Luanne Ester Monteiro Ferreira, Vinicius Rossa, Sancler Vasconcelos, Carolina Vieira Viêgas, Gisel Chenard Díaz, Winny Rego Cardoso, Thiago de Melo Lima, Yordanka Reyes Cruz, Donato Alexandre Gomes Aranda
Renewable hydrocarbons were produced from soybean oil (SO) and frying oil (FO) through hydrotreatment over a commercial NiMoS2/Al2O3 catalyst. The effects of temperature (350, 360, and 370 °C), hydrogen pressure (50, 60, and 70 bar), and stirring speed (500, 650, and 800 rpm) were investigated through a 23 factorial design in a batch reactor operated for 5 h with 3 wt % catalyst loading. High catalytic activity was observed for both feedstocks, with XTG (triacylglyceride conversions) above 98% under most experimental conditions. The optimum condition (370 °C, 70 bar, and 800 rpm) resulted in hydrocarbon selectivity (SHC) above 97% and selectivity toward the green diesel range (C16-C22 n-paraffins) (SGD) reached 95.12%. Statistical analysis identified temperature as the most significant influential variable, followed by hydrogen pressure, whereas stirring speed showed no significant effect. The fitted models exhibited high predictive capability (R2 > 0.96). Catalyst reuse tests maintained conversions above 93%, although a gradual loss of activity possibly associated with coke formation was observed. The results demonstrate that commercial NiMoS2/Al2O3 catalysts are effective for converting both refined and residual oils into SGD, highlighting the potential of frying oil as a low-cost feedstock for sustainable fuel production.