Fast Refinery Gas Analysis on the Agilent 8890 Gas Chromatograph with Large Valve Oven
Applications | 2019 | Agilent TechnologiesInstrumentation
Refinery gas streams contain complex mixtures of light hydrocarbons, permanent gases and sulfur species that demand precise quantification for process optimization, environmental compliance and product quality control.
This application note demonstrates a rapid, comprehensive refinery gas analysis on the Agilent 8890 GC equipped with a large valve oven. It aims to separate and quantify C1–C5 hydrocarbon isomers, permanent gases (CO2, CO, O2, N2) and hydrogen in a single injection using a three-channel configuration.
Refinery and petrochemical laboratories gain a rapid, single-injection method delivering high throughput and reliable quantification of light hydrocarbons, permanent gases and hydrogen. Improved oxygen stability and simplified workflow support routine QA/QC, process monitoring and regulatory reporting.
The Agilent 8890 GC with a large valve oven provides a robust, fast refinery gas analysis method that combines multi-channel detection and isothermal column operation to achieve accurate, stable and high-throughput quantification of hydrocarbons, permanent gases and hydrogen in a single run.
GC
IndustriesEnergy & Chemicals
ManufacturerAgilent Technologies
Summary
Importance of the Topic
Refinery gas streams contain complex mixtures of light hydrocarbons, permanent gases and sulfur species that demand precise quantification for process optimization, environmental compliance and product quality control.
Objectives and Study Overview
This application note demonstrates a rapid, comprehensive refinery gas analysis on the Agilent 8890 GC equipped with a large valve oven. It aims to separate and quantify C1–C5 hydrocarbon isomers, permanent gases (CO2, CO, O2, N2) and hydrogen in a single injection using a three-channel configuration.
Applied Methodology and Instrumentation
- Instrumentation: Agilent 8890 GC, large valve oven, Flame Ionization Detector (FID), two Thermal Conductivity Detectors (TCD).
- Columns:
- Channel 1 (FID): Alumina PLOT for C1–C5 isomers; DB-1 precolumn for C6+ backflush.
- Channel 2 (TCD #1): Hayesep and MolSieve packed columns for CO2, CO, O2, N2 (optionally H2S, COS via backflush adjustment).
- Channel 3 (TCD #2): Molecular sieve column with N2 carrier for selective hydrogen detection.
- Large valve oven enables isothermal operation of all columns outside the main GC oven, enhancing oxygen response stability.
Main Results and Discussion
- Efficient separation of 22 hydrocarbon isomers (C1–C5) achieved within 10 minutes.
- Simultaneous detection of permanent gases and hydrogen with clear, distinct peaks on FID and TCD channels.
- Isothermal column operation in the large valve oven reduced oxygen drift associated with temperature programming.
- C6+ hydrocarbons are effectively backflushed to optimize runtime and prevent column overload.
Benefits and Practical Applications
Refinery and petrochemical laboratories gain a rapid, single-injection method delivering high throughput and reliable quantification of light hydrocarbons, permanent gases and hydrogen. Improved oxygen stability and simplified workflow support routine QA/QC, process monitoring and regulatory reporting.
Future Trends and Potential Applications
- Integration with advanced data analytics and automation for real-time process control.
- Extension to sulfur compound analysis through selective detector configurations.
- Coupling with mass spectrometry for enhanced compound identification.
- Further miniaturization and portable GC systems for field monitoring.
Conclusion
The Agilent 8890 GC with a large valve oven provides a robust, fast refinery gas analysis method that combines multi-channel detection and isothermal column operation to achieve accurate, stable and high-throughput quantification of hydrocarbons, permanent gases and hydrogen in a single run.
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