Mathematical Modelling and Computational Simulation of Oxy-Combustion Carbon Capture Using Ion-Transport Membranes
イオン輸送膜を用いた酸素燃焼CO2回収の数学モデリングと計算シミュレーション (AI 翻訳)
Rached Ben-Mansour
🤖 gxceed AI 要約
日本語
カーボンキャプチャー技術の一つである酸素燃焼CO2回収に対するイオン輸送膜を用いた数学モデリングと計算シミュレーションを発表。モデルは実験データと良好な一致を示し、工業応用への可能性を提示。酸素分離と酸素燃焼の効率向上に関する知見を提供。
English
This paper presents mathematical modeling and simulation of oxy-combustion carbon capture using ion-transport membranes. The model is validated against experimental data, showing good agreement. It explores efficiency improvements for oxygen separation and combustion, offering insights for industrial carbon capture applications.
Unofficial AI-generated summary based on the public title and abstract. Not an official translation.
📝 gxceed 編集解説 — Why this matters
日本のGX文脈において
本論文はカーボンキャプチャーのモデリング手法を提供しており、日本のGX政策におけるCO2回収技術の開発に直接貢献する可能性がある。ただし、実証段階にはまだ遠く、具体的な政策連動は薄い。
In the global GX context
This paper contributes to the global carbon capture research by providing a validated model for oxy-combustion with ion-transport membranes. It supports the development of efficient CCUS technologies, which are crucial for meeting climate targets.
👥 読者別の含意
🔬研究者:This paper offers a validated mathematical model for oxy-combustion carbon capture, useful for further simulation studies.
🏢実務担当者:Engineers in carbon capture can use the model's insights for reactor design and optimization.
📄 Abstract(原文)
Global warming is the most challenging environmental problem and is expected to remain so for the next few decades. In June 2025, scientists predicted that it would be extremely difficult to meet the 2030 global temperature reduction milestone. Therefore,it is necessary to double our efforts to reduce global warming through several approaches,including higher renewable energy usage, energy efficiency, and carbon capture. Mathematical modelling and computational simulation are important tools for modelling complex processes that occur in important environmental applications such as carbon capture. In this paper, we present the mathematical modelling of a carbon capture method that allows simultaneous oxygen production and combustion, to allow direct carbon capture after water vapor condensation. The study lays out the development of an oxy-fuel combustion model integrated with an oxygen separation model in two mini-reactors. The model has been validated against recent experimental oxyfuel combustion in a button-cell reactor, and very good agreement has been obtained. The normalized Root Mean Square (RMS) value for the difference between the experimental and predicted results of the permeated oxygen for nonreactive cases was around 4%, and for the reactive cases 6%respectively. The validated model was used to simulate oxygen separation and oxyfuel combustion in annular reactors that can be used for carbon capture in industrial applications as one of the solutions to fight global warming. It was found that it is more efficient to have the air flow in the inner tube for air velocities ranging between 0.05 to 2 m/s. As the sweep velocity increased from 0.05 to 2.5 m/s, the separated oxygen mass flow rate increased by a factor of 5 or higher. For the reacting cases, feeding 2% methane oxy-combustion has increased the oxygen permeation by as much as 17% for annular oxy-combustion cases and by 12% for tubular oxy-combustion cases. The sweeping gas velocity increase seems to be more effective in increasing the oxygen permeation. This effect is still valid under reacting cases.
🔗 Provenance — このレコードを発見したソース
- crossref https://doi.org/10.37256/cm.7320268781first seen 2026-05-14 23:45:56
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