Computes Total Dissolved Combustible Gases (H₂ + CH₄ + C₂H₆ + C₂H₄ + C₂H₂ + CO), calculates continuous gas generation rate in ppm/day over the sampling interval, and provides actionable maintenance recommendations based on IEEE C57.104-2019 Table 1 thresholds.
Governing Formulas & Standards
Standards Basis: IEEE Std C57.104-2019 / IEC 60599 / CIGRE TB 771
\text{TDCG} = \text{H}_2 + \text{CH}_4 + \text{C}_2\text{H}_6 + \text{C}_2\text{H}_4 + \text{C}_2\text{H}_2 + \text{CO} \quad ; \quad R_{gas} = \frac{\text{TDCG}_2 - \text{TDCG}_1}{\Delta t \text{ (days)}}
Sums combustible gases and computes rate of change per day to distinguish active developing faults from historical residual gases.
Worked Engineering Example: Substation GSU Transformer DGA 30-Day Trend Analysis
- TDCG Increase: ΔTDCG = 620 - 350 = 270 ppm → +270 ppm
- Daily Generation Rate: R_gas = 270 / 30 = 9.0 ppm/day → 9.0 ppm/day
- IEEE Condition Assignment: Rate 9.0 ppm/day (> 5.0 ppm/day threshold for Condition 2) → Condition 2 (Caution - Resample in 1 month)
Final Solution: TDCG: 620 ppm | Generation Rate: 9.0 ppm/day | Status: IEEE Condition 2 (Active Monitoring)
Frequently Asked Questions
- Why is the gas generation rate (ppm/day) more important than absolute ppm concentration?
- A high absolute gas concentration might represent an old, cleared fault from years ago. A rapid generation rate (ppm/day) proves that an active fault is currently developing inside the transformer, generating heat, arcing, or partial discharge in real time.
Interactive calculation engine and real-time CAD solver available online at https://amithvijayan.in/tools/transformer-dga-gas-rate.