Natural Gas Analyzer for GPA 2177
Others | 2016 | Thermo Fisher ScientificInstrumentation
Natural gas liquids (NGLs) are critical energy commodities whose heating value and composition must be accurately measured for process control, quality assurance and commercial transactions. Determining the British Thermal Unit (BTU) content and detailed hydrocarbon profile of NGL streams ensures compliance with industry standards and supports efficient operation of gas processing facilities.
This application note introduces the Thermo Scientific Natural Gas Analyzer configured for GPA Method 2177. The aim is to present an instrument solution based on the TRACE 1310 Gas Chromatograph that offers precise quantification of C1 through C6 hydrocarbons, a C7+ regroup, and common permanent gases in single or dual-channel formats to meet throughput requirements.
The system separates sample components using a three-packed-column arrangement housed within a GC oven. An independently heated valve oven with two switching valves enables sample introduction and column switching. Separation is achieved under programmed temperature conditions, and a thermal conductivity detector (TCD) quantifies each component. Sulfur-resistant inlet and transfer lines protect the system from sulfur compounds present in NGL samples.
The analyzer achieves baseline separation of methane, ethane, propane, i-butane, n-butane, i-pentane, n-pentane, 2,2-dimethylbutane, 2-methylpentane, 3-methylpentane, n-hexane and a C7+ regroup peak in under 27 minutes per sample. Key performance figures include:
Trace-level sensitivity and robust precision underline suitability for both laboratory QC and custody transfer applications.
Ongoing development in gas chromatography is expected to focus on faster separations through micro-packed columns and advanced temperature programming, integration of complementary detectors (e.g., mass spectrometry for structural confirmation), and enhanced automation for online process monitoring. Combining multi-method analyzers into single platforms, applying real-time data analytics and remote operation capabilities will further optimize NGL analysis workflows.
The Thermo Scientific Natural Gas Analyzer tailored to GPA 2177 provides a robust, high-performance solution for quantifying BTU content and detailed hydrocarbon profiles in NGL samples. Its modular design, precise separation, low detection limits and dual-channel option enable reliable operation across laboratory and field environments.
GC
IndustriesEnergy & Chemicals
ManufacturerThermo Fisher Scientific
Summary
Importance of the Topic
Natural gas liquids (NGLs) are critical energy commodities whose heating value and composition must be accurately measured for process control, quality assurance and commercial transactions. Determining the British Thermal Unit (BTU) content and detailed hydrocarbon profile of NGL streams ensures compliance with industry standards and supports efficient operation of gas processing facilities.
Objectives and Study Overview
This application note introduces the Thermo Scientific Natural Gas Analyzer configured for GPA Method 2177. The aim is to present an instrument solution based on the TRACE 1310 Gas Chromatograph that offers precise quantification of C1 through C6 hydrocarbons, a C7+ regroup, and common permanent gases in single or dual-channel formats to meet throughput requirements.
Methodology
The system separates sample components using a three-packed-column arrangement housed within a GC oven. An independently heated valve oven with two switching valves enables sample introduction and column switching. Separation is achieved under programmed temperature conditions, and a thermal conductivity detector (TCD) quantifies each component. Sulfur-resistant inlet and transfer lines protect the system from sulfur compounds present in NGL samples.
Instrumentation Used
- Thermo Scientific TRACE 1310 Gas Chromatograph
- Three packed columns per channel
- Independently heated valve oven with dual valves
- Single thermal conductivity detector (TCD)
- Sulfur-resistant tubing and fittings
- Optional dual-channel configuration for simultaneous analysis
Main Results and Discussion
The analyzer achieves baseline separation of methane, ethane, propane, i-butane, n-butane, i-pentane, n-pentane, 2,2-dimethylbutane, 2-methylpentane, 3-methylpentane, n-hexane and a C7+ regroup peak in under 27 minutes per sample. Key performance figures include:
- Repeatability better than 1.0%
- Method detection limits (MDL): hydrocarbons 0.005%, permanent gases 0.01%, H₂S 0.05%
- Compliance with GPA Method 2177 specifications
Trace-level sensitivity and robust precision underline suitability for both laboratory QC and custody transfer applications.
Benefits and Practical Applications
- Full compliance with GPA 2177 for NGL BTU and composition analysis
- Scalable throughput via single or dual channel configurations
- High precision and low detection limits ensure reliable measurement in QA/QC and regulatory environments
- Turnkey solution integrates sample handling, separation and detection
- Customizable to specific process conditions and extended hydrocarbon ranges
Future Trends and Applications
Ongoing development in gas chromatography is expected to focus on faster separations through micro-packed columns and advanced temperature programming, integration of complementary detectors (e.g., mass spectrometry for structural confirmation), and enhanced automation for online process monitoring. Combining multi-method analyzers into single platforms, applying real-time data analytics and remote operation capabilities will further optimize NGL analysis workflows.
Conclusion
The Thermo Scientific Natural Gas Analyzer tailored to GPA 2177 provides a robust, high-performance solution for quantifying BTU content and detailed hydrocarbon profiles in NGL samples. Its modular design, precise separation, low detection limits and dual-channel option enable reliable operation across laboratory and field environments.
References
- Thermo Fisher Scientific Inc. Natural Gas Analyzer for GPA 2177 Application Note SP10489_E (2016)
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