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Highly Nickel-Loaded ?-Alumina Composites for a Radiofrequency-Heated, Low-Temperature CO2 Methanation Scheme

Academic Article
Publication Date:
2020
abstract:
In this work, we joined highly Ni-loaded ?-AlO composites, straightforwardly prepared by impregnation methods, with an induction heating setup suited to control, almost in real-time, any temperature swing at the catalyst sites (i. e., "hot spots" ignition) caused by an exothermic reaction at the heart of the power-to-gas (P2G) chain: CO methanation. We have shown how the combination of a poor thermal conductor (?-AlO) as support for large and highly interconnected nickel aggregates together with a fast heat control of the temperature at the catalytic bed allow part of the extra-heat generated by the reaction exothermicity to be reused for maintaining the catalyst under virtual isothermal conditions, hence reducing the reactor power supply. Most importantly, a highly efficient methanation scheme for substitute natural gas (SNG) production (X (Formula presented.) up 98 % with >99 % S (Formula presented.)) under operative temperatures (150-230 °C) much lower than those commonly required with traditional heating setup has been proposed. As far as sustainable and environmental issues are concerned, this approach re-evaluates industrially attractive composites (and their large-scale preparation methods) for application to key processes at the heart of P2G chain while providing robust catalysts for which risks associated to nano-objects leaching phenomena are markedly reduced if not definitively suppressed.
Iris type:
01.01 Articolo in rivista
Keywords:
CO methanation 2; heterogeneous catalysis; induction heating; Ni-loaded ?-Al O 2 3; sustainable chemistry
List of contributors:
Giambastiani, Giuliano; Rossin, Andrea; Luconi, Lapo; Tuci, Giulia
Authors of the University:
GIAMBASTIANI GIULIANO
ROSSIN ANDREA
TUCI GIULIA
Handle:
https://iris.cnr.it/handle/20.500.14243/378815
Published in:
CHEMSUSCHEM (WEINH., PRINT)
Journal
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http://www.scopus.com/record/display.url?eid=2-s2.0-85091049286&origin=inward
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