Coproduction of clean syngas and iron from woody biomass and natural goethite ore

Conversion of biomass into clean syngas was studied considering application of low-grade iron ore toreforming of tar. Chipped cedar with moisture content of 0.1–10.1 wt% was continuously pyrolysed at550 C, and the nascent volatiles were subjected to reforming at 690–800 C in a bed of mesoporoushemat...

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Main Authors: Kudo, S., Sugiyama, K., Norinaga, K., Li, Chun-Zhu, Akiyama, T., Hayashi, J.
Format: Journal Article
Published: Elsevier Science Ltd 2013
Subjects:
Online Access:http://hdl.handle.net/20.500.11937/19372
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author Kudo, S.
Sugiyama, K.
Norinaga, K.
Li, Chun-Zhu
Akiyama, T.
Hayashi, J.
author_facet Kudo, S.
Sugiyama, K.
Norinaga, K.
Li, Chun-Zhu
Akiyama, T.
Hayashi, J.
author_sort Kudo, S.
building Curtin Institutional Repository
collection Online Access
description Conversion of biomass into clean syngas was studied considering application of low-grade iron ore toreforming of tar. Chipped cedar with moisture content of 0.1–10.1 wt% was continuously pyrolysed at550 C, and the nascent volatiles were subjected to reforming at 690–800 C in a bed of mesoporoushematite derived from a type of natural goethite. The yield of heavy tar (b.p. > 350 C) decreased from18.8 to less than 0.01 wt% during the reforming mainly by its oxidation by the ore and conversion intocoke. The hematite was reduced completely to magnetite and further but incompletely to wustite. Theformation of iron was inhibited by high CO2/CO and H2O/H2 ratios of the gas phase. The coke-loaded magnetite/wustite mixture was, however, an excellent precursor of iron. Reheating the spent ore up to 800 C in the absence of the volatiles reduced the magnetite/wustite to wustite/iron obeying direct and indirect reduction mechanisms. Repeated cycles of such reheating and reforming converted the volatiles and ore into syngas with a total tar concentration as low as 10 mg Nm3-dry and coke-loaded iron, respectively. Contribution of the steam reforming with iron–wustite redox cycles became more important as the reforming-reheating cycles were repeated.
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institution Curtin University Malaysia
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last_indexed 2025-11-14T07:30:06Z
publishDate 2013
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spelling curtin-20.500.11937-193722017-02-28T01:28:21Z Coproduction of clean syngas and iron from woody biomass and natural goethite ore Kudo, S. Sugiyama, K. Norinaga, K. Li, Chun-Zhu Akiyama, T. Hayashi, J. Tar Coke Biomass Goethite Reforming Conversion of biomass into clean syngas was studied considering application of low-grade iron ore toreforming of tar. Chipped cedar with moisture content of 0.1–10.1 wt% was continuously pyrolysed at550 C, and the nascent volatiles were subjected to reforming at 690–800 C in a bed of mesoporoushematite derived from a type of natural goethite. The yield of heavy tar (b.p. > 350 C) decreased from18.8 to less than 0.01 wt% during the reforming mainly by its oxidation by the ore and conversion intocoke. The hematite was reduced completely to magnetite and further but incompletely to wustite. Theformation of iron was inhibited by high CO2/CO and H2O/H2 ratios of the gas phase. The coke-loaded magnetite/wustite mixture was, however, an excellent precursor of iron. Reheating the spent ore up to 800 C in the absence of the volatiles reduced the magnetite/wustite to wustite/iron obeying direct and indirect reduction mechanisms. Repeated cycles of such reheating and reforming converted the volatiles and ore into syngas with a total tar concentration as low as 10 mg Nm3-dry and coke-loaded iron, respectively. Contribution of the steam reforming with iron–wustite redox cycles became more important as the reforming-reheating cycles were repeated. 2013 Journal Article http://hdl.handle.net/20.500.11937/19372 Elsevier Science Ltd restricted
spellingShingle Tar
Coke
Biomass
Goethite
Reforming
Kudo, S.
Sugiyama, K.
Norinaga, K.
Li, Chun-Zhu
Akiyama, T.
Hayashi, J.
Coproduction of clean syngas and iron from woody biomass and natural goethite ore
title Coproduction of clean syngas and iron from woody biomass and natural goethite ore
title_full Coproduction of clean syngas and iron from woody biomass and natural goethite ore
title_fullStr Coproduction of clean syngas and iron from woody biomass and natural goethite ore
title_full_unstemmed Coproduction of clean syngas and iron from woody biomass and natural goethite ore
title_short Coproduction of clean syngas and iron from woody biomass and natural goethite ore
title_sort coproduction of clean syngas and iron from woody biomass and natural goethite ore
topic Tar
Coke
Biomass
Goethite
Reforming
url http://hdl.handle.net/20.500.11937/19372