Title :
Development of the supported nickel-baseed catalysts and application in pyrolyzing biomass
Author :
Jian-fen, Li ; Jian-jun, Liu ; Bo, Xiao ; Han-fen, Zhuo ; Lao shi-yan ; Rong, Yan
Author_Institution :
Sch. of Chem. & Environ. Eng., Wuhan Polytech. Univ., Wuhan, China
Abstract :
The supported nano-NiO/γ-Al2O3 catalyst was prepared by deposition-precipitation (DP) method. Different analytical approaches such as XRD, BET, TEM and SEM/EDX were used to characterize the synthesized catalysts. The results showed that the prepared nano-NiO/γ-Al2O3 catalysts had a coated structure with a loading of NiO in catalysts over 12 wt %, and they had also a high BET surface area of 124.6 m2/g. The active components of catalyst were spherical NiO nanoparticles coated on the surface of supports with a size range of 12~18 nm. Meantime, the activity of the catalysts to remove tar in the process of biomass pyrolysis was also investigated using a bench-scale combined fixed bed reactor. The experiments demonstrated that the tar yield after adding catalysts was reduced significantly, and the removal efficiency of tar reached to 99% for catalytic pyrolysis at 800°C, while the gas yield after adding catalysis increased markedly. Meanwhile, the compositions of gas products before and after adding catalysts in the process also changed significantly, especially the percentages of H2 and CO in the product gas after adding catalysts were obviously increased. Therefore, the prepared catalysts showed their excellent catalytic activity for tar removal and syn-gas producation in biomass pyrolysis.
Keywords :
catalysis; catalysts; fuel gasification; pyrolysis; renewable materials; syngas; CO; H2; NiO; biomass pyrolysis; catalysis; catalytic activity; catalytic pyrolysis; coated structure; deposition-precipitation method; different analytical approach; efficiency 99 percent; fixed bed reactor; gas product; nickel-based catalyst; pyrolyzing biomass; size 12 nm to 18 nm; syn-gas producation; synthesized catalyst; tar removal; tar yield; temperature 800 C; Aluminum oxide; Biomass; Chemical engineering; Chemical technology; Hydrogen; Inductors; Nanoparticles; X-ray scattering; Biomass; Catalyst; Catalytic activity; pyrolysis;
Conference_Titel :
Mechanic Automation and Control Engineering (MACE), 2010 International Conference on
Conference_Location :
Wuhan
Print_ISBN :
978-1-4244-7737-1
DOI :
10.1109/MACE.2010.5535930