From Gas Data to Fault Identification

Each type of transformer fault produces a characteristic pattern of dissolved gases. Understanding these patterns — and the physical damage mechanisms behind them — transforms DGA from a monitoring tool into a true diagnostic instrument.


Partial Discharge (PD)

Temperature range: <150°C (low-energy ionization)
Primary gas: H₂ (hydrogen) — typically >80% of total combustible gas
Secondary gases: CH₄ (methane), trace C₂H₆
Key ratio: CH₄/H₂ < 0.1 (indicating PD rather than thermal)
Duval zone: PD

Physical Mechanism

Partial discharge occurs in gas-filled voids within solid insulation — between paper layers, in epoxy spacers, or at electrode-insulation interfaces. The electric field in these voids exceeds the breakdown strength of the gas, causing localized ionization without complete breakdown. Each discharge event:

  1. Ionizes gas molecules in the void
  2. Bombards the void walls with energetic electrons and ions
  3. Breaks C-H bonds in adjacent oil molecules
  4. Releases atomic hydrogen that recombines into H₂

Over time, PD erodes the solid insulation surface, progressively enlarging the void and increasing discharge energy — a self-accelerating degradation process.

DGA Signature

Gas Typical Concentration Pattern
H₂ 50–500 ppm (rising slowly) Dominant — >80% of hydrocarbons
CH₄ 5–50 ppm Low — secondary product
C₂H₆ 1–10 ppm Trace — minimal
C₂H₄ <5 ppm Very low — insufficient energy
C₂H₂ 0 ppm Absent — PD cannot generate C₂H₂

Risk Assessment

Severity H₂ Level Rate of Change Action
Mild <100 ppm <10 ppm/month Continue monitoring at standard interval
Moderate 100–500 ppm 10–50 ppm/month Increase sampling frequency; plan inspection
Severe >500 ppm >50 ppm/month Schedule outage; acoustic PD location; prepare repair

Low-Energy Discharge (D1)

Temperature range: 150–500°C (low-energy sparking)
Primary gas: H₂ + C₂H₂ (acetylene appears!)
Secondary gases: CH₄, C₂H₄
Key ratio: C₂H₂/C₂H₄ = 0.5–3.0
Duval zone: D1

Physical Mechanism

D1 discharges are small sparks or intermittent flashovers between parts at different potentials — often from:

  • Floating shields or screens
  • Loose clamping bolts or core grounding straps
  • Poorly bonded tank walls or magnetic shunts
  • Small carbonized tracking paths on insulation surfaces

The distinguishing feature from PD is the presence of acetylene (C₂H₂) — the temperature in the spark channel exceeds 700°C locally, enough to break triple C-C bonds and form C₂H₂, but the total energy release is low.

DGA Signature

Gas Typical Concentration Pattern
H₂ 100–1,000 ppm Elevated — principal gas
C₂H₂ 5–50 ppm Present — the critical indicator
CH₄ 20–200 ppm Moderate
C₂H₄ 20–200 ppm Moderate
C₂H₆ 10–100 ppm Low-moderate

Risk Assessment

Any acetylene in a transformer that previously had zero C₂H₂ demands immediate investigation. Even 2–5 ppm of new C₂H₂ indicates that discharge is occurring somewhere. The transformer may continue operating while investigation proceeds, but the sampling frequency should be increased to daily or continuous.


High-Energy Discharge / Arcing (D2)

Temperature range: >1000°C (power arc)
Primary gas: C₂H₂ (acetylene) — massive production
Secondary gases: H₂, C₂H₄, CH₄ — all sharply elevated
Key ratio: C₂H₂/C₂H₄ > 3.0
Duval zone: D2

Physical Mechanism

High-energy arcing is the most destructive transformer fault. A sustained power arc between windings, from winding to core/tank, or across a tap changer contact can:

  • Vaporize copper conductors
  • Carbonize hundreds of liters of oil
  • Generate explosive gas pressures (tank rupture risk)
  • Destroy the transformer within seconds to minutes

Arcing temperatures exceed 1000°C and can reach 3000°C at the arc root. At these temperatures, all hydrocarbon bonds break and recombine, producing large quantities of acetylene, hydrogen, and other gases.

DGA Signature — Emergency Pattern

Gas Typical Concentration Pattern
C₂H₂ 50–5,000+ ppm Massive — signature of arcing
H₂ 500–10,000+ ppm Very high
C₂H₄ 100–1,000+ ppm High
CH₄ 50–500 ppm Elevated
C₂H₆ 20–200 ppm Elevated
CO Elevated if paper involved

Emergency Response

Any transformer with rapidly rising acetylene >10 ppm should be considered at imminent risk of catastrophic failure. The recommended response:

  1. Immediately increase to continuous monitoring (if not already)
  2. De-energize if possible — the arc will not self-extinguish
  3. Do not rely on Buchholz relay alone — gas accumulation may lag behind arc development
  4. Prepare for complete failure — fire suppression, oil containment, spare transformer mobilization

Thermal Fault — Low Temperature (T1, <300°C)

Temperature range: <300°C
Primary gas: CH₄ (methane) — dominant
Secondary gases: H₂, C₂H₆
Key ratio: C₂H₄/C₂H₆ < 1.0 (indicating lower temperature)
Duval zone: T1

Physical Mechanism

T1 faults involve mild overheating from:

  • Slightly overloaded conductors
  • Early-stage bad contacts or loose connections
  • Circulating currents in core clamping structures
  • Improperly seated bushings

At these temperatures, oil molecules thermally crack into smaller fragments, with methane as the primary product.

DGA Signature

Gas Typical Concentration Pattern
CH₄ 50–500 ppm Dominant
H₂ 50–200 ppm Moderate
C₂H₆ 20–200 ppm Moderate
C₂H₄ 20–100 ppm Low — key differentiator from T2/T3
C₂H₂ 0 ppm Absent

Action Plan

T1 faults are generally not urgent. They indicate a developing problem that should be investigated at the next scheduled maintenance opportunity. Continue monitoring for transition to T2 (increasing C₂H₄).


Thermal Fault — Medium Temperature (T2, 300–700°C)

Temperature range: 300–700°C
Primary gas: C₂H₄ (ethylene) becomes significant
Secondary gases: CH₄, C₂H₆, H₂
Key ratio: C₂H₄/C₂H₆ = 1.0–4.0
Duval zone: T2

Physical Mechanism

T2 faults represent significant overheating — typically from:

  • Bad contacts at bolted connections (common after maintenance)
  • Strand-to-strand short circuits in windings (few strands affected)
  • Core lamination short circuits (localized)
  • Blocked oil cooling ducts (localized hot spot)

DGA Signature

Gas Typical Concentration Pattern
C₂H₄ 100–1,000+ ppm Dominant — the T2 marker
CH₄ 50–500 ppm High
C₂H₆ 50–500 ppm High
H₂ 50–200 ppm Moderate
C₂H₂ 0–5 ppm Trace or absent

Action Plan

T2 faults require planned intervention within weeks to months. Load reduction can temporarily slow gas generation. Schedule internal inspection at next opportunity.


Thermal Fault — High Temperature (T3, >700°C)

Temperature range: >700°C
Primary gas: C₂H₄ (ethylene) + C₂H₂ appears
Secondary gases: All gases elevated
Key ratio: C₂H₄/C₂H₆ > 4.0; C₂H₂ begins to appear
Duval zone: T3 (bordering D2 as temperature rises)

Physical Mechanism

T3 faults are severe overheating approaching the carbonization temperature of oil:

  • Multiple strand short circuits in windings
  • Severe core faults with large circulating currents
  • Tank wall heating from magnetic flux impingement
  • Advanced OLTC contact deterioration

At these temperatures, oil carbonizes into conductive carbon particles, accelerating degradation and risking flashover.

DGA Signature

Gas Typical Concentration Pattern
C₂H₄ 500–5,000+ ppm Very high
CH₄ 200–1,000+ ppm High
C₂H₆ 100–500 ppm Elevated
H₂ 200–1,000+ ppm High
C₂H₂ 5–50 ppm Present — distinguishing T3 from T2

Action Plan

T3 faults require urgent action. The transformer should be removed from service as soon as practical. If C₂H₂ is rising concurrently, treat as potential D2 — consider immediate de-energization.


Cellulose / Paper Degradation

Temperature range: All temperatures (chemical process)
Primary gas: CO (carbon monoxide)
Secondary gas: CO₂ (carbon dioxide)
Key ratio: CO₂/CO < 3 (pyrolysis); CO₂/CO = 3–7 (oxidation); CO₂/CO > 7 (normal aging)
IEEE C57.104 90% norms: CO = 900 ppm, CO₂ = 9,000 ppm

Physical Mechanism

Paper insulation (cellulose) degrades through two distinct mechanisms:

Pyrolysis (Thermal Decomposition)

  • Occurs at hot spots >105°C
  • Produces CO as the primary carbon oxide
  • CO₂/CO ratio drops below 3
  • Irreversible — paper cannot regenerate
  • Degree of polymerization (DP) decreases — mechanical strength lost

Oxidation (Normal Aging)

  • Occurs slowly at normal operating temperatures (60–90°C)
  • Produces more CO₂ than CO
  • CO₂/CO ratio typically >7
  • Accelerated by moisture and oxygen

DGA Signature

Gas Pyrolysis Pattern Oxidation Pattern
CO High, rapidly rising Slowly increasing over years
CO₂ Low-moderate increase High, slow increase
CO₂/CO <3 (ALARM) >7 (normal)

Risk Assessment

Cellulose degradation is the most serious long-term condition because paper insulation cannot be replaced without a complete transformer rewind. Rising CO with a falling CO₂/CO ratio indicates active paper pyrolysis — the transformer’s solid insulation is being consumed.

Action: If CO₂/CO < 3 with rising CO trend, assess remaining transformer life. Consider derating to reduce hotspot temperatures. Prepare replacement strategy.


Fault Summary Matrix

Fault Temperature Dominant Gas Key Indicator Duval Zone Urgency
PD <150°C H₂ CH₄/H₂ < 0.1 PD Monitor
D1 (low-energy discharge) 150–500°C H₂ + C₂H₂ C₂H₂ present, 0.5–3 ppm D1 Investigate
D2 (arcing) >1000°C C₂H₂ C₂H₂ >10 ppm, rapid rise D2 Emergency
T1 (low-temp thermal) <300°C CH₄ C₂H₄/C₂H₆ < 1.0 T1 Schedule
T2 (mid-temp thermal) 300–700°C C₂H₄ C₂H₄/C₂H₆ 1.0–4.0 T2 Plan soon
T3 (high-temp thermal) >700°C C₂H₄ + C₂H₂ C₂H₄/C₂H₆ > 4.0; C₂H₂ emerging T3/DT Urgent
Paper pyrolysis >105°C CO CO₂/CO < 3 Assess life

References

  • IEC 60599:2022 — Mineral oil-filled electrical equipment — Interpretation of dissolved and free gases
  • IEEE C57.104-2019 — Guide for Interpretation of Gases in Mineral Oil-Immersed Transformers
  • CIGRE TB 771 (2019) — Advances in DGA Interpretation (330,000+ case database)
  • Duval, M. — “A Review of Faults Detectable by Gas-in-Oil Analysis in Transformers” (IEEE Electrical Insulation Magazine, 2002)

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