• Home
  • ATL News
  • Hydrocarbon Fraction Splitting Characterization C6+, C7+, C14+, C36+

Hydrocarbon Fraction Splitting Characterization C6+, C7+, C14+, C36+

Expert Technical Training Note: Hydrocarbon Fraction Splitting & Extended Characterization (C6+, C7+, C14+, C36+)

Natural Gas Testing

Core Objectives

This technical module establishes operational standards for characterizing heavy hydrocarbon fractions (C6+ through C36+) in natural gas testing. Laboratory technicians, measurement engineers, and production chemists will learn to:

  1. Select appropriate analytical standards (GPA 2261, GPA 2286, GPA 2186, ASTM D1945).
  1. Execute proper backflushing and capillary column separation techniques.
  1. Calculate physical properties (gross heating value, relative density, compressibility factor, and Hydrocarbon Dew Point) without introducing operational bias or calculation errors.

1. Analytical Method Hierarchy & Standards Overview

Standard natural gas compositions group heavy fractions into lumped pseudo-components (e.g., C6+). Advanced thermodynamic modeling, pipeline custody transfer, and custody dew point management require extended analysis (C7+, C14+, C36+).

┌─────────────────────────────────────────────────────────┐

│                     Standard Gas (GPA 2261)            │

│                     Lumped C6+ Peak                     │

└────────────────────────────┬────────────────────────────┘

                             │ Extended Analysis

                             ▼

┌─────────────────────────────────────────────────────────┐

│                 Extended Natural Gas (GPA 2286)          │

│               Individual C6 to C14+ Separation          │

└────────────────────────────┬────────────────────────────┘

                             │ Deep Characterization

                             ▼

┌─────────────────────────────────────────────────────────┐

│              Heavy Gas Condensate / Rich Gas            │

│              Simulated Distillation to C36+             │

└─────────────────────────────────────────────────────────┘

Method / StandardTarget FractionSeparation TechniquePrimary Application
GPA 2261 / ASTM D1945C6+ (Lumped)Packed/Capillary Column with Backflush to TCDPipeline custody transfer, standard tariff compliance.
GPA 2286C7+ / C14+ (Split)Dual Column (Packed + Capillary) with TCD & FIDDeep gas processing plants, liquid recovery (NGL) optimization.
GPA 2186C14+ / Liquid NGLTemperature-Programmed GC / FIDDemethanized liquids, rich gas condensates.
High-Temp SimDis / Extended GCC36+High-Temperature Capillary GC / FIDEquation of State (EOS) tuning, Black Oil & Condensate PVT modeling.

2. Chromatographic Mechanics & Hardware Configuration

Standard C6+ Backflush Technique

  • Mechanism: Hydrocarbons heavier than Isopentane (n-C5) are retained on a short precut column while light gases (N2, CH4, CO2, C2-C5) pass to the analytical column.
  • Valve Timing: At a pre-calculated retention time, the switching valve reverses flow across the precut column, backflushing all C6 and heavier molecules as a single consolidated peak into the Thermal Conductivity Detector (TCD).
  • Assumed Ratio for Property Calculation: Unless characterized, the default C6+ pseudo-component is mathematically split as:
  • 60\%\text  C6\text (Hexane)
  • 30\%\text  C7\text (Heptane)
  • 10\%\text  C8\text (Octane)

Extended C7+, C14+, and C36+ Separation

  • Hardware: Utilizes a standard Gas Sampling Valve (GSV) coupled with a capillary column (e.g., 100\text m \times 0.25\text mm Dimethylpolysiloxane DB-1 or HP-1) and a Flame Ionization Detector (FID).
  • Thermal Ramp: Temperature programming starts at low temperatures (-10^\circ\textC to 40^\circ\textC) to focus volatile fractions, then ramps at 5^\circ\textC to 15^\circ\textC/min up to 320^\circ\textC+ to elute heavy alkanes, cycloalkanes, and aromatics.
  • C36+ High-Temperature GC: Requires high-temperature polyimide-coated or metal capillary columns operating up to 400^\circ\textC with cool on-column injection to avoid thermal degradation of heavy waxes.

3. Sampling Protocols & Contamination Control

Sampling errors disproportionately affect C6+ through C36+ fractions due to phase behavior changes inside sampling vessels.

                  ┌───────────────────────────────┐

                  │      Heated Probe in Main     │

                  │        Gas Stream Line        │

                  └──────────────┬────────────────┘

                                 │

                                 ▼

                  ┌───────────────────────────────┐

                  │     Heated Regulator System   │

                  │   (Maintain T > Dewpoint +20°F)

                  └──────────────┬────────────────┘

                                 │

                                 ▼

                  ┌───────────────────────────────┐

                  │    Heated Transport Tubing    │

                  │       (Trace Heating)         │

                  └──────────────┬────────────────┘

                                 │

                                 ▼

                  ┌───────────────────────────────┐

                  │ Constant Pressure Cylinder /  │

                  │      Chromatograph Loop       │

                  └───────────────────────────────┘

Key Rules for High-Fraction Sampling

  1. Maintain Thermal Envelope: Sampling lines and regulators must be heated to at least 15^\circ\textC (30^\circ\textF) above the predicted Hydrocarbon Dew Point (HDP). Drops in line temperature cause retrograde condensation, stripping C14+ and C36+ components from the vapor phase.
  1. Phase Isolation: Ensure liquid entrainment is avoided unless using specialized liquid injection valves for NGL/condensate testing.
  1. Materials: Use sulfinert/silcosteel-treated stainless steel tubing to prevent adsorption of aromatic heavier compounds (C6-C9 aromatics) or trace sulfur compounds.

4. Technical Calculations & Property Assignment

To calculate the Gross Heating Value (BTU/SCF), Specific Gravity, and Compressibility (Z) from an extended GC run, heavy pseudo-components must be properly characterized.

Characterization Steps

  1. Group Quantification: Sum the total area under peakseluting within specified retention windows:
  1. C6 Window: n-C5 elution end to n-C6 elution end.
  1. C7+ Fraction: Sum of all peaks eluting after n-C6.
  1. C14+ Fraction: Sum of all peaks eluting after n-C13.
  1. C36+ Fraction: Residual material eluting after n-C35.
  1. Molecular Weight & Density Matching: Assign physical constants to the split fractions using GPA Standard 2145 physical property tables.

\textMWCn+ = \sumi=n^N xi \cdot \textMWi

\textDensityCn+ = \frac\sum xi \cdot \textMWi\sum \left( \fracxi \cdot \textMWi\rhoi \right)

  1. Hydrocarbon Dew Point Impact:
  1. A single part-per-million (ppm) shift in C14+ content can shift the Hydrocarbon Dew Point by 5^\circ\textC to 15^\circ\textC.
  1. Using an uncharacterized C6+ assumption in rich gas thermodynamics leads to severe underestimation of liquid drop-out risks in downstream compressors.

5. Troubleshooting & QA/QC Checklist

PhenomenonPotential Root CauseCorrective Action
Incomplete C6+ Backflush PeakPrecut column valve timing drifted; carrier gas flow rate shifted.Recalibrate backflush switch time using a standard calibration gas containing n-C5, n-C6, and n-C7.
Baseline Drift on C14+ / C36+ RampsStationary phase column bleed at elevated temperatures (>300^\circ\textC).Execute baseline subtraction run (blank run); condition column or lower max temperature limit.
Peak Tailing on Heavy AlkanesCold spots in gas injection port, sample line, or transfer line.Inspect heated zones. Ensure transfer line temperature is maintained uniformly without cold junctions.
Low C14+ Recovery vs. Field HistoryRetrograde condensation inside sampling cylinder during transport.Heat sample cylinder to 60^\circ\textC (140^\circ\textF) for at least 2 hours prior to injection into the GC loop.

Want to learn more about Gas tests? you may visit our dedicated page Gas Testing

Should you have any enquiries and looking for a competitive quote, feel free to contact us 24/7:

get a quote

Get a Quote Today
Instant response!
[email protected]
Middle East – Far East – Africa – Europe – America – Australia – Asia

contact today