1 / 14

COMPLEX PROCESSING OF SOLID FUEL IN PLASMA CHEMICAL REACTOR

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.

tamala
Download Presentation

COMPLEX PROCESSING OF SOLID FUEL IN PLASMA CHEMICAL REACTOR

An Image/Link below is provided (as is) to download presentation Download Policy: Content on the Website is provided to you AS IS for your information and personal use and may not be sold / licensed / shared on other websites without getting consent from its author. Content is provided to you AS IS for your information and personal use only. Download presentation by click this link. While downloading, if for some reason you are not able to download a presentation, the publisher may have deleted the file from their server. During download, if you can't get a presentation, the file might be deleted by the publisher.

E N D

Presentation Transcript


  1. 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

  2. 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

  3. 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

  4. 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

  5. Layout of Plasma Installation for Processing of Coal solid fuel dust hopper chambers of syngas sampling and cooling plasma gasifier 5

  6. 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

  7. 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

  8. Reduction degree (Θ) of mineral matter of coal C + H2O = CO +H2 MnOm + C = nM +mCO MenOm + C = nMe +mCO

  9. 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

  10. BLOCK DIAGRAM OF PLASMA PROCESS FOR URANIUM, MOLYBDENUM AND VANADIUM EXTRACTING FROM COAL С+H2O=CO+H2 UnOm+mC=mCO+nU

  11. RESULTS OF THE EXPERIMENTS ON PLASMA PROCESSING FOR URANIUM, MOLYBDENUM AND VANADIUM EXTRACTING FROM COAL INTEGRAL PARAMETERS OF URANIUM-BEARING SHALE PLASMA PROCESSING

  12. 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

  13. 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.

  14. Thanks !

More Related