Hydrocarbons, C2 – C4 - Separation of C3 + C4 hydrocarbons
Applications | 2011 | Agilent TechnologiesInstrumentation
Accurate separation and quantification of C2–C4 hydrocarbons are vital in petrochemical processing to ensure product quality, optimize reaction conditions and monitor environmental emissions. Robust analytical methods enable reliable identification of linear, branched, cyclic and unsaturated species in complex gas streams, supporting operational efficiency and regulatory compliance.
This application note demonstrates a gas chromatographic approach for baseline separation of C2 to C4 hydrocarbons in under 30 minutes. The purpose is to validate a rapid, reproducible method suitable for routine analysis of light hydrocarbon mixtures in industrial and laboratory settings.
The separation was carried out using wide-bore GC with a CP-Al2O3/Na2SO4 PLOT column (0.32 mm × 50 m, 5 µm film). The temperature program started at 60 °C (hold 5 min), ramped to 135 °C at 5 °C/min, then to 185 °C at 15 °C/min. Helium was used as carrier gas at 69 kPa. A split injection (2 000 µL) at 200 °C and flame ionization detection at 250 °C were employed. Calibration covered 100 ppm to 1 % concentration range.
Fourteen hydrocarbons, including propane, cyclopropane, propylene, isobutane, n-butane, propadiene, trans-2-butene, 1-butene, isobutene, cis-2-butene, C5 isomers, 1,3-butadiene, propyne and pentenes, were fully resolved within a 27-minute run. The method produced sharp, well-defined peaks with minimal overlap, enabling precise quantitation across the tested concentration range.
Emerging directions include coupling with mass spectrometry to enhance selectivity, development of shorter columns and optimized temperature programs for even faster analysis, and adaptation of the method to broader hydrocarbon matrices and trace impurity profiling.
The optimized GC method delivers efficient, reproducible separation of light hydrocarbons, meeting critical analytical demands in the energy and fuels sector. Its simplicity and performance make it a valuable tool for routine monitoring and quality assurance.
No external references cited.
GC, GC columns, Consumables
IndustriesEnergy & Chemicals
ManufacturerAgilent Technologies
Summary
Significance of the Topic
Accurate separation and quantification of C2–C4 hydrocarbons are vital in petrochemical processing to ensure product quality, optimize reaction conditions and monitor environmental emissions. Robust analytical methods enable reliable identification of linear, branched, cyclic and unsaturated species in complex gas streams, supporting operational efficiency and regulatory compliance.
Objectives and Study Overview
This application note demonstrates a gas chromatographic approach for baseline separation of C2 to C4 hydrocarbons in under 30 minutes. The purpose is to validate a rapid, reproducible method suitable for routine analysis of light hydrocarbon mixtures in industrial and laboratory settings.
Methodology
The separation was carried out using wide-bore GC with a CP-Al2O3/Na2SO4 PLOT column (0.32 mm × 50 m, 5 µm film). The temperature program started at 60 °C (hold 5 min), ramped to 135 °C at 5 °C/min, then to 185 °C at 15 °C/min. Helium was used as carrier gas at 69 kPa. A split injection (2 000 µL) at 200 °C and flame ionization detection at 250 °C were employed. Calibration covered 100 ppm to 1 % concentration range.
Instrumentation Used
- Agilent GC system equipped with CP-Al2O3/Na2SO4 capillary PLOT column
- Split injector (200 °C)
- Flame ionization detector (250 °C)
- Helium carrier gas at controlled pressure
Main Results and Discussion
Fourteen hydrocarbons, including propane, cyclopropane, propylene, isobutane, n-butane, propadiene, trans-2-butene, 1-butene, isobutene, cis-2-butene, C5 isomers, 1,3-butadiene, propyne and pentenes, were fully resolved within a 27-minute run. The method produced sharp, well-defined peaks with minimal overlap, enabling precise quantitation across the tested concentration range.
Benefits and Practical Applications
- Fast throughput for high-volume laboratories
- High resolution of isomeric and unsaturated compounds
- Applicability to petrochemical process monitoring and quality control
Future Trends and Possibilities
Emerging directions include coupling with mass spectrometry to enhance selectivity, development of shorter columns and optimized temperature programs for even faster analysis, and adaptation of the method to broader hydrocarbon matrices and trace impurity profiling.
Conclusion
The optimized GC method delivers efficient, reproducible separation of light hydrocarbons, meeting critical analytical demands in the energy and fuels sector. Its simplicity and performance make it a valuable tool for routine monitoring and quality assurance.
Reference
No external references cited.
Content was automatically generated from an orignal PDF document using AI and may contain inaccuracies.
Similar PDF
Hydrocarbons, C2 – C4 - Analysis of butenes in butane on an Agilent UltiMetal PLOT column
2011|Agilent Technologies|Applications
Hydrocarbons, C2 – C4 Analysis of butenes in butane on an Agilent UltiMetal PLOT column Application Note Energy & Fuels Authors Introduction Agilent Technologies, Inc. Gas chromatography with an Agilent CP-Al2O3/Na2O3 column separates butenes in a butane stream in 22…
Key words
butenes, butenesultimetal, ultimetalbutane, butanecourtesy, courtesyfuels, fuelsplot, plotprinted, printedcolumn, columninjector, injectorusa, usaenergy, energyauthors, authorssize, sizetechnique, techniquesample
Hydrocarbons, C1 – C4 - Separation of 16 light hydrocarbons
2011|Agilent Technologies|Applications
Hydrocarbons, C1 – C4 Separation of 16 light hydrocarbons Application Note Energy & Fuels Authors Introduction Agilent Technologies, Inc. Gas chromatography using an Agilent CP-Al2O3/Na2SO4 column separates 16 C1 to C4 light hydrocarbons in 20 minutes Conditions Technique : GC-capillary…
Key words
methylacetylene, methylacetyleneacetylene, acetylenepropylene, propylenefuels, fuelsethylene, ethyleneprinted, printedinjector, injectorusa, usaenergy, energyauthors, authorstechnique, techniquecarrier, carrieridentification, identificationdetector, detectornote
Hydrocarbons, C4 – C12
2011|Agilent Technologies|Applications
Hydrocarbons, C4 – C12 Application Note Energy & Fuels Authors Introduction Agilent Technologies, Inc. Gas chromatography with an Agilent CP-Sil PONA CB column separates over 165 C4 to C12 hydrocarbons in 130 minutes. Conditions Peak identification Technique : GC-capillary Column…
Key words
tentative, tentativeidentification, identificationfuels, fuelspeak, peakprinted, printedinjector, injectorusa, usaenergy, energyauthors, authorssize, sizetechnique, techniquecarrier, carrierdetector, detectornote, notetemperature
PLOT Columns Separation Solutions for Light Hydrocarbons & Gases
2021|Agilent Technologies|Presentations
PLOT Columns Separation Solutions for Light Hydrocarbons & Gases Porous Layer Open Tubulars Johan Kuipers Training & Development Sept 2021 1 Webinar Agilent PLOT Columns DE44454.2362731481 Table of Boiling Point Fractions Carbon # C1 C2 C3 C4 C5 C6 C7…
Key words
plot, plotwebinar, webinarcolumns, columnsagilent, agilentporous, porousoxygenates, oxygenatesalumina, aluminaalcohol, alcoholpolymer, polymerparticle, particlehydrocarbons, hydrocarbonspolar, polarether, etherselectivity, selectivitycolumn