Determination of the Biodiesel Content on Biodiesel/Diesel Blends and Their Adulteration with Vegetable Oil by High-Performance Liquid Chromatography

被引:13
作者
de Matos, Tais Santana [1 ]
dos Santos, Rafael Cavalcante [3 ]
de Souza, Cristiane Gimenes [1 ,2 ]
de Carvalho, Renato Carneiro [4 ]
de Andrade, Debora Franca [4 ]
D'avila, Luiz Antonio [1 ,3 ]
机构
[1] Univ Fed Rio de Janeiro, Escola Quim, BR-21941909 Rio De Janeiro, Brazil
[2] Univ Fed Rio de Janeiro, COPPE, Programa Engn Nanotecnol, BR-21941909 Rio De Janeiro, Brazil
[3] Univ Fed Rio de Janeiro, Inst Quim, BR-21941909 Rio De Janeiro, Brazil
[4] Univ Fed Rio de Janeiro, Escola Quim, Programa Engn Proc Quim & Bioquim, BR-21941909 Rio De Janeiro, RJ, Brazil
关键词
DIESEL/BIODIESEL BLENDS; DIESEL FUEL; MULTIVARIATE CALIBRATION; INFRARED-SPECTROSCOPY; METHYL-ESTERS; FTIR SPECTRA; QUANTIFICATION; H-1-NMR; PLS; HPLC;
D O I
10.1021/acs.energyfuels.9b03133
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Biodiesel content on biodiesel/diesel blends is obtained by determining the band intensity of C=O bond in the fatty acid methyl esters (FAME) of the biodiesel by mid-infrared spectroscopy (reference method: EN 14078, 2014). The potential for biodiesel/diesel blends to be adulterated with vegetable oils constitutes a limitation of the reference methods capacity to accurately quantify the biodiesel content in these blends since vegetable oils, composed primarily of triacylglycerols, also contain the C=O bond. This study employed normal-phase high-performance liquid chromatography with a refractive index detector (NP-HPLC-RI) to quantify the biodiesel in biodiesel/diesel blends and detect potential adulterations of these blends with vegetable oils. Two calibration curves (4 to 12% vol and 5 to 30% vol) were plotted for the biodiesel quantification based on which 12 verification samples were analyzed (samples prepared at different concentrations from the calibration curves), as well as 20 samples of commercial diesel, acquired at gas stations in the southeast region of Brazil. The NP-HPLC-RI method presented good analytical performance in terms of linearity, limit of detection (LOD), limit of quantification (LOQ), precision (repeatability), accuracy (recovery), and robustness. Linearity was determined by the coefficient of determination (R-2) for concentrations of biodiesel and vegetable oil in diesel varying from 4 to 12% vol (R-2 = 0.9924 and R-2 = 0.9950, respectively) and from 5 to 30% vol (R-2 = 0.9968 and R-2 = 0.9962, respectively). The LOD and LOQ for the quantification of the biodiesel were 0.08 and 0.23% vol, while for the quantification of soybean oil, these values were 0.07 and 0.21% vol, respectively. The recovery values varied from 97.7 +/- 1.8% to 107.1 +/- 4.1%, indicating good accuracy, and the method proved robust when the temperature was changed from 40 to 35 degrees C. The paired sample t-test showed the nonexistence of significant differences between the proposed and reference methods (with 95% confidence), indicating the capacity of NP-HPLC-RI to detect and quantify biodiesel and vegetable oil adulterants in samples of diesel both rapidly and effectively, thereby demonstrating its importance for the quality control of this fuel since the current methodology (EN 14078) used in several European Union countries, as well as in Brazil and Argentina, cannot identify this kind of adulteration and cannot accurately analyze the biodiesel content in biodiesel/petrodiesel blends.
引用
收藏
页码:11310 / 11317
页数:8
相关论文
共 50 条
[31]   Influence of Waste Cooking Oil Methyl Ester Biodiesel Blends on the Performance and Emissions of a Diesel Engine [J].
Venu Babu Borugadda ;
Atanu Kumar Paul ;
Ashish J. Chaudhari ;
Vinayak Kulkarni ;
Niranjan Sahoo ;
Vaibhav V. Goud .
Waste and Biomass Valorization, 2018, 9 :283-292
[32]   Influence of Waste Cooking Oil Methyl Ester Biodiesel Blends on the Performance and Emissions of a Diesel Engine [J].
Borugadda, Venu Babu ;
Paul, Atanu Kumar ;
Chaudhari, Ashish J. ;
Kulkarni, Vinayak ;
Sahoo, Niranjan ;
Goud, Vaibhav V. .
WASTE AND BIOMASS VALORIZATION, 2018, 9 (02) :283-292
[33]   Instrumental Analysis of Biodiesel Content in Commercial Diesel Blends: An Experiment for Undergraduate Analytical Chemistry [J].
Feng, Z. Vivian ;
Buchman, Joseph T. .
JOURNAL OF CHEMICAL EDUCATION, 2012, 89 (12) :1561-1565
[34]   Prediction of 2-EHN content in diesel/biodiesel blends using FTIR and chemometrics [J].
Vrtiska, Dan ;
Simacek, Pavel .
TALANTA, 2018, 178 :987-991
[35]   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 [J].
Mahamuni, Naresh N. ;
Adewuyi, Yusuf G. .
ENERGY & FUELS, 2009, 23 (07) :3773-3782
[36]   Determination of ethanol in gasoline by high-performance liquid chromatography [J].
Avila, Lorena Morine ;
Franco dos Santos, Amanda Pereira ;
Mancano de Mattos, Danielle Ignacio ;
de Souza, Cristiane Gimenes ;
de Andrade, Debora Franca ;
d'Avila, Luiz Antonio .
FUEL, 2018, 212 :236-239
[37]   Emission and performance improvement analysis of biodiesel-diesel blends with additives [J].
Imtenan, S. ;
Masjuki, H. H. ;
Varman, M. ;
Arbab, M. I. ;
Sajjad, H. ;
Fattah, I. M. Rizwanul ;
Abedin, M. J. ;
Hasib, Abu Saeed Md .
10TH INTERNATIONAL CONFERENCE ON MECHANICAL ENGINEERING (ICME 2013), 2014, 90 :472-477
[38]   Performance and Emission Analysis of a Diesel Engine Using Linseed Biodiesel Blends [J].
Tunio, M. M. ;
Luhur, M. R. ;
Ali, Z. M. ;
Daher, U. .
ENGINEERING TECHNOLOGY & APPLIED SCIENCE RESEARCH, 2018, 8 (03) :2958-2962
[39]   Theoretical and experimental study on the performance of a diesel engine fueled with diesel-biodiesel blends [J].
Gonca, Guven ;
Dobrucali, Erinc .
RENEWABLE ENERGY, 2016, 93 :658-666
[40]   Performance, Combustion, and Emission Analysis of Neat Palm Oil Biodiesel and Higher Alcohol Blends in a Diesel Engine [J].
Devarajan, Yuvarajan ;
Munuswamy, Dinesh Babu ;
Mahalingam, Arulprakasajothi ;
Nagappan, Beemkumar .
ENERGY & FUELS, 2017, 31 (12) :13796-13801