Biodiesel production from waste frying oil in sub- and supercritical methanol on a zeolite Y solid acid catalyst
Jorge MEDINA-VALTIERRA, Jorge RAMIREZ-ORTIZ
Biodiesel production from waste frying oil in sub- and supercritical methanol on a zeolite Y solid acid catalyst
Waste frying oil (WFO) is a very important feedstock for obtaining biodiesel at low cost and using WFO in transesterification reactions to produce biodiesel helps eliminate local environmental problems. In this study biodiesel was produced from WFO in sub- and super-critical methanol on a zeolite Y solid acid catalyst. The procedure was optimized using a design of experiments by varying the methanol to WFO molar ratio, the reaction temperature, and the amount of catalyst. Typical biodiesel yields varied from 83 to nearly 100% with methyl esters content ranging from 1.41–1.66 mol·L-1 and typical dynamic viscosities of 22.1-8.2 cP. Gas chromatography was used to determine the molecular composition of the biodiesel. The reaction products contained over 82 wt-% methyl esters, 4.2 wt-% free acids, 13.5 wt-% monoglycerides, and 0.3 wt-% diglycerides. The transesterification of WFO with methanol around its critical temperature combined with a zeolite Y as an acid catalyst is an efficient approach for the production of biodiesel with acceptable yields.
biodiesel / methanol / critical temperature / waste frying oil / zeolite Y
[1] |
Kulkarni M G, Dalai A K. Waste cooking oil-an economical source for biodiesel: A review. Industrial & Engineering Chemistry Research, 2006, 45(9): 2901-2913
CrossRef
Google scholar
|
[2] |
Enweremadu C C, Mbarawa M M. Technical aspects of production and analysis of biodiesel from used cooking oil: A review. Renewable & Sustainable Energy Reviews, 2009, 13(9): 2205-2224
CrossRef
Google scholar
|
[3] |
Philippaerts A, Goossens S, Vermandel W, Tromp M, Turner S, Geboers J, van Tendeloo G P, Jacobs A, Sels B F. Design of Ru-zeolites for hydrogen-free production of conjugated linoleic acids. ChemSusChem, 2011, 4(6): 757-767
CrossRef
Google scholar
|
[4] |
Jain S, Sharma M P, Rajvanshi S. Acid base catalyzed transesterification kinetics of waste cooking oil. Fuel Processing Technology, 2011, 92(1): 32-38
CrossRef
Google scholar
|
[5] |
Das S K, Bhunia M K, Sinha A K, Bhaumik A. Synthesis, characterization, and biofuel application of mesoporous zirconium oxophosphates. ACS Catalysis, 2011, 1: 493-401
CrossRef
Google scholar
|
[6] |
Olutoye M A, Lee S C, Hameed B H. Synthesis of fatty acid methyl ester from palmoil (Elaeis guineensis) with Ky(MgCa)2xO3 as heterogeneous catalyst. Bioresource Technology, 2011, 102(23): 10777-10783
CrossRef
Google scholar
|
[7] |
Shu Q, Gao J, Nawaz Z, Liao Y, Wang D, Wang J. Synthesis of biodiesel from waste vegetable oil with large amounts of free fatty acids using a carbon-based solid acid sites. Applied Energy, 2010, 87(8): 2589-2596
CrossRef
Google scholar
|
[8] |
Zhang X, Li J, Chen Y, Wang J, Feng I, Wang X, Cao F. Heteropolyacid nanoreactor with double acid sites as a high efficient and reusable catalyst for the transesterification of waste cooking oil. Energy & Fuels, 2009, 23(9): 4640-4646
CrossRef
Google scholar
|
[9] |
Canilla C, Bonoura G, Rombi E, Arena F, Frusteri F. Highly effective MnCeOx catalysts for biodiesel production by transesterification of vegetable oils with methanol. Applied Catalysis A, General, 2010, 382(2): 158-166
CrossRef
Google scholar
|
[10] |
Brito A, Borges M, Otero N. Zeolite Y as a heterogeneous catalyst in biodiesel fuel production from used vegetable oil. Energy & Fuels, 2007, 21(6): 3280-3283
CrossRef
Google scholar
|
[11] |
Wang R, Yang S, Yin S, Song B, Bhadury P S, Xue W, Tao S, Jia Z, Liu D, Gao L. Development of solid base catalyst X/Y/MgO/c-Al2O3 for optimization of preparation of biodiesel from Jatropha curcas L. seed oil. Frontiers of Chemical Engineering in China, 2008, 2(4): 468-472
CrossRef
Google scholar
|
[12] |
Xue W, Zhou Y C, Song B A, Shi X, Wang J, Yin S T, Hu D Y, Jin L H, Yang S. Synthesis of biodiesel from Jatropha curcas L. seed oil using artificial zeolites loaded with CH3COOK as a heterogeneous catalyst. Natural Science, 2009, 1(01): 55-62
CrossRef
Google scholar
|
[13] |
Ramírez-Ortiz J, Martinez M, Flores H. Metakaolinite as a catalyst for biodiesel production from waste cooking oil. Frontiers of Chemical Science and Engineering, 2012, 6(4): 403-409
CrossRef
Google scholar
|
[14] |
Laosiripojana N, Kiatkittipong W, Assabumrungrat S. Synthesis of methyl esters from relevant palm products in near-critical methanol with modified-zirconia catalysts. Bioresource Technology, 2010, 101(21): 8416-8423
CrossRef
Google scholar
|
[15] |
Sawangkeaw R, Bunyakiat K S, Ngamprasertsith S. Ngamprasertsith. A review of laboratory-scale research on lipid conversion to biodiesel with supercritical methanol (2001-2009). Journal of Supercritical Fluids, 2010, 55(1): 1-13
CrossRef
Google scholar
|
[16] |
Saka S, Kusdiana D. Biodiesel fuel from rapeseed oil as prepared in supercritical methanol. Fuel, 2001, 80(2): 225-231
CrossRef
Google scholar
|
[17] |
Du Z, Tang Z, Wang H, Zeng J, Chen Y, Min E. Research and development of a sub-critical methanol alcoholysis process for producing biodiesel using waste oils and fats. Chinese Journal of Catalysis, 2013, 34(1): 101-115
CrossRef
Google scholar
|
[18] |
Mahajan S, Konar S K, Boocock D G B. Determining the acid number of biodiesel. Journal of the American Oil Chemists' Society, 2006, 83(6): 567-570
CrossRef
Google scholar
|
[19] |
Leung D Y C, Guo Y. Trans-esterification of neat and used frying oil: Optimization for biodiesel production. Fuel Processing Technology, 2006, 87(10): 883-890
CrossRef
Google scholar
|
[20] |
Plank C, Lorbeer E. Simultaneous determination of glycerol, and mono-, di- and triglycerides in vegetable oil methyl esters by capillary gas chromatography. Journal of Chromatography. A, 1995, 697(1-2): 461-468
CrossRef
Google scholar
|
[21] |
Demirbas A. Biodiesel from waste cooking oil via base-catalytic and supercritical methanol transesterification. Energy Conversion and Management, 2009, 50(4): 923-927
CrossRef
Google scholar
|
[22] |
Lotero E, Liu Y, Lopez D E, Suwannakarn K, Bruce D A, Goodwin J G. Synthesis of biodiesel via acid catalysis. Industrial & Engineering Chemistry Research, 2005, 44(14): 5353-5363
CrossRef
Google scholar
|
[23] |
Silverstein R M, Bassler G C, Morrill T C. Spectrometric Identification of Organic Compounds, 5th ed. New York: Wiley; 1991, 114-117
|
[24] |
Mahamuni N N, Adewuyi Y G. Fourier transform infrared spectroscopy (FTIR) method to monitor soy biodiesel and soybean oil in transesterification reactions, petrodiesel-biodiesel blends, and blend adulteration with soy oil. Energy & Fuels, 2009, 23(7): 3773-3782
CrossRef
Google scholar
|
[25] |
Flôres-Ferrão M, Souza-Viera M, Panta-Pazos R E, Fachini D, Engel-Gerbase A, Marder L. Simultaneous determination of quality parameters of biodiesel/diesel blends using HATR-FTIR spectra and PLS, iPLS or siPLS regressions. Fuel, 2011, 90(2): 701-706
CrossRef
Google scholar
|
/
〈 | 〉 |