Hľadaj:   

Oddelenie environmentálnej fyziky - Prihlásený: student
Katedra astronómie, fyziky Zeme a meteorológie, FMFI UK, Bratislava,


The effect of packing material properties on tars removal by plasma catalysis

Cimerman R., Cíbiková M., Satrapinskyy L., Hensel K.
Catalysts 10 (12), 1476, 22 pp (2020)

download  


Abstrakt:

Plasma catalysis has been utilized in many environmental applications for removal of various hydrocarbons including tars. The aim of this work was to study the tars removal process by atmospheric pressure DBD non-thermal plasma generated in combination with packing materials of various composition and catalytic activity (TiO2, Pt/Al2O3, BaTiO3, Al2O3, ZrO2, glass beads), dielectric constant (5–4000), shape (spherical and cylindrical pellets and beads), size (3–5 mm in diameter, 3–8 mm in length), and specific surface area (37–150 m2/g). Naphthalene was chosen as a model tar compound. The experiments were performed at a temperature of 100 C and a naphthalene initial concentration of approx. 3000 ppm, i.e., under conditions that are usually less favorable to achieve high removal efficiencies. For a given specific input energy of 320 J/L, naphthalene removal efficiency followed a sequence: TiO2 > Pt/Al2O3 > ZrO2 > Al2O3 > glass beads > BaTiO3 > plasma only. The efficiency increased with the increasing specific surface area of a given packing material, while its shape and size were also found to be important. By-products of naphthalene decomposition were analyzed by means of FTIR spectrometry and surface of packing materials by SEM analysis.


Citácie:

1.)F. Saleem, M. Raashid, A. Rehman, A. H. Khoja, A. Abbas, S. Gul, S. Ahmad, U. Dahiru, A. Harvey: Dielectric barrier discharge reactor application in biomass gasification tar removal, Renewable and Sustainable Energy Reviews 208 (2025), 114963, citation no. 40
(2025)
-------------
2.)X. Shen, Z. Li, J. Xu, W. Li, Y. Tao, J. Ran, Z. Yang, K. Sun, S. Yao, Z. Wu, V. Rac, V. Rakic, X. Du: Upgrading the low temperature water gas shift reaction by integrating plasma with a CuOx/CeO2 catalyst, Journal of Catalysis 421, 324-331 (2023), citation no. 46
(2023)
-------------
3.)He W., Xu B., Lang L., Yang W., Liu H., Zhan H., Xie J., Yin X., Wu C.: Exploring simultaneous upgrading and purification of biomass-gasified gases using plasma catalysis, Catalysts 13(4), 686, 18 pp (2023), citation no. 16
(2023)
-------------
4.)S. Wang, P. Song, H. Pei, Q. Li, Z. Zhao: Numerical Simulation and Experimental Study of Ar/CH4 Coaxial DBD Discharge Characteristics, Advances in Transdisciplinary Engineering: International Conference on Applied Mathematics, Modeling and Computer Simulation 20, 253-260 (2022), citation no. 7
(2022)
-------------
5.)B. Ulejczyk, L Nogal, P. Józwik, M. Młotek, K. Krawczyk: Plasma-Catalytic Process of Hydrogen Production from Mixture of Methanol and Water, Catalysts 11, 864 (2021), citation no. 3, INDEX
(2021)
-------------
6.)J. Woroszył-Wojno, M. Młotek, M. Perron, P. Józwik, B. Ulejczyk, K. Krawczyk: Decomposition of Tars on a Nickel Honeycomb Catalyst, Catalysts 11, 860 (2021), citation no. 11, INDEX
(2021)
-------------
7.)M. Magureanu, C. Bradu: Catalysts: Special Issue on Plasma-Catalysis for Environmental and Energy-Related Applications, Catalysts 11, 1439 (2021), citation no. 3, INDEX
(2021)
-------------


DOMOV
ČLENOVIA
VÝSKUM
PUBLIKÁCIE
ŠTUDENTI
LINKY
KONTAKT




Prihlásený(á): student

Odhlásenie