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碳捕集吸收剂的抗降解剂研究进展与展望

Research Progress and Prospect of Absorbent Anti-Degradation Agent for CO2 Capture

  • 摘要:
    目的 CO2捕集技术中,化学吸收法因吸收效率高、反应稳定而被广泛使用,是当前燃烧后CO2捕集的主流技术。然而吸收剂在循环过程中易发生热降解、氧化降解和化学降解,导致捕集成本显著增加。
    方法 文章系统综述了胺类吸收剂的降解机理和抗降解剂的研究进展。
    结果 热降解过程主要受温度和CO2负载量影响,通过氨基甲酸酯聚合、环化等路径进行;氧化降解由氧气引发,化学降解则由烟气中SO2、NOx等杂质引起,金属离子(如Fe2+)可催化自由基链式反应。抗降解剂分为4类:氧化膜型缓蚀剂、金属捕获剂、自由基捕获剂和氧气捕获剂。在传统醇胺体系中,体积分数为0.1%的百里酚可显著抑制吸收剂降解并提升CO2吸收能力。在混合胺体系中,EDTA和K系列抗氧剂表现出良好效果;在少水或无水吸收剂中,乙醛肟可使30 d降解率降至4.00%。当前抗降解剂研究仍面临机理不清、长期稳定性验证不足、环境友好性待评估等挑战。
    结论 未来需深化多机制协同作用规律研究,开发绿色高效的新型抗降解剂,并加强真实工况下的长周期运行验证,为CCUS技术降本增效提供支撑。

     

    Abstract:
    Objective Among carbon dioxide capture technologies, the chemical absorption method is widely adopted due to its high absorption efficiency and stable reaction kinetics, making it the predominant approach for post-combustion CO2 capture. However, amine-containing solvents are prone to thermal degradation, oxidative degradation, and chemical degradation during circulation, significantly increasing capture costs.
    Method This study systematically reviewed the degradation mechanisms of amine-based solvents and recent advancements in anti-degradation agents.
    Result The thermal degradation process is primarily influenced by temperature and the amount of CO2 absorbed, occurring via pathways such as carbamate polymerization and cyclization. Oxidative degradation is triggered by oxygen, while chemical degradation results from impurities like SO2 and NOx in flue gas, with metal ions (e.g., Fe2+) catalyzing radical chain reactions. Anti-degradation agents include oxidation film inhibitors, metal scavengers, radical scavengers, and oxygen scavengers. In traditional amine-based systems, a 0.1% volume fraction of p-cresol significantly inhibits absorbent degradation and enhances CO2 absorption capacity. In the mixed amine systems, EDTA and K-series antioxidants demonstrated superior performance. In anhydrous absorbents, acetaldehyde oxime reduced the 30-day degradation rate to 4.00%. Current research still faces challenges including unclear mechanistic understanding, insufficient long-term stability validation, and unassessed environmental compatibility.
    Conclusion Future efforts should focus on elucidating multi-mechanism synergistic interactions, developing novel green and efficient anti-degradation agents, and conducting rigorous long-term performance evaluations under practical conditions to support cost reduction and efficiency improvement in CCUS technology.

     

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