Author:
Lee Woo Jin,Li Chaoen,Patel Jim
Abstract
Steam-CO2 reforming of biomass derived synthesis gas (bio-syngas) was investigated with regard to the steam concentration in the feed using Rh-loaded alumina foam monolith catalysts, which was also accompanied by thermodynamic equilibrium calculation. With 40 vol % steam addition, steam methane reforming and water gas shift reaction were prevailed at the temperature below 640 °C, above which methane dry reforming and reverse-water gas shift reaction were intensified. Substantial change of activation energy based on the methane conversion was observed at 640 °C, where the reaction seemed to be shifted from the kinetic controlled region to the mass transfer controlled region. At the reduced steam of 20 vol %, the increase in the gas velocity led to the increase in the contribution of steam reforming. Comparing to the absence of steam, the addition of steam (40 vol %) resulted in the increase in the production of H2 and CO2, which in turn increased the H2/CO ratio by 95% and decreased the CO/CO2 ratio by 60%. Rh-loaded alumina monolith was revealed to have a good stability in upgrading of the raw bio-syngas.
Subject
Physical and Theoretical Chemistry,Catalysis
Cited by
7 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
1. Global Methanol Production/Demand and Prospects;Reference Module in Chemistry, Molecular Sciences and Chemical Engineering;2024
2. Novel nickel ceramic filter for hot gas cleanup of tars from syngas;Fuel Processing Technology;2023-06
3. Iron-loaded activated carbon as a tar cracking/reforming catalyst in the production of clean producer gas from oil palm biomass;INTERNATIONAL CONFERENCE ON MATERIALS ENGINEERING AND MANUFACTURING SYSTEMS: ICMEMS2022;2023
4. Process modeling and apparatus simulation for syngas production;Advances in Synthesis Gas : Methods, Technologies and Applications;2023
5. Methanol Production From Bio-syngas;Reference Module in Chemistry, Molecular Sciences and Chemical Engineering;2023