超临界流体
生物量(生态学)
制氢
氨
环境科学
废物管理
氢
生物质气化
氢气储存
生产(经济)
制浆造纸工业
化学
生物燃料
农学
工程类
有机化学
经济
宏观经济学
生物
作者
F.J. Gutiérrez Ortiz,Francisco López-Guirao
标识
DOI:10.1016/j.enconman.2025.119654
摘要
• Hydrogen is produced by supercritical water gasification of wet biomass. • Hydrogen is purified and converted into ammonia for its storage using the Haber-Bosch process. • The new process was evaluated from a thermodynamic point of view and by a techno-economic analysis. • Exergy efficiencies of 33.6 % to 35.4 %, and energy efficiencies of 37.0 % to 40.0 % were obtained. • A capacity of 100 t/h is required to achieve competitiveness. A new energy self-sufficient process is designed, developed, and evaluated to produce hydrogen by supercritical water gasification from wet biomass or organic waste and store it as ammonia, produced by the Haber-Bosch process, using energy integration to establish an upper limit for the application of both technologies with improved overall energy efficiency. The assessment of the process is carried out with the aid of Aspen Plus. For an aqueous feed of 10 t/h with 32 wt% biomass, 745 kg/h of almost pure ammonia (equivalent to 132 kg/h of hydrogen) are produced, sequestrating 3 t/h of carbon dioxide and generating 1.8 MW of net electrical power. Exergy efficiencies are between 33.6 % and 35.4 %, and energy efficiencies are between 37.0 % and 40.0 %. The distribution of lost exergy flow for sets of process units, so the main lost work occurs in reactors (about 51 %) and heat exchangers (about 26 %). In addition, a techno-economic analysis of the process is carried out, concluding that the feed should be ten times higher (100 t/h) to achieve competitiveness with minimum selling prices for ammonia and hydrogen of 0.70 $/kg and 3.90 €/kg, respectively.
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