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    CO2捕集与原位甲烷化转化技术的研究进展

    Research progress in CO2 capture and in situ methanation conversion technologies

    • 摘要: 在全球碳中和背景下,二氧化碳(CO2)的高效捕集与资源化利用成为应对气候变化的关键技术方向。传统碳捕集、利用与封存(CCUS)技术在运输、封存安全性及全流程能耗方面仍面临诸多挑战。将CO2捕集与甲烷化转化原位耦合,通过“捕集-转化”一体化流程直接生成甲烷,为实现CO2减排与能源储存协同提供了新的解决路径。本文系统综述了吸收法、膜分离法和吸附法三类主流CO2捕集技术的基本原理、材料体系及性能特点,重点分析了其与原位甲烷化反应的耦合路径与技术进展。围绕吸收-甲烷化、膜分离-甲烷化及吸附-甲烷化三类耦合体系,归纳了代表性材料与工艺的研究成果,并进一步讨论了低浓度CO2及直接空气捕集(DAC)场景下捕集-甲烷化耦合的特殊挑战,比较了不同耦合路线在能耗、转化效率、稳定性及适用场景上的差异。最后,总结了当前耦合技术在能量协同、材料稳定性、热力学与动力学匹配以及氢源供给等方面面临的关键瓶颈,并展望了低能耗材料设计、多元化氢源集成及多场景应用拓展等未来发展方向,为CO2捕集与甲烷化耦合技术的工程化与规模化应用提供参考。

       

      Abstract: In the context of global carbon neutrality, the efficient capture and utilization of carbon dioxide (CO2) has become a key technological pathway for mitigating climate change. Conventional carbon capture, utilization and storage (CCUS) technologies still face significant challenges in terms of transportation costs, storage safety, and high energy consumption across the entire process. Integrating CO2 capture with in situ methanation through a “capture-conversion” integrated process enables the direct production of methane, providing a promising route for the synergistic realization of CO2 emission reduction and energy storage. This review systematically summarizes the fundamental principles, material systems, and performance characteristics of three major CO2 capture technologies, namely absorption, membrane separation, and adsorption, with a particular focus on their coupling strategies and recent advances in in-situ methanation. Representative materials and process designs for absorption-methanation, membrane separation-methanation, and adsorption-methanation coupling systems are discussed, with further attention to the specific challenges of capture-methanation coupling under low-concentration CO2 and direct air capture (DAC) conditions. The differences among these coupling routes in terms of energy consumption, conversion efficiency, stability, and applicable scenarios are comparatively analyzed. Finally, the key challenges faced by current coupled systems, including energy synergy, material stability, thermodynamic and kinetic matching, and hydrogen supply, are summarized, and future research directions are proposed, such as the development of low-energy-consumption materials, integration of diversified hydrogen sources, and expansion toward multi-scenario applications. This review aims to provide a reference for the engineering development and large-scale implementation of CO2 capture and methanation coupling technologies.

       

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