TY - JOUR
T1 - Esterification and transesterification of waste cooking oil over Amberlyst 15 and modified Amberlyst 15 catalysts
AU - Boz, Nezahat
AU - Degirmenbasi, Nebahat
AU - Kalyon, Dilhan M.
N1 - Publisher Copyright:
© 2014 Elsevier B.V.
PY - 2015/4/1
Y1 - 2015/4/1
N2 - Biodiesel production via the simultaneous esterification and transesterification reactions of waste cooking oil (WCO) with methanol was investigated. A batch reflux reactor was used in conjunction with acidic ion-exchange catalysts, i.e., Amberlyst 15 and modified Amberlyst 15. The activity of the Amberlyst 15 catalysts could be altered via heat treatment at temperatures that are ≥493K, as a consequence of the reduction of the active surface (SO3H). The hydrogen ion-exchange capacities of the catalysts ranged from 2.5meqH+/g to 5.1meqH+/g. The reaction parameters included the molar ratio of alcohol to oil (6:1-15:1), reaction temperature (298-338K), catalyst concentration (1-9wt.%), reaction time (1-72h) and the free fatty acid content (1.04-8.04%). It was observed that the activities of the Amberlyst 15 and modified Amberlyst 15 catalysts increased linearly with increasing hydrogen ion-exchange capacities of the catalysts. Amberlyst 15 exhibited the highest hydrogen ion-exchange capacity and consequently generated the highest biodiesel yield of (78±3.39%). The esterification reaction of excess fatty acids was also investigated. When the esterification and transesterification reactions were carried out simultaneously, the water generated from the esterification of free fatty acids led to the hydrolysis of triglycerides and reduced the biodiesel yield emphasizing the necessity for the removal of the water during concomitant esterification of excess fatty free acids present and the transesterification of the triglycerides for biodiesel production.
AB - Biodiesel production via the simultaneous esterification and transesterification reactions of waste cooking oil (WCO) with methanol was investigated. A batch reflux reactor was used in conjunction with acidic ion-exchange catalysts, i.e., Amberlyst 15 and modified Amberlyst 15. The activity of the Amberlyst 15 catalysts could be altered via heat treatment at temperatures that are ≥493K, as a consequence of the reduction of the active surface (SO3H). The hydrogen ion-exchange capacities of the catalysts ranged from 2.5meqH+/g to 5.1meqH+/g. The reaction parameters included the molar ratio of alcohol to oil (6:1-15:1), reaction temperature (298-338K), catalyst concentration (1-9wt.%), reaction time (1-72h) and the free fatty acid content (1.04-8.04%). It was observed that the activities of the Amberlyst 15 and modified Amberlyst 15 catalysts increased linearly with increasing hydrogen ion-exchange capacities of the catalysts. Amberlyst 15 exhibited the highest hydrogen ion-exchange capacity and consequently generated the highest biodiesel yield of (78±3.39%). The esterification reaction of excess fatty acids was also investigated. When the esterification and transesterification reactions were carried out simultaneously, the water generated from the esterification of free fatty acids led to the hydrolysis of triglycerides and reduced the biodiesel yield emphasizing the necessity for the removal of the water during concomitant esterification of excess fatty free acids present and the transesterification of the triglycerides for biodiesel production.
KW - Acidic transesterification
KW - Amberlyst 15
KW - Biodiesel
KW - Waste cooking oil
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U2 - 10.1016/j.apcatb.2014.10.079
DO - 10.1016/j.apcatb.2014.10.079
M3 - Article
AN - SCOPUS:84910019961
SN - 0926-3373
VL - 165
SP - 723
EP - 730
JO - Applied Catalysis B: Environmental
JF - Applied Catalysis B: Environmental
ER -