What is Dissolved Gas Analysis (DGA)?

Dissolved Gas Analysis is the single most important diagnostic tool for assessing the health of oil-filled power transformers. When a transformer experiences thermal or electrical stress, the mineral oil and cellulose insulation decompose, generating specific gases that dissolve in the oil. By measuring the types and concentrations of these gases, DGA can:

  • Detect incipient faults weeks or months before they become critical
  • Identify fault type — partial discharge, overheating, arcing, or insulation degradation
  • Estimate fault severity — from mild overheating to active arcing
  • Track fault progression — rate-of-change trending provides early warning

DGA is mandated by international standards (IEC 60599, IEEE C57.104) and is used by utilities worldwide as the foundation of transformer condition-based maintenance programs.


The 7 Key Fault Gases

Each gas tells a specific story about what is happening inside the transformer. Understanding their generation mechanisms is the first step to accurate diagnosis.

Hydrogen (H₂)

Property Value
Chemical formula H₂
Generation temperature All temperatures (earliest gas produced)
Primary fault association Partial discharge (PD), corona
Secondary fault association Low-temperature thermal faults, stray gassing
IEEE C57.104 90% norm 80 ppm

Key insight: Hydrogen is the universal early warning gas. It is produced at relatively low temperatures (<150°C) in partial discharge events and continues to be generated across all fault temperature ranges. A rising H₂ trend is often the first indicator of any developing problem — but by itself, it cannot distinguish between fault types. This is why hydrogen-only monitors are excellent for early screening but insufficient for complete diagnosis.

Generation mechanism: Ionic bombardment from corona discharge breaks C-H bonds in hydrocarbon oil molecules, releasing atomic hydrogen that rapidly recombines into H₂.

Methane (CH₄)

Property Value
Chemical formula CH₄
Generation temperature 150–300°C
Primary fault association Low-temperature thermal faults (T1)
IEEE C57.104 90% norm 90 ppm

Key insight: Methane is the signature gas for low-temperature overheating. In the Duval Triangle method, methane forms one axis of the diagnostic triangle. High CH₄ with low C₂H₄ suggests a hot spot in the 150–300°C range — often from overloaded connections, circulating currents, or early-stage core faults.

Ethane (C₂H₆)

Property Value
Chemical formula C₂H₆
Generation temperature 300–500°C
Primary fault association Mid-range thermal faults
IEEE C57.104 90% norm 90 ppm

Key insight: Ethane is produced at intermediate temperatures. The C₂H₆/C₂H₄ ratio is a key indicator of thermal fault severity — a higher proportion of ethane relative to ethylene indicates a lower-temperature hot spot. As temperature rises above 500°C, ethylene production accelerates and C₂H₆/C₂H₄ decreases.

Ethylene (C₂H₄)

Property Value
Chemical formula C₂H₄
Generation temperature >500°C
Primary fault association High-temperature overheating (T2, T3)
IEEE C57.104 90% norm 50 ppm

Key insight: Ethylene is the primary indicator of severe thermal faults. Above 500°C, ethylene production dominates. A rapidly increasing C₂H₄ trend with low acetylene strongly suggests a hot spot exceeding 500°C — often from bad contacts, circulating currents in core, or tank wall heating from high-current bushings.

Acetylene (C₂H₂)

Property Value
Chemical formula C₂H₂
Generation temperature >700°C (typically >1000°C)
Primary fault association High-energy arcing, severe electrical discharges
IEEE C57.104 90% norm 1 ppm (most critical threshold)

Key insight: Acetylene is the most diagnostically significant gas in DGA. It is produced almost exclusively by electrical arcing at temperatures above 700°C — conditions that cause rapid and catastrophic insulation failure. Even trace amounts of C₂H₂ (>1 ppm) demand immediate investigation. A transformer with detectable acetylene should be considered at risk of active internal arcing.

Critical note: Acetylene can be as low as 2 ppm during a real arcing fault. A hydrogen-only monitor cannot detect this — this is the strongest argument for multi-gas DGA monitoring on critical transformers.

Carbon Monoxide (CO)

Property Value
Chemical formula CO
Generation temperature All temperatures (cellulose pyrolysis)
Primary fault association Paper/cellulose insulation degradation
IEEE C57.104 90% norm 900 ppm

Key insight: Carbon monoxide is the primary indicator of solid insulation (paper) degradation. Unlike the hydrocarbon gases (H₂, CH₄, C₂H₆, C₂H₄, C₂H₂) which come from oil decomposition, CO comes from the cellulose paper that wraps the transformer windings. Rising CO indicates the paper insulation — which cannot be replaced without a complete rewind — is deteriorating.

Carbon Dioxide (CO₂)

Property Value
Chemical formula CO₂
Generation temperature All temperatures (cellulose oxidation)
Primary fault association Paper/cellulose degradation (broader range than CO)
IEEE C57.104 90% norm 9,000 ppm

Key insight: The CO₂/CO ratio is diagnostically important. A normal CO₂/CO ratio for healthy transformers is typically >7. When the ratio drops below 3, it indicates pyrolysis of cellulose (thermal paper decomposition) rather than normal oxidation — a more serious condition. However, CO₂/CO interpretation must account for CO₂ from atmospheric oxidation in free-breathing transformers.


Gas Generation Summary Table

Gas Symbol Temperature Primary Fault 90% Norm (IEEE) Key Ratio
Hydrogen H₂ All temps Partial discharge, corona 80 ppm CH₄/H₂
Methane CH₄ 150–300°C Low-temp thermal (T1) 90 ppm
Ethane C₂H₆ 300–500°C Mid-range thermal 90 ppm C₂H₆/C₂H₄
Ethylene C₂H₄ >500°C High-temp thermal (T2, T3) 50 ppm C₂H₄/C₂H₆
Acetylene C₂H₂ >700°C High-energy arcing (D1, D2) 1 ppm C₂H₂/C₂H₄
Carbon Monoxide CO All temps Paper degradation 900 ppm CO₂/CO
Carbon Dioxide CO₂ All temps Paper oxidation/degradation 9,000 ppm CO₂/CO

Ostwald Coefficients and Gas Solubility

Gases dissolve in transformer oil according to Ostwald solubility coefficients. These coefficients are temperature-dependent and gas-specific — they determine the equilibrium between gas concentration in the oil and in the headspace (or gas extraction system).

Gas Ostwald Coefficient at 20°C Ostwald Coefficient at 50°C Solubility
H₂ 0.050 0.055 Very low (stays in oil)
CO 0.121 0.115 Low
CH₄ 0.427 0.392 Moderate
C₂H₆ 2.17 1.66 High
C₂H₄ 1.45 1.14 High
C₂H₂ 1.15 0.94 Moderate-High
CO₂ 1.08 0.97 Moderate

Practical implication: Acetylene is highly soluble — if you detect 1 ppm C₂H₂ in the oil, the actual fault may have generated significantly more. Hydrogen, conversely, partitions strongly into the oil phase. Understanding solubility is essential for comparing online DGA readings with laboratory GC results.


Standards for DGA Interpretation

DGA data is interpreted using internationally recognized standards:

Standard Title Key Content
IEC 60599:2022 Guidance on interpretation of dissolved and free gases analysis Gas ratio methods (R1=CH₄/H₂, R2=C₂H₂/C₂H₄, R3=C₂H₄/C₂H₆); fault classification PD/D1/D2/T1/T2/T3
IEEE C57.104-2019 Guide for Interpretation of Gases Generated in Mineral Oil-Immersed Transformers 90th/95th percentile statistical norms; DGA Status 1/2/3 classification; Duval Triangles/Pentagons
IEC 60567:2024 Sampling and analysis of free and dissolved gases Laboratory procedures; 3 gas extraction methods; new Annex F for ester and silicone fluids
IEEE C57.143-2024 Guide for Application of Monitoring Equipment Monitoring parameters; communication protocols; cybersecurity; cost-benefit analysis
CIGRE TB 771 (2019) Advances in DGA Interpretation 330,000+ case database; graded severity; faults by location; expanded sub-types

From DGA Data to Action

DGA results should trigger a structured response:

Condition Criteria Recommended Action
Normal All gases below IEEE 90% norms; stable trends Continue routine monitoring (online: hourly; lab: annual)
Caution (Status 1→2) Any gas exceeds 90% norm OR rising trend detected Increase online sampling frequency; schedule confirmatory lab DGA; review load history
Abnormal (Status 2) Gases between 90% and 95% norms with rising trend Perform comprehensive DGA interpretation (Duval, Rogers, IEC ratios); plan inspection
Critical (Status 3) Any gas above 95% norm OR rapid rate-of-change Immediate investigation; consider outage; continuous online monitoring if not already installed

Next Steps in Your DGA Journey