180 likes | 227 Views
Explore the complex plasma processing of coal including gasification, gas composition, and uranium extraction for enhanced fuel efficiency. Discover the economic impact of plasma processing in coal-rich regions.
E N D
COMPLEX PROCESSING OF SOLID FUEL IN PLASMA CHEMICAL REACTOR V.E. Messerle, A.B. Ustimenko Combustion problems Institute, Research Institute of Experimental and Theoretical Physics, Almaty, Kazakhstan ust@physics.kz 3rd World Congress on Petrochemistry and Chemical Engineering November 30 - December 02, 2015 Atlanta, USA
It is not the use of coal, but how the coal is usedthat must be the focus of action – World Coal Institute, London Proven reserves of fossil fuels worldwide 1 – coal, 2 – oil fuel, 3 – gas British Petrol Statistical Review of World Energy, 2013
Chemical analysis of the bituminous coal with 40% ash content and 16,632kJ/kg heating value , Wt. % dry mass basis The initial mixture composition is: 100 kg of coal + 40.25 kg of steam Temperature dependence of concentrations of organic and mineral components in gas phase at comprehensive processing of coal 3
The mixture composition is: 100 kg of coal + 40.25 kg of steam Temperature dependence of concentrations of components in condensed phase and coal gasification degree at complex processing of coal 4
Layout of Plasma Installation for Processing of Coal solid fuel dust hopper chambers of syngas sampling and cooling plasma gasifier 5
EXPERIMENTAL REACTOR FOR PLASMA GASIFICATION AND COMPREHENSIVE PROCESSING OF COAL Scheme of Plasma Reactor 1 – rode graphite cathode; 2 – cathode insulator; 3 – water cooled cover; 4 – electromagnetic coil; 5 – ring graphite anode; 6 – graphite orifice 6
PLASMA GASIFICATION AND COMPLEX PROCESSING OF COAL ab Plasmochemical reactor in operate mode (a) and view of the installation (b). G2+G3+G4+G5=G6+G1+G7, [kg/h] Parc+P1=P2+P3+P4+P5+P6, [kW] 7
Reduction degree (Θ) of mineral matter of coal C + H2O = CO +H2 MnOm + C = nM +mCO MenOm + C = nMe +mCO
THE MOTIVATION FOR THE DEVELOPMENT OF PLASMA PROCESSING OF URANIUM-BEARING COAL Balance reserves of coal in Kazakhstan – 33 billion tons Uranium-bearing coal(0,06% U) - 14 billion tons Plasma processing of uranium-bearing coal would increase the fuel base of the Republic of Kazakhstan by 42%, while the existing uranium base - 5 times, up to 5 million tons The Economic Effect of plasma processing of uranium-bearing coal will exceed $ 550 billion
BLOCK DIAGRAM OF PLASMA PROCESS FOR URANIUM, MOLYBDENUM AND VANADIUM EXTRACTING FROM COAL С+H2O=CO+H2 UnOm+mC=mCO+nU
RESULTS OF THE EXPERIMENTS ON PLASMA PROCESSING FOR URANIUM, MOLYBDENUM AND VANADIUM EXTRACTING FROM COAL INTEGRAL PARAMETERS OF URANIUM-BEARING SHALE PLASMA PROCESSING
COMPLEX PROCESSING OF COAL Flame of syngas from high-ash Kuuchekinskiy coal Gas composition vol.%: CO = 46.9 H2 = 52.3 N2 = 0.8 NOx < 15 ppm SOx < 20 ppm PLASMA STEAM GASIFICATION OF COAL Flame of syngas from uranium-bearing coal Kulan-Komir Gas composition vol.%: CO = 41.4 H2 = 56.9 N2 = 1.7 NOx < 15 ppm SOx < 20 ppm
CONCLUSIONS The fulfilled computational and experimental investigations demonstrated that during comprehensive plasma processing of solid fuel its organic matter converts to synthesis gas, while its mineral matter to a range of valuable components. The high-calorific value synthesis gas, produced by this process, can be used for synthesis of methanol, or as high-potential reducing gas instead of blast-furnace coke, as well as for power generation at thermal power plants.