화학공학소재연구정보센터
International Journal of Hydrogen Energy, Vol.44, No.37, 20857-20871, 2019
Hydrogen production via CO2 dry reforming of glycerol over Re-Ni/CaO catalysts
The present work investigates the performance of Re-promoted Nickel-based catalyst supported on calcium oxide for glycerol dry reforming reaction. The catalysts were prepared using wet impregnation method and their catalytic performance was tested in a packed bed reactor with CO 2 to glycerol ratio (CGR) of 1-5, reaction temperature of 600 -900 degrees C and gas hourly specific velocity (GHSV) of 1.44 x 10(4) -7.20 x 10(4) m(cat)(-1)s(-1). The optimum operating temperature for both Ni/CaO and Re-Ni/CaO is 800 degrees C, with the GHSV of 3.6 x 10(4) mL g(cat)(-1)s(-1). The optimum CGR for Ni/CaO and Re-Ni/CaO is 1.0 and 3.0, respectively. At this condition, hydrogen gas is directly produced from glycerol decomposition and indirectly from water-gas-shift reaction. After 2 h at the optimum conditions, 5% Re-Ni/CaO gives optimal glycerol conversion and hydrogen yield of approximately 61% and 56%, respectively, while in comparison to 15% Ni/CaO, the conversion and yield are 35 and 30%, respectively. Characterization of the spent catalysts showed the existence of whisker carbon from the CO2 hydrogenation and methanation processes. By comparing to 15% Ni/CaO, the addition of Re increases the acidic sites of the catalyst and enhanced the surface adsorption of OH group of the glycerol. The adsorbed glycerol on the catalyst surface would further react with the adsorbed CO2 to yield gases products. Thus, the catalytic activity improved significantly. (C) 2018 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.