The Standards Landscape for DGA Monitoring

Dissolved Gas Analysis is governed by a comprehensive framework of international standards that cover every aspect — from oil sampling and laboratory analysis to data interpretation and online monitor application. Understanding these standards is essential for specifying equipment, interpreting results, and ensuring regulatory compliance.


Core DGA Standards

IEC 60567:2024 — Oil-Filled Electrical Equipment — Sampling and Analysis

Current edition: 5th Edition (2023), published 2024

Scope: This is the primary laboratory standard. It specifies methods for:

  • Sampling free gases from gas collection relays (Buchholz)
  • Extracting dissolved gases from oil samples (three approved methods)
  • Analyzing gas composition using gas chromatography

Key updates in 2024 edition:

  • Annex F (NEW): DGA analysis procedures for insulating liquids other than mineral oil — including synthetic esters, natural esters, and silicone fluids
  • Two mercury-free extraction methods: Low-pressure vacuum extraction and mechanical oscillation (replacing traditional Toepler pump method using mercury)
  • Oil sampling procedures moved to IEC 60475:2022 Clause 4.2

Gas extraction methods specified:

Method Principle Notes
Vacuum extraction (Toepler) Multi-cycle vacuum degassing Traditional reference; mercury-free alternatives now available
Carrier-gas stripping Inert gas bubbling through oil Continuous extraction; good for automated systems
Headspace partition Equilibrium partitioning Used in PAS and most online monitors

Relevance to PAS-DGA: PAS monitors use headspace or vacuum extraction methods that are aligned with IEC 60567 principles. While IEC 60567 specifies GC as the analysis method, PAS results are validated against GC reference measurements per this standard.


IEC 60599:2022 — Guidance on Interpretation of Dissolved and Free Gases Analysis

Current edition: 4th Edition (2022)

Scope: This is the primary interpretation standard. It provides:

  • Gas ratio calculation methods for fault diagnosis
  • Fault type classification codes (PD, D1, D2, T1, T2, T3)
  • Guidance on normal gas concentration levels
  • Rate-of-change evaluation criteria

Key diagnostic ratios:

Ratio Formula Fault Indication
R1 = CH₄/H₂ Methane / Hydrogen Low (<0.1) → PD; High (>1.0) → thermal
R2 = C₂H₂/C₂H₄ Acetylene / Ethylene >0.5 → discharge; >3.0 → arcing
R3 = C₂H₄/C₂H₆ Ethylene / Ethane <1.0 → low temp; >4.0 → high temp

2022 edition additions:

  • New Annex for bushings and wind-turbine transformer DGA interpretation
  • Updated typical gas concentration values reflecting larger global database

IEEE C57.104-2019 — Guide for Interpretation of Gases in Mineral Oil-Immersed Transformers

Current edition: 2019 (Revision PC57.104 approved May 2024)

Scope: The primary North American interpretation standard. Uses a statistical approach based on large transformer population databases.

Key features:

  • 90th and 95th percentile gas concentration norms — stratified by transformer age and O₂/N₂ ratio (sealed vs. free-breathing)
  • DGA Status Classification:

Status 1: All gases below 90th percentile — normal
Status 2: At least one gas between 90th and 95th percentile OR confirmed rising trend — caution
Status 3: Any gas above 95th percentile OR rapid rate-of-change — action required

  • Incorporates Duval Triangles (1, 4, 5) and Rogers Ratios as diagnostic methods

IEEE C57.104-2019 Table 1 — 90th Percentile Norms (sealed transformers, all ages):

Gas H₂ CH₄ C₂H₂ C₂H₄ C₂H₆ CO CO₂
—– :–: :—: :—-: :—-: :—-: :—: :—:
ppm 80 90 1 50 90 900 9,000

Critical note: The 1 ppm threshold for C₂H₂ means ANY detectable acetylene in a sealed transformer should trigger investigation.


IEEE C57.143-2024 — Guide for Application of Monitoring Equipment

Current edition: 2024

Scope: This is the key standard for specifying and applying online DGA monitors. It covers:

  • Monitoring parameters (DGA, temperature, moisture, partial discharge, bushings, OLTC)
  • Communication protocols (IEC 61850, DNP3, Modbus)
  • Cybersecurity requirements (IEC 62443 alignment)
  • Cost-benefit analysis methodology
  • Annex E: Specific guidance for online DGA monitoring data analysis

Key recommendation: C57.143 recommends continuous multi-gas DGA monitoring for:

  • GSU transformers ≥100 MVA
  • Transmission transformers ≥220 kV
  • Any transformer where failure would cause >$1M in consequential costs


CIGRE Technical Brochures

Brochure Year Title Pages Key Content
TB 783 2019 DGA Monitoring Systems 53 Comprehensive survey of all online DGA monitors; technology categorization (M1–M9 by gas count); accuracy verification procedures; recommends M7–M9 for critical transformers
TB 771 2019 Advances in DGA Interpretation 77 Most comprehensive DGA interpretation reference. 330,000+ case database; graded severity replacing single thresholds; faults by location (oil vs. paper); expanded sub-types (S, O, C, T3-H, R); Duval Triangle/Pentagon coordinates

Both brochures produced by CIGRE Joint Working Group JWG D1/A2.47 (Convenor: Michel Duval).


Standards by Application Stage

Stage Applicable Standards
Oil Sampling IEC 60475:2022, ASTM D3613
Laboratory Gas Extraction & Analysis IEC 60567:2024, ASTM D3612
Online Monitor Specification IEEE C57.143-2024, CIGRE TB 783
DGA Data Interpretation IEC 60599:2022, IEEE C57.104-2019, CIGRE TB 771
Factory Testing (DGA) IEEE C57.130-2015

PAS and Standards Compliance

Photoacoustic Spectroscopy is not yet codified as a reference measurement method in IEC/IEEE/ASTM standards — gas chromatography remains the only DGA technology specifically named in these standards. However:

  • PAS-based monitors are designed to produce results that correlate with laboratory GC (IEC 60567 methods)
  • All PAS-DGA products apply IEC 60599 and IEEE C57.104 interpretation methods to their gas concentration data
  • CIGRE TB 783 includes PAS-based monitors in its technology survey and application guidance
  • IEEE C57.143-2024 provides application guidance applicable to all monitor types, including PAS

Field validation: Comparative studies between PAS online monitors and laboratory GC typically show correlation coefficients of R² > 0.95 for key gases (C₂H₂, C₂H₄, CH₄). Minor systematic differences can occur due to different gas extraction methods (headspace vs. vacuum vs. stripping).


Certifications Relevant to DGA Monitors

Certification Relevance
ISO 9001 Quality management system — manufacturing consistency
IEC 61010 Safety requirements for electrical measurement equipment
IEC 61850 Communication networks and systems for power utility automation
IEC 62443 Industrial communication networks — cybersecurity
IP65/IP66 Ingress protection — outdoor substation deployment
ATEX / IECEx Explosive atmosphere certification (oil & gas applications)
CE Marking European conformity — required for EU market access
DNV / Lloyd’s Marine classification (offshore/vessel applications)

References