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Petroleum Analysis Using the LECO Pegasus 4D GCxGC-TOFMS System

Applications | 2008 | LECOInstrumentation
GCxGC, GC/MSD, GC/TOF
Industries
Energy & Chemicals
Manufacturer
Agilent Technologies, LECO

Summary

Significance of the Topic


The analysis of complex petroleum mixtures requires high-resolution separation and rapid detection methods. Comprehensive two-dimensional gas chromatography coupled with time‐of‐flight mass spectrometry (GCxGC‐TOFMS) addresses these challenges by providing enhanced peak capacity, structured chromatograms, and fast data acquisition, thus improving identification and quantitation of hydrocarbon classes in fuels.

Objectives and Study Overview


This application note evaluates the LECO Pegasus 4D GCxGC‐TOFMS system for three representative petroleum products: gasoline (high volatility), diesel (intermediate volatility), and paraffin (low volatility). The primary goals were to assess chromatographic resolution across a wide boiling range, demonstrate class‐based separation of aromatics, aliphatics, sulfur, and oxygenates, and showcase automated data processing workflows.

Methodology and Instrumentation


An Agilent 6890 gas chromatograph equipped with a LECO thermal modulator was interfaced to the Pegasus 4D TOFMS using electron ionization at 70 eV. Key parameters included:

  • Columns: Varied combinations (DB-5/PONA with Rtx-50 for gasoline; PONA/DB-WAX for diesel; DB-5/Rtx-50 for paraffin).
  • Oven programs: Customized temperature ramps and isothermal holds to span 35–600 u mass range.
  • Modulation: Offset temperatures of 30–60 °C, hot jet times of 0.5–2.4 s, and 5–6 s modulation periods.
  • Data acquisition: 100 spectra/s for comprehensive peak profiling.

Main Results and Discussion


Gasoline chromatograms exhibited well‐resolved aromatic bands and aliphatic regions, enabling clear BTEX quantitation. Diesel analysis revealed similar separation performance with additional detection of sulfur‐containing compound classes. Paraffin required elevated modulator temperature and extended hot times to liberate high‐boiling n-alkanes, iso‐paraffins, and naphthenes. Selected ion chromatograms for m/z 81 and 151 highlighted distinct di‐naphthene bands, while carbon number grouping was evident in the GCxGC contour plots.

Benefits and Practical Applications


  • Single‐injection profiling of diverse hydrocarbon fractions from gasoline to high‐boiling paraffins.
  • Automated GCxGC data processing with peak finding, spectral deconvolution, and modulation‐peak combining for streamlined review.
  • Enhanced identification of aromatics, aliphatics, sulfur species, and oxygenates supports fuel quality control and petrochemical research.

Future Trends and Potential Applications


Future developments may include higher‐temperature column phases for extended carbon number coverage, faster modulation hardware for improved throughput, and coupling with high‐resolution mass analyzers. Integration of advanced chemometric and machine learning algorithms could further automate compound class assignment and quantitative modeling in complex petroleum matrices.

Conclusion


The LECO Pegasus 4D GCxGC‐TOFMS system delivers significant gains in chromatographic resolution and automated data handling for petroleum analysis across volatility ranges. Its capability to separate and identify multiple hydrocarbon classes in a single run enhances analytical efficiency and supports advanced quality control and research applications.

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