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CO2 Emission Reduction and Exergy Analysis of SMART Steelmaking System Adaptive for Flexible Operating Conditions

机译:适用于灵活工况的SMART炼钢系统的CO 2 减排和火用分析

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The iron and steel industry accounts for approximately 45% of the CO_(2) emissions in the Japanese industrial sector, and therefore is investing in improvements to reduce the CO_(2) emissions. Current projections are for the stock of scrap iron and steel products to increase in the future. Being already in the reduced state, such scrap can be regenerated to steel with lower CO_(2) emissions than iron ore. The “Packed bed type Partial Smelting Reduction process” (PSR), which concurrently smelts scrap and reduces iron ore, is a promising method to utilize scrap iron. This work evaluates the feasibility of combining PSR with top gas recycling, a process commonly called the ‘SMART steelmaking system’. In the SMART system, CO_(2) derived from the PSR gas is reduced into CO or CH_(4) and recycled to the furnace as a reducing agent. The integrated whole process including shaft furnace, CO_(2) electrolysis, pressure swing adsorption, and other conventional auxiliary systems was modelled in Aspen Plus, and CO_(2) emissions reduction and exergy analysis of the system adaptive for flexible operating conditions was performed. Increasing the scrap ratio by 5% consistently lead to a 4% reduction in CO_(2) emissions. Similarly, increasing the CO input rate by 100 kg/THM consistently resulted in a reduction of CO_(2) emissions of approximately 3%. The maximum CO_(2) emissions reduction of 22% was achieved at the condition of the operably highest scrap ratio and CO input rate.
机译:钢铁行业约占日本工业部门CO_(2)排放量的45%,因此正在投资进行改进以减少CO_(2)排放量。当前的预测是未来废铁和钢铁产品的库存会增加。这种废钢已经处于还原状态,可以再生为比铁矿石具有更低CO_(2)排放的钢。同时填充冶炼废料和还原铁矿石的“填充床式部分熔融还原工艺”(PSR)是一种利用废铁的有前途的方法。这项工作评估了将PSR与顶部气体再循环(通常称为“ SMART炼钢系统”)结合使用的可行性。在SMART系统中,源自PSR气体的CO_​​(2)被还原为CO或CH_(4),并作为还原剂循环到熔炉中。在Aspen Plus中对包括竖炉,CO_(2)电解,变压吸附和其他常规辅助系统在内的整个过程进行了建模,并对系统进行了CO_(2)减排和火用分析,以适应灵活的工作条件。废品率提高5%始终可以使CO_(2)排放降低4%。同样,将CO输入速率提高100 kg / THM,始终可以减少大约3%的CO_(2)排放。在可操作的最高废品率和一氧化碳输入速率的条件下,最大CO_(2)排放量减少了22%。

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