On a novel carbon-negative IGCC system with cascade CO2 combined cycle
Tài liệu tham khảo
Guan, 2020, Biomass molded fuel in China: current status, policies and suggestions, Sci Total Environ, 138
Moradi, 2020, Integrating biomass gasification with a steam-injected micro gas turbine and an Organic Rankine Cycle unit for combined heat and power production, Energy Convers Manage, 205, 10.1016/j.enconman.2019.112464
Asfar, 2020, Thermodynamic analysis of a biomass-fired lab-scale power plant, Energy, 194, 10.1016/j.energy.2019.116843
Cavalcanti, 2019, Exergoenvironmental results of a eucalyptus biomass-fired power plant, Energy, 194
Ebrahimi, 2020, Energy and exergy analyses of a novel integrated process configuration for tri-generation heat, power and liquefied natural gas based on biomass gasification, Energy Convers Manage, 205
Bhattacharya A, Manna D, Paul B, Datta A. Biomass integrated gasification combined cycle power generation with supplementary biomass firing: Energy and exergy based performance analysis. Energy 2011; 2599-2610.
Pedroso, 2017, Technical assessment of the Biomass Integrated Gasification/Gas Turbine Combined Cycle (BIG/GTCC) incorporation in the sugarcane industry, Renew Energy, 114, 464, 10.1016/j.renene.2017.07.038
Wu, 2008, Design and Operation of A 5.5 MWe biomass integrated gasification combined cycle demonstration plant, Energy Fuel, 22, 4259, 10.1021/ef8004042
Zang, 2018, A comparative study of biomass integrated gasification combined cycle power systems: performance analysis, Bioresour Technol, 255, 246, 10.1016/j.biortech.2018.01.093
Ge, 2019, System simulation and experimental verification: Biomass-based integrated gasification combined cycle (BIGCC) coupling with chemical looping gasification (CLG) for power generation, Fuel, 241, 118, 10.1016/j.fuel.2018.11.091
Wang, 2018, Evaluation of sorption-enhanced reforming of biodiesel by-product in fluidized beds by means of CFD approach, Fuel, 214, 115, 10.1016/j.fuel.2017.10.128
Yin, 2016, Novel Calcium-looping-based biomass-integrated gasification combined cycle: thermodynamic modeling and experimental study, Energy Fuel, 30, 1730, 10.1021/acs.energyfuels.5b02266
Corti, 2004, Biomass integrated gasification combined cycle with reduced CO2 emissions: performance analysis and life cycle assessment (LCA), Energy, 29, 2109, 10.1016/j.energy.2004.03.015
Rhodes, 2005, Engineering economic analysis of biomass IGCC with carbon capture and storage, Biomass Bioenergy, 29, 440, 10.1016/j.biombioe.2005.06.007
Cormos, 2009, Power generation from coal and biomass based on integrated gasification combined cycle concept with pre- and post-combustion carbon capture methods, Asia-Pac J Chem Eng, 4, 870, 10.1002/apj.354
Xiang, 2019, Study on the biomass-based integrated gasification combined cycle with negative CO2 emissions under different temperatures and pressures, Energy, 179, 571, 10.1016/j.energy.2019.05.011
Holmgren KM. Investment cost estimates for biomass gasification-based systems. Report B2221, 2015.
Jiang, 2017, Techno-economic analysis of direct coal-biomass to liquids (CBTL) plants with shale gas utilization and CO2 capture and storage (CCS), Appl Energy, 189, 433, 10.1016/j.apenergy.2016.12.084
Zhou, 2015, Techno-economic assessment of integrated chemical looping air separation for oxy-fuel combustion: an Australian case study, Energy Fuel, 29, 2071, 10.1021/ef5022076
Manzolini, 2013, CO2 capture in integrated gasification combined cycle with SEWGS – Part B: economic assessment, Fuel, 105, 220, 10.1016/j.fuel.2012.07.043
Kumar, 2015, Cost analysis of a coal-fired power plant using the NPV method, J Ind Eng Int, 11, 495, 10.1007/s40092-015-0116-8
United States Environmental Protection. Air pollution control technology fact sheet- FGD. EPA-452/F-03-034 2002.
Hassan, 2007, Techno-economic study of CO2 capture from an existing cement plant using MEA scrubbing, Int J Green Energy, 4, 197, 10.1080/01971520600873418
Nathan TW, Charles WW. Performance and cost assessment of a natural gas-fueled direct sCO2 power plant. United States, NETL-PUB-22274, 2019.
Zhao, 2015, Thermodynamic and economic analysis and multi-objective optimization of supercritical CO2 Brayton cycles, J Eng Gas Turb Power, 138
Li, 2014, Thermo-economic analysis and comparison of a CO2 transcritical power cycle and an organic Rankine cycle, Geothermics, 50, 101, 10.1016/j.geothermics.2013.09.005
Xia, 2018, Thermodynamic and economic analysis and multi-objective optimization of a novel transcritical CO2 Rankine cycle with an ejector driven by low grade heat source, Energy, 161, 337, 10.1016/j.energy.2018.07.161
Cormos, 2013, Assessment of the consumption of water and construction materials in state-of-the-art fossil fuel power generation technologies involving CO2 capture, Energy, 51, 37, 10.1016/j.energy.2012.12.050
Singh, 2003, Techno-economic study of CO2 capture from an existing coal-fired power plant: MEA scrubbing vs. O2/CO2 recycle combustion, Energy Convers Manage, 44, 3073, 10.1016/S0196-8904(03)00040-2
Koornneef, 2007, Development of fluidized bed combustion-an overview of trends, performance and cost, Prog Energy Combust, 33, 19, 10.1016/j.pecs.2006.07.001
Tan, 2017, Research on synergetic evolution of biomass electricity generation supply chain: an empirical study on biomass power plant in Shandong Province, J. China Agric. Univ., 22, 190
Cormos, 2019, Techno-economic assessment of combined hydrogen & power co-generation with carbon capture: the case of coal gasification, Appl Therm Eng, 147, 29, 10.1016/j.applthermaleng.2018.10.064
Yan, 2012, Integrated characteristics and performance of zero emission coal system, Int J Hydrogen Energy, 37, 9669, 10.1016/j.ijhydene.2012.03.079
Kreutz, 2005, Co-production of hydrogen, electricity and CO2 from coal with commercially ready technology. Part B: economic analysis, Int J Hydrogen Energy, 30, 769, 10.1016/j.ijhydene.2004.08.001
Yan, 2018, On a carbon-negative energy production scheme via a quadruple fluidized bed gasifier, Energy Convers Manage, 171, 326, 10.1016/j.enconman.2018.05.074
Tang, 2018, Life cycle environmental and economic analysis of pulverized coal oxy-fuel combustion combining with calcium looping process or chemical looping air separation, J Clean Prod, 181, 271, 10.1016/j.jclepro.2018.01.265
Moghtaderi, 2010, Application of chemical looping concept for air separation at high temperatures, Energy Fuel, 24, 190, 10.1021/ef900553j
Greig C, Kreutz TG, Larson ED, Meerman JC, Williams RH. Lignite-plus-biomass to synthetic jet fuel with CO2 capture and storage. Final Report, DE-FE0023697, 2017.
NETL. Greenhouse Gas Reductions in the Power Industry Using Domestic Coal and Biomass Volume 1: IGCC. Final Report, DOE/NETL-2012/1546, 2012.
Mohamed, 2014, Comparison of SelexolTM and Rectisol® technologies in an integrated gasification combined cycle (IGCC) plant for clean energy production, IJERT, 3, 742, 10.17950/ijer/v3s12/1207
Cormos, 2014, Techno-economic and environmental evaluations of large scale gasification-based CCS project in Romania, Int J Hydrogen Energy, 39, 13, 10.1016/j.ijhydene.2013.10.073
Lee, 2017, Performance, economic and exergy analyses of carbon capture processes for a 300 MW class integrated gasification combined cycle power plant, Energy, 134, 731, 10.1016/j.energy.2017.06.059
Matteo, 2013
Lan, 2018, Biomass gasification-gas turbine combustion for power generation system model based on ASPEN PLUS, Sci Total Environ, 628, 1278, 10.1016/j.scitotenv.2018.02.159
Cormos, 2014, Economic evaluations of coal-based combustion and gasification power plants with post-combustion CO2 capture using calcium looping cycle, Energy, 78, 665, 10.1016/j.energy.2014.10.054
Manente, 2014, Innovative biomass to power conversion systems based on cascaded supercritical CO2 brayton cycles, Biomass Bioenergy, 69, 155, 10.1016/j.biombioe.2014.07.016
Guo, 2013, Supercritical CO2 rankine cycle using low and medium temperature heat sources