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Screening Brazilian commercial gasoline quality by hydrogen nuclear magnetic resonance spectroscopic fingerprintings and pattern-recognition multivariate chemometric analysis
Authors:Danilo Luiz Flumignan  José Eduardo de Oliveira
Institution:a Organic Chemistry Department, Institute of Chemistry, Center for Monitoring and Research of the Quality of Fuels, Biofuels, Crude Oil and Derivatives - CEMPEQC, São Paulo State University - UNESP, R. Prof. Francisco Degni s/n, Quitandinha, 14800-900 Araraquara, São Paulo, Brazil
b Organic Chemistry Department, Institute of Chemistry, São Paulo State University - UNESP, R. Prof. Francisco Degni s/n, Quitandinha, 14800-900 Araraquara, São Paulo, Brazil
Abstract:The identification of gasoline adulteration by organic solvents is not an easy task, because compounds that constitute the solvents are already in gasoline composition. In this work, the combination of Hydrogen Nuclear Magnetic Resonance (1H NMR) spectroscopic fingerprintings with pattern-recognition multivariate Soft Independent Modeling of Class Analogy (SIMCA) chemometric analysis provides an original and alternative approach to screening Brazilian commercial gasoline quality in a Monitoring Program for Quality Control of Automotive Fuels. SIMCA was performed on spectroscopic fingerprints to classify the quality of representative commercial gasoline samples selected by Hierarchical Cluster Analysis (HCA) and collected over a 6-month period from different gas stations in the São Paulo state, Brazil. Following optimized the 1H NMR-SIMCA algorithm, it was possible to correctly classify 92.0% of commercial gasoline samples, which is considered acceptable. The chemometric method is recommended for routine applications in Quality-Control Monitoring Programs, since its measurements are fast and can be easily automated. Also, police laboratories could employ this method for rapid screening analysis to discourage adulteration practices.
Keywords:Brazilian commercial gasoline  Quality control  1H NMR spectroscopic fingerprintings  Pattern-recognition multivariate SIMCA  Regulation ANP n°  309
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