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High-purity H2 production through glycerol steam reforming in multifunctional reactors

Title
High-purity H2 production through glycerol steam reforming in multifunctional reactors
Type
Article in International Scientific Journal
Year
2025
Authors
Macedo, MS
(Author)
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Kraleva, E
(Author)
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Ehrich, H
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Uriarte, NA
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Sanz, R
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Alique, D
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Soria, M. A.
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FEUP
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Luis Madeira
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FEUP
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Journal
Vol. 505
ISSN: 1385-8947
Publisher: Elsevier
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Publicação em ISI Web of Knowledge ISI Web of Knowledge - 0 Citations
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Authenticus ID: P-017-T72
Abstract (EN): Different hybrid intensified reactor configurations (sorption-enhanced reactor-SER-, membrane reactor-MR- and sorption-enhanced membrane reactor-SEMR-) were studied aiming to assess their benefits comparatively to a traditional reactor (TR) for high-purity H2 production through glycerol steam reforming (GSR). In the different reactor configurations, home-prepared materials have been employed: a NiAlLaOx reforming catalyst, an hydrotalcite-based sorbent for CO2 capture, and a composite-membrane with a Pd-thickness of ca. 9 mu m to selectively separate H2 from the reaction medium. An enhancement of 5.5 % in the H2 production was observed in the SER during the pre-breakthrough stage in comparison to the conventional TR. Further enhancement of the H2 yield was observed using the SEMR during pre-breakthrough, being attained an H2 yield of 6.6 molH2 & sdot; mol- 1G , in at 475 degrees C and retentate pressure of 4.0 bar (1.0 bar in the permeate side), which represents an average enhancement of 80 % in comparison to the TR configuration, evidencing also the positive effect of the membrane upon being coupled with the CO2-selective sorbent. The simultaneous removal of both H2 and CO2 clearly improves the overall GSR performance, allowing to obtain highly-pure H2 in both retentate and permeate sides during pre-breakthrough. It was also demonstrated that the use of a real crude glycerol effluent in the SEMR allows to obtain highly-pure renewable H2 through steam reforming in both reactor sides, thus evidencing a possible viable path for biomass-based H2 production, while also allowing to promote the economics of the biodiesel manufacturing process.
Language: English
Type (Professor's evaluation): Scientific
No. of pages: 15
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