化学链燃烧
化学
热解
碳纤维
制氢
生物量(生态学)
氧气
原材料
化学工程
氢
钾
产量(工程)
无机化学
氧化还原
tar(计算)
核化学
合成气
沉积(地质)
碳酸钾
作者
Donghai Hu,Bianbian Gao,Meijie Du,Guoqiang Cao,Jiejie Huang,Jiantao Zhao,Chunyu Li,Yitian Fang
标识
DOI:10.1016/j.ijhydene.2025.152966
摘要
Chemical looping hydrogen generation (CLHG) using biomass pyrolysis volatiles matters (VMs) offers a promising hydrogen production method that utilizes highly reactive feedstocks and avoids ash-oxygen carrier separation. However, application is hindered by inefficient tar conversion and oxygen carrier (OC) deactivation from carbon deposition. This study examines potassium modification to enhance Fe-based OC performance in CLHG with VMs. The results show that the K-modified OCs significantly improve H 2 yield, with 10 wt % KNO 3 loading amount providing the most economical H 2 production. Potassium modification can promote steam cracking, increasing H 2 generation rate and reducing carbon deposition by ∼76 %, achieving over 99 % H 2 purity. Optimizing the oxygen-to-fuel ratio ( φ = 2) and raising temperature foster the active hydrogen-producing phase. After five redox cycles, K-modified OCs maintains over 94 % of its initial H 2 yield, demonstrating excellent redox reactivity, carbon deposition resistance, and cyclic stability for efficient biomass-based CLHG process. • Studied CLHG processes of the K-modified Fe-based OCs with biomass pyrolysis VMs. • 10 wt % KNO 3 loading amount can achieve the most economical H 2 production. • Potassium doping reduces carbon deposition by 76 % and achieves H 2 purity over 99 %. • The potassium-modified OC maintaining 94 % of its initial H 2 yield after five cycles.
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