合成气
介质阻挡放电
非热等离子体
等离子体
体积流量
材料科学
热的
电介质
流量(数学)
热能
分析化学(期刊)
核工程
热力学
化学
氢
机械
色谱法
物理
光电子学
有机化学
核物理学
工程类
作者
Maxwell Klein,Joshua Jack
标识
DOI:10.26434/chemrxiv-2025-q2skr
摘要
This study investigates the non-thermal plasma (NTP)-driven conversion of humidified CO₂ into syngas (H₂:CO:CO2) using a dielectric barrier discharge (DBD) reactor. NTP enables CO₂ and H₂O dissociation at near-ambient conditions through high-energy electron collisions, eliminating the need for thermal input or expensive catalysts. While prior studies have examined gas composition and humidity effects, the influence of specific energy input (SEI) on syngas yield and energy efficiency remains underexplored. Here, we systematically evaluate the relationship between SEI, flow rate, and H2/CO composition. Experiments conducted in a coaxial DBD reactor demonstrate syngas generation with tunable H₂/CO ratios ranging from 0.109 to 0.157. Results indicate that higher flow rates enhance energy efficiency, while increasing SEI leads to a plateau in CO and H₂ production, suggesting limits in ionization efficiency. Overall, these findings can inform the design of next-generation NTP systems towards a circular carbon economy.
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