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Dive into the research topics where J. Szuhánszki is active.

Publication


Featured researches published by J. Szuhánszki.


Materials | 2018

Entrained Metal Aerosol Emissions from Air-Fired Biomass and Coal Combustion for Carbon Capture Applications

Karen N. Finney; J. Szuhánszki; L.I. Darvell; Benjamin Dooley; Kris Milkowski; J.M. Jones; M. Pourkashanian

Biomass energy with CO2 capture could achieve net negative emissions, vital for meeting carbon budgets and emission targets. However, biomass often has significant quantities of light metals/inorganics that cause issues for boiler operation and downstream processes; including deposition, corrosion, and solvent degradation. This study investigated the pilot-scale combustion of a typical biomass used for power generation (white wood) and assessed the variations in metal aerosol release compared to bituminous coal. Using inductively coupled plasma optical emission spectrometry, it was found that K aerosol levels were significantly greater for biomass than coal, on average 6.5 times, with peaks up to 10 times higher; deposition could thus be more problematic, although Na emissions were only 20% of those for coal. Transition metals were notably less prevalent in the biomass flue gas; with Fe and V release in particular much lower (3–4% of those for coal). Solvent degradation may therefore be less severe for biomass-generated flue gases. Furthermore, aerosol emissions of toxic/heavy metals (As/Cd/Hg) were absent from biomass combustion, with As/Cd also not detected in the coal flue gas. Negligible Cr aerosol concentrations were found for both. Overall, except for K, metal aerosol release from biomass combustion was considerably reduced compared to coal.


Fuel | 2013

Effects of firing coal and biomass under oxy-fuel conditions in a power plant boiler using CFD modelling

S. Black; J. Szuhánszki; A. Pranzitelli; Lin Ma; P.J. Stanger; D.B. Ingham; M. Pourkashanian


Fuel | 2015

LES and RANS of air and oxy-coal combustion in a pilot-scale facility: Predictions of radiative heat transfer

Alastair G. Clements; Sandy Black; J. Szuhánszki; Katarzyna Stęchły; A. Pranzitelli; W. Nimmo; M. Pourkashanian


Fuel Processing Technology | 2015

Evaluation of the potential of retrofitting a coal power plant to oxy-firing using CFD and process co-simulation

Y. Fei; S. Black; J. Szuhánszki; Lin Ma; D.B. Ingham; P.J. Stanger; M. Pourkashanian


Energy Procedia | 2013

Evaluation of the Performance of a Power Plant Boiler Firing Coal, Biomass and a Blend Under Oxy-fuel Conditions as a CO2 Capture Technique☆

J. Szuhánszki; S. Black; A. Pranzitelli; Lin Ma; P.J. Stanger; D.B. Ingham; M. Pourkashanian


Applied Energy | 2018

Prediction of the radiative heat transfer in small and large scale oxy-coal furnaces

Xin Yang; Alastair G. Clements; J. Szuhánszki; Xiaohong Huang; Oscar Farias Moguel; Jia Li; Jon Gibbins; Zhaohui Liu; Chuguang Zheng; D.B. Ingham; Lin Ma; Bill Nimmo; M. Pourkashanian


Fuel | 2017

Multi-mode combustion process monitoring on a pulverised fuel combustion test facility based on flame imaging and random weight network techniques

Xiaojing Bai; Gang Lu; Moinul Hossain; J. Szuhánszki; S.S. Daood; W. Nimmo; Yong Yan; M. Pourkashanian


Archive | 2018

Post-combustion and Oxy-combustion Technologies

Karen N. Finney; Hannah Chalmers; Mathieu Lucquiaud; Juan Riaza; J. Szuhánszki; Bill Buschle


Journal of The Energy Institute | 2018

The use of equilibrium thermodynamic models for the prediction of inorganic phase changes in the co-firing of wheat straw with El Cerrejon coal

P. Xing; L.I. Darvell; J.M. Jones; Lin Ma; M. Pourkashanian; J. Szuhánszki; A. Williams


Fuel Processing Technology | 2018

Oscillating coal and biomass flames: A spectral and digital imaging approach for air and oxyfuel conditions

O. Farias Moguel; J. Szuhánszki; A.G. Clements; D.B. Ingham; Lin Ma; M. Pourkashanian

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Lin Ma

University of Sheffield

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D.B. Ingham

University of Sheffield

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