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Methanol synthesis using captured CO2 as raw material: Techno-economic and environmental assessment

Applied Energy · 2015 · Vol. 161 · pp. 718–732
Mar Pérez–FortesJan C. SchönebergerAikaterini K. BoulamantiEvangelos Tzimas

Abstract

• A carbon utilisation plant that synthesise methanol is simulated in CHEMCAD. • The total amount of CO 2 demand is 1.46 t/t methanol . • The CO 2 not-produced compared to a conventional plant is 0.54 t/t methanol . • Production costs results too high for a financially attractive project. • There is a net potential for CO 2 emissions reduction of 2.71 MtCO 2 /yr in Europe. The purpose of this paper is to assess via techno-economic and environmental metrics the production of methanol (MeOH) using H 2 and captured CO 2 as raw materials. It evaluates the potential of this type of carbon capture and utilisation (CCU) plant on (i) the net reduction of CO 2 emissions and (ii) the cost of production, in comparison with the conventional synthesis process of MeOH Europe. Process flow modelling is used to estimate the operational performance and the total purchased equipment cost; the flowsheet is implemented in CHEMCAD, and the obtained mass and energy flows are utilised as input to calculate the selected key performance indicators (KPIs). CO 2 -based metrics are used to assess the environmental impact. The evaluated MeOH plant produces 440 ktMeOH/yr, and its configuration is the result of a heat integration process. Its specific capital cost is lower than for conventional plants. However, raw materials prices, i.e. H 2 and captured CO 2 , do not allow such a project to be financially viable. In order to make the CCU plant financially attractive, the price of MeOH should increase in a factor of almost 2, or H 2 costs should decrease almost 2.5 times, or CO 2 should have a value of around 222 €/t, under the assumptions of this work. The MeOH CCU-plant studied can utilise about 21.5% of the CO 2 emissions of a pulverised coal (PC) power plant that produces 550 MW net of electricity. The net CO 2 emissions savings represent 8% of the emissions of the PC plant (mainly due to the avoidance of consuming fossil fuels as in the conventional MeOH synthesis process). The results demonstrate that there is a net but small potential for CO 2 emissions reduction; assuming that such CCU plants are constructed in Europe to meet the MeOH demand growth and the quantities that are currently imported, the net CO 2 emissions reduction could be of 2.71 MtCO 2 /yr.

Carbon Dioxide Capture TechnologiesCarbon dioxide utilization in catalysisCO2 Reduction Techniques and CatalystsRaw materialWork (physics)Production (economics)Power stationPerformance indicatorEnvironmental scienceCost of electricity by sourceCapital costCoalElectricity

Funding

  • European Commission
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References
Prediction of Mass Transfer Columns with Dumped and Arranged Packings
Process Safety and Environmental Protection · 1999 · 419 citations
Advances in CO2 capture technology: A patent review
Applied Energy · 2012 · 649 citations
Beyond Oil and Gas: The Methanol Economy
Angewandte Chemie International Edition · 2005 · 2,309 citations
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