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Multiobjective Optimization of Top Gas Recycling Conditions in the Blast Furnace by Genetic Algorithms

机译:基于遗传算法的高炉炉顶气体循环条件多目标优化。

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摘要

Limited natural resources and a growing concern about the potential effect of carbon dioxide emissions on the world's climate have triggered a search of ways to suppressing the emissions of CO_2 in primary steelmaking. A possible future solution is to strip CO_2 from the blast furnace top gas, feeding back the gas to the tuyere level. The work reported in this article explores states of an integrated steel plant that arise if both production costs and emissions are simultaneously minimized. This multiobjective problem is tackled by genetic algorithms using a predator-prey strategy for constructing the Pareto-frontier of nondominating solutions. Four alternative ways of treating the top gas recycling problem are explored, and the resulting solutions are analyzed with respect to the two objectives and to the internal states of the plant they correspond to. Conclusions are drawn concerning the solutions in terms of technical feasibility and complexity.
机译:有限的自然资源以及对二氧化碳排放对世界气候的潜在影响的日益关注,触发了寻找抑制初级炼钢过程中CO_2排放的方法。未来可能的解决方案是从高炉炉顶煤气中汽提CO_2,将煤气反馈到风口水平。本文报道的工作探讨了同时降低生产成本和排放量的综合钢铁厂的状况。这个多目标问题是通过遗传算法使用捕食者-猎物策略来解决的,以构造非支配解的帕累托边界。探索了四种处理顶部气体再循环问题的替代方法,并针对这两个目标及其所对应的工厂内部状态分析了所得的解决方案。得出关于解决方案的技术可行性和复杂性的结论。

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