Power-to-methanol process : a review of electrolysis, methanol catalysts, kinetics, reactor designs and modelling, process integration, optimisation, and techno-economics

dc.contributor.authorMbatha, Siphesihle
dc.contributor.authorEverson, Raymond C.
dc.contributor.authorMusyoka, Nicholas M.
dc.contributor.authorLangmi, Henrietta Wakuna
dc.contributor.authorLanzini, Andrea
dc.contributor.authorBrilman, Wim
dc.date.accessioned2022-01-12T10:40:10Z
dc.date.issued2021-06
dc.description.abstractIn this paper, the power-to-methanol chain is reviewed from a process system engineering perspective with detailed assessments of major technologies. The evaluation encompasses electrolysis technologies and catalyst developments, kinetics, reactor technology options for methanol synthesis, as well as their design principles, modelling techniques, and research and optimisation gaps. The review extends to discuss process synthesis considering water-based and co-electrolysis-based power-to-methanol routes with reference to process integration, optimisation, modelling techniques, industrial applications and the associated techno-economics. Key gaps and opportunities for improvements are identified. The novelty of the paper lies in the holistic evaluation of technology design, performance and modelling. Foremost among the findings, advanced and detailed models of the electrolysis units, methanol reaction kinetics (e.g. considering identifiability and sensitivity) and methanol reactor with improved predictive capabilities under varying conditions are required. Additionally, the overall design, flexibility and reliability requirements concerning variable power-to-methanol deserve further detailed investigation. On the other hand, studies on the model-based process synthesis of power-to-methanol are limited, especially those considering dynamic modelling, multi-objective, process configuration and scheduling optimisations, and techno-economic and environmental analyses under uncertainty conditions. The few model-based studies available are mostly based on deterministic approaches and sequential pinch-analysis. Furthermore, limited studies evaluate power-to-methanol in the context of CO2/energy/H2 utilisation industrial hubs and repurposing/retrofitting of existing infrastructures (with part of the capital cost already offset) taking advantages of synergies and application-specific analysis of methanol, which may give additional attractive business cases. Lastly, incentives and dynamics in renewable electricity, electrolysis, CO2 utilisation and the methanol market hold a strong position to make power-to-methanol feasible and must be investigated further to support policy decisions.en_ZA
dc.description.departmentChemistryen_ZA
dc.description.embargo2022-06-22
dc.description.librarianhj2022en_ZA
dc.description.sponsorshipThe South African Department of Science and Innovation (DSI) for research activities under the HySA Infrastructure Centre of Competence (KP5 program, Project No. CNMH17X) and also by the Council for Scientic and Industrial Research (CSIR).en_ZA
dc.description.urihttp://www.rsc.org/journals-books-databases/about-journals/sustainable-energy-fuelsen_ZA
dc.identifier.citationMbatha, S., Everson, R.C., Musyoka, N.M. et al. 2021, 'Power-to-methanol process: a review of electrolysis, methanol catalysts, kinetics, reactor designs and modelling, process integration, optimisation, and techno-economics', Sustainable Energy Fuels, vol. 5, no. 14, pp. 3490-3569.en_ZA
dc.identifier.issn2398-4902 (online)
dc.identifier.other10.1039/D1SE00635E
dc.identifier.urihttp://hdl.handle.net/2263/83300
dc.language.isoenen_ZA
dc.publisherRoyal Societyiety of Chemistryen_ZA
dc.rights© The Royal Society of Chemistry 2021en_ZA
dc.subjectPower-to-methanol processen_ZA
dc.subjectTechnoeconomicsen_ZA
dc.subjectOptimisationen_ZA
dc.subjectProcess integrationen_ZA
dc.subjectElectrolysisen_ZA
dc.subjectReactor designs and modellingen_ZA
dc.subjectMethanol catalystsen_ZA
dc.subjectKineticsen_ZA
dc.titlePower-to-methanol process : a review of electrolysis, methanol catalysts, kinetics, reactor designs and modelling, process integration, optimisation, and techno-economicsen_ZA
dc.typePostprint Articleen_ZA

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