Title |
Hydrothermal gasification of sorbitol: H2 optimisation at high carbon gasification efficiencies |
ID_Doc |
65108 |
Authors |
Paida, VR; Brilman, DWF; Kersten, SRA |
Title |
Hydrothermal gasification of sorbitol: H2 optimisation at high carbon gasification efficiencies |
Year |
2019 |
Published |
|
DOI |
10.1016/j.cej.2018.10.008 |
Abstract |
Using both experiments and modelling, hydrothermal gasification of sorbitol (SB) aiming at maximal carbon to gas conversion and H-2 production was investigated over a wide temperature range (270-350 degrees C). Kinetics were studied in a continuous tubular reactor using a Pt/gamma-Al2O3 catalyst. The addition of N-2, resulting in lower H-2 concentrations in the liquid phase, was found to have a beneficial effect in terms of higher H-2 yield without compromising on the carbon gasification. The highest H-2 yield obtained in this work was 4 mol H-2/mol SB. Existing reaction schemes for sorbitol gasification were used to derive a path-lumped scheme. A multi-phase reactor model including a path-lumped scheme and gas-liquid-solid mass transfer was developed and parameterized based on datasets with varying temperature, space velocity, inlet gas composition (N-2 or N-2) and gas-liquid flow ratio. The developed model was used to provide guidelines for the design of an industrial reactor for the gasification of 10 tons/h of 10 wt% aqueous sorbitol. The effect of N-2 stripping and industrially attainable k(L) a values were found to boost the H-2 yield from 4 to 12 mol H-2/mol SB making it an attractive process for further consideration. |
Author Keywords |
Sorbitol; Hydrothermal gasification; Hydrogen; Kinetics; Mass transfer |
Index Keywords |
Index Keywords |
Document Type |
Other |
Open Access |
Open Access |
Source |
Science Citation Index Expanded (SCI-EXPANDED) |
EID |
WOS:000450105700034 |
WoS Category |
Engineering, Environmental; Engineering, Chemical |
Research Area |
Engineering |
PDF |
https://doi.org/10.1016/j.cej.2018.10.008
|