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Multi-objective Optimization of Ironmaking in the Blast Furnace with Top Gas Recycling

机译:高炉煤气回收高炉炼铁的多目标优化

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Concern about the growing carbon dioxide content in the atmosphere has induced increasing research activities in the search for means to suppress the emissions of CO_(2) in primary steelmaking. Blast furnace top gas recycling, combined with CO_(2) stripping, has been proposed as a promising concept. The paper presents a numerical analysis of top gas recycling under massive oxygen enrichment of the blast based on a simulation of the process chain from coal and ore to liquid steel. Because of the conflicting goals of reducing both production costs and emissions, the task is formulated as a multi-objective optimization problem. The optimal states of the system studied were found to vary significantly on the Pareto frontier, which demonstrates that fundamentally different states of operation may be selected to strongly reduce the emissions, still keeping the steelmaking economically feasible. The findings stress the importance of selecting a proper state of operation for achieving a cost-efficient production of steel with reduced environmental impact. The results also show how emissions can be “artificially” reduced by minimizing the arising emissions within the system boundary.
机译:对大气中二氧化碳含量不断增长的关注促使人们在寻找抑制初级炼钢过程中CO_(2)排放的手段方面开展了越来越多的研究活动。高炉炉顶气体再循环结合CO_(2)汽提已被提出作为一个有前途的概念。本文通过对从煤,矿石到液态钢的工艺链进行仿真,对高炉大量富氧条件下的顶部气体再循环进行了数值分析。由于减少生产成本和减少排放的目标相互矛盾,因此将任务表述为多目标优化问题。发现所研究系统的最佳状态在帕累托边界上有显着变化,这表明可以选择根本不同的运行状态以大大减少排放,同时仍使炼钢在经济上可行。研究结果强调了选择适当的操作状态以实现具有成本效益的钢生产并减少环境影响的重要性。结果还表明,如何通过最大限度地减少系统边界内产生的排放来“人为”减少排放。

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