Magnone Edoardo, Shin Min Chang, Park Jung Hoon
Department of Chemistry & Biochemical Engineering, Dongguk University, Manhae gwan, Room E629, 30, Pildong-ro 1gil, Jung-gu, Seoul 100-715, Republic of Korea.
Polymers (Basel). 2025 May 18;17(10):1387. doi: 10.3390/polym17101387.
Global warming, driven significantly by carbon dioxide (CO) emissions, necessitates immediate climate action. Consequently, CO capture is essential for mitigating carbon output from industrial and power generation processes. This study investigates the effect of absorbent temperature on CO separation performance using gas-liquid polymeric hollow fiber membrane (HFM) contactors. It summarizes the relationship between liquid-phase temperature and CO capture efficiency across various physical and chemical absorption processes. Twelve relevant studies (nine experimental, three mathematical), providing a comprehensive database of 104 individual measurements, were rigorously analyzed. Liquid-phase temperature significantly influences CO separation performance in HFM contactors. In particular, the present analysis reveals that, overall, for every 10 °C temperature increase, physical absorption performance decreases by approximately 3%, while chemical absorption performance improves by 3%, regardless of other parameters. This empirical law was confirmed by direct comparisons with additional experimental results. Strategies for further development of these processes are also proposed.
由二氧化碳(CO)排放显著驱动的全球变暖,需要立即采取气候行动。因此,CO捕集对于减少工业和发电过程中的碳排放至关重要。本研究使用气液聚合物中空纤维膜(HFM)接触器研究吸收剂温度对CO分离性能的影响。它总结了各种物理和化学吸收过程中液相温度与CO捕集效率之间的关系。对十二项相关研究(九项实验研究、三项数学研究)进行了严格分析,提供了包含104次单独测量的综合数据库。液相温度对HFM接触器中的CO分离性能有显著影响。特别是,目前的分析表明,总体而言,在不考虑其他参数的情况下,每升温10°C,物理吸收性能大约下降3%,而化学吸收性能提高3%。通过与其他实验结果的直接比较证实了这一经验规律。还提出了这些过程进一步发展的策略。