Performance assessment of producing Mg(OH)2 for CO2 mineral sequestration
- 1. Thermal and Flow Engineering, Åbo Akademi University, Biskopsgatan 8, 20500 Åbo/Turku (Finland)
- 2. University of Coimbra, Coimbra (Portugal)
Description
Highlights: ► Producing Mg(OH)2 for CO2 mineral sequestration was assessed. ► Reactor properties, reaction temperature and time affect Mg extraction. ► A 100% efficient CO2 mineral sequestration process avoids 567 CO2e/t-CO2 net. ► The process avoids 51% life cycle CO2 emissions of a NGCC power plant. ► The process reduces the net power of a NGCC power plant by 20%-points. - Abstract: This study presents the energy and environmental performance assessment of producing magnesium hydroxide (Mg(OH)2) from Mg–silicates for CO2 mineral sequestration applied to a natural gas combined cycle (NGCC) power plant. Mg(OH)2 produced via a closed loop reaction of serpentinite and ammonium sulfate (AS), precipitation of Mg(OH)2 and AS looping/recovery binds CO2 into a thermodynamically stable, environmentally benign and leak-free magnesium carbonate (MgCO3). We used results from laboratory, modeling and life cycle assessment (LCA) studies to determine the extent to which magnesium (Mg) from serpentinite rock can be converted to Mg(OH)2, the effects of reaction parameters, scalability and the associated life cycle greenhouse gas emissions (GHGs). We found that reaction temperature positively affects Mg extraction from serpentinite, reaching a maximum yield at different temperatures depending on the reaction time. Also, the reactor properties affect the extraction results as the optimal extraction yield and conditions reported for different reactors differ. While the process of producing Mg(OH)2 is promising, it also possesses a level of energy and environmental burden that cannot be ignored when considering large scale implementation. At 100% conversion and recovery of reagent, the CO2 mineralization process has a life cycle global warming potential (GWP) of 433 kg CO2 equivalents per ton CO2 (CO2e/t-CO2). This value increases by 82, 7 and 0.4 kg CO2e/t-CO2 for every %-point efficiency loss of AS recovery, Mg(OH)2 production and Mg(OH)2 carbonation respectively. Mineral sequestration applied to the 555 MW NGCC plant reduces its net plant efficiency from 50.2% to 38.6%-points (an energy penalty of 30%) but avoids 51% of the GHG emissions to the atmosphere. The results from this study are timely, and could have significant implications on mineral sequestration methods that consider the exothermic nature of the overall mineral carbonation chemistry beneficial
Availability note (English)
Available from http://dx.doi.org/10.1016/j.apenergy.2013.01.049Additional details
Identifiers
- DOI
- 10.1016/j.apenergy.2013.01.049;
- PII
- S0306-2619(13)00058-5;
Publishing Information
- Journal Title
- Applied Energy
- Journal Volume
- 106
- Journal Page Range
- p. 116-126
- ISSN
- 0306-2619
- CODEN
- APENDX
INIS
- Country of Publication
- United Kingdom
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 45112490
- Subject category
- S29: ENERGY PLANNING, POLICY AND ECONOMY;
- Descriptors DEI
- AMMONIUM SULFATES; CARBON DIOXIDE; CARBON SEQUESTRATION; COMBINED CYCLES; EFFICIENCY; EXTRACTION; GREENHOUSE EFFECT; GREENHOUSE GASES; LIFE CYCLE ASSESSMENT; MAGNESIUM CARBONATES; MAGNESIUM HYDROXIDES; MATERIALS RECOVERY; MINERALS; NATURAL GAS; POWER PLANTS
- Descriptors DEC
- AIR POLLUTION CONTROL; ALKALINE EARTH METAL COMPOUNDS; AMMONIUM COMPOUNDS; CARBON COMPOUNDS; CARBON OXIDES; CARBONATES; CHALCOGENIDES; CLIMATIC CHANGE; CONTROL; ENERGY SOURCES; FLUIDS; FOSSIL FUELS; FUEL GAS; FUELS; GAS FUELS; GASES; HYDROGEN COMPOUNDS; HYDROXIDES; MAGNESIUM COMPOUNDS; MANAGEMENT; OXIDES; OXYGEN COMPOUNDS; POLLUTION CONTROL; PROCESSING; SEPARATION PROCESSES; SULFATES; SULFUR COMPOUNDS; THERMODYNAMIC CYCLES; WASTE MANAGEMENT; WASTE PROCESSING
Optional Information
- Copyright
- Copyright (c) 2013 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.