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美利体育登录入口官网:多催化场辅助钢铁副产品气体中低浓度二氧化碳转化实现协同钢铁-化工生产

Multi-Catalytic-Field Assisted Conversion of Low-Concentration CO2in Steel Byproduct Gas for Synergistic Steel-Chemical Production

作者:Qiannan Li;Guangsheng Wei;Jian Qi;Kun Zhao;Baochen Han;

DOI:https://doi.org/10.1021/acs.accounts.5c00348

发表时间:2025年

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美利体育登录入口官网:摘要

点击复制章节链接。章节链接已复制!综述钢铁工业作为全球主要的CO?排放源,迫切需要在碳中和路径上实现技术突破。现有减排技术如碳捕集、利用与储存在经济性上存在不足,而副产气体的全面利用可能导致钢铁企业能源短缺。钢铁副产气体(如转炉气)成分复杂,传统燃烧方式会导致高排放。在此背景下,提出的低浓度CO?(LCC)系统展现出双重优势:(1)提高副产气体的热值,满足高能耗炼钢工艺的需求;(2)实现燃烧后高纯度CO?的回收,从而以最小的分离能耗实现碳中和路径。然而,气体中的CO和N?等成分会导致竞争吸附、催化选择性低和反应路径复杂,亟需催化机制和工艺创新方面的突破。本综述基于作者团队在CO?催化还原和钢铁冶金领域的研究积累,系统回顾了LCC催化转化的关键科学问题和技术进展,以转炉气为典型案例。首先,针对选择性CO?吸附的挑战,探索了复杂气体环境中不同吸附模型的竞争机制。其次,在活化和反应路径调控方面,分析了CO、N?等气体对CO?还原反应的影响规律。此外,通过深入分析,提出了新型场景下CO?吸附的新原理和工艺、催化剂匹配与定向设计、工业环境条件下材料表面重构等新思路。最后,将LCC还原技术整合到钢铁-化工协同生产技术路线中,重点阐明工程应用过程中介观-宏观桥梁的科学设计原理,为各类工业烟气和尾气的处理提供参考。LCC催化还原技术通过“源头转化-末端利用”助力钢铁行业碳减排,但其产业化需要理论与工程的协同创新。未来应聚焦复杂气相条件下催化表面与界面机制,开发高效稳定的催化剂,设计“催化-热值-化工”一体化智能系统,推动钢铁行业近零碳转型。该技术不仅支持钢铁行业碳中和,也为化工和能源领域CO?资源利用提供了跨学科解决方案。


美利体育登录入口官网:Abstract

AbstractClick to copy section linkSection link copied!ConspectusThe iron and steel industry, as a major global CO2 emitter, urgently requires technological breakthroughs in its carbon neutrality pathway. Existing emission reduction technologies such as carbon capture, utilization and storage are economically insufficient, while the full utilization of byproduct gas may lead to energy shortages in steel enterprises. Steel byproduct gases (e.g., converter gas) have complex composition, and traditional combustion results in high emissions. In this context, the proposed low concentration CO2 (LCC) system demonstrates dual advantages: (1) enhancing the calorific value of the byproduct gas to meet the demands of high-energy steelmaking processes and (2) achieving the recovery of high-purity CO2 postcombustion, thereby facilitating the carbon neutrality pathway with minimized separation energy consumption. However, components such as CO and N2 in the gas lead to competitive adsorption, low catalytic selectivity, and complex reaction pathways, necessitating breakthroughs in catalytic mechanisms and process innovation.This Account based on the research accumulation of the authors’ team in the field of CO2 catalytic reduction and iron and steel metallurgy systematically reviews the key scientific issues and technological advancements in the catalytic conversion of LCC, using converter gas as a typical case. First, addressing the challenge of selective CO2 adsorption, the competitive mechanisms of different adsorption models in complex gas environments were explored. Second, in terms of activation and reaction pathway regulation, the influence patterns of gases such as CO and N2 on the CO2 reduction reaction are analyzed. Furthermore, through in-depth analysis, new principles and processes for CO2 adsorption in novel scenarios, catalyst matching, and directional design, material surface reconstruction under industrial environmental conditions is considered. Finally, we integrate the LCC reduction technology into the synergistic steel-chemical production technology route, focusing on elucidating the scientific design principles of meso-macro bridging in the engineering application process, providing a reference for the treatment of various industrial flue gases and tail gases.The LCC catalytic reduction technology aids steel industry carbon emission reduction through “source conversion-end utilization”, but its industrialization requires collaborative innovation in theory and engineering. Future efforts should focus on the catalytic surface and interface mechanisms under complex gaseous conditions, develop highly efficient and stable catalysts, and design an integrated intelligent system of “catalysis-calorific value-chemical” to promote the near-zero carbon transformation in the steel industry. This technology not only supports carbon neutrality in the steel industry but also provides interdisciplinary solutions for CO2 resource utilization in the chemical and energy sectors.ACS PublicationsCopyright ? 2025 American Chemical SocietySubjectswhat are subjects Article subjects are automatically applied from the ACS Subject Taxonomy and describe the scientific concepts and themes of the article. Adsorption Carbon capture and storage Catalysts Catalytic reactions Gases Inorganic carbon compounds Oxides Redox reactions Transfer reactions


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