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Synthesis Gas Production from Gasification of Woody Biomass  

Cho, Won-Jun (R&D Division, Korea Gas Corporation)
Mo, Yong-Gi (R&D Division, Korea Gas Corporation)
Song, Taek-Yong (R&D Division, Korea Gas Corporation)
Baek, Young-Soon (R&D Division, Korea Gas Corporation)
Kim, Seung-Soo (Department of Chemical Engineering, Kangwon National University)
Publication Information
Transactions of the Korean hydrogen and new energy society / v.21, no.6, 2010 , pp. 587-594 More about this Journal
Abstract
Hydrogen is an alternative fuel for the future energy which can reduce pollutants and greenhouse gases. Synthesis gas has played an important role of synthesizing the valuable chemical compounds, for example methanol, DME and GTL chemicals. Renewable biomass feedstocks can be potentially used for fuel and chemicals. Current thermal processing techniques such as fast pyrolysis, slow pyrolysis, and gasification tend to generate products with a large slate of compounds. Lignocellulose feedstocks such as forest residues are promising for the production of bio-oil and synthesis gas. Pyrolysis and gasification was investigated using thermogravimetric analyzer (TGA) and bubbling fluidized bed gasification reactor to utilize forest woody biomass. Most of the materials decomposed between $320^{\circ}C$ and $380^{\circ}C$ at heating rates of $5{\sim}20^{\circ}C$/min in thermogravimetric analysis. Bubbling fluidized bed reactor was used to study gasification characteristics, and the effects of reaction temperature, residence time and feedstocks on gas yields and selectivities were investigated. With increasing temperature from $750^{\circ}C$ to $850^{\circ}C$, the yield of char decreased, whereas the yield of gas increased. The gaseous products consisted of mostly CO, $CO_2$, $H_2$ and a small fraction of $C_1-C_4$ hydrocarbons.
Keywords
Woody biomass; Pyrolysis gasification facility; Synthesis gas; Fluidized bed reactor; Thermal gravimetric analyzer(TGA); Char; DME;
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