the results of the sensitivity analysis. These results may serve as guidelines for a further optimisation of the plant.
机译:本文研究了基于Midrex技术的炼铁厂重整炉和还原炉之间复杂的质量和能量相互作用。该方法包括为重整器和还原炉开发严格的第一原理模型,以及用于辅助单元(如换热器,洗涤塔和压缩机)的模型。在这方面,针对重整单元开发了考虑到颗粒内传质阻力的催化剂管的一维异质模型,而炉子采用底部燃烧构造进行了建模。对于还原炉,数学模型是基于缩核模型的概念。考虑到水煤气变换反应,甲烷的蒸汽重整和渗碳反应的影响,将熔炉建模为移动床反应器。首先使用本地钢铁厂的数据对模型进行验证,然后对模型进行仿真,以确定关键的输出变量,例如,热气温度,金属化程度,碳含量,氢与一氧化碳的比例,还原剂与氧化剂的比例以及所需压缩率能源。研究了关键输入参数对植物性能的影响。这些参数包括再循环比,洗涤塔出口温度,注入的氧气流速,重整器,过渡区,重整器和冷却区之后的天然气流速。汇编了有用的资料以说明敏感性分析的结果。这些结果可以作为进一步优化植物的指导。

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