The Technology Landscape

Choosing a DGA monitoring technology is the most consequential decision in transformer asset management. The technology determines what gases you can measure, how often you can measure them, your ongoing operational costs, and ultimately your ability to detect faults before they become failures.

Five main technologies compete in the online DGA market. This guide provides an unbiased technical comparison.


Technology Overview

1. Photoacoustic Spectroscopy (PAS)

Principle: Modulated IR light is absorbed by gas molecules → thermal expansion generates acoustic pressure waves → microphone detects amplitude (proportional to concentration).

Key products: GE Kelman DGA 900, Doble Calisto R9, VA-TEK DGA-200/500

Parameter Specification
Gases measured 5–9 gases + moisture
Sampling interval 30–60 minutes
Consumables None
Detection limit (C₂H₂) 0.05–0.5 ppm
Maintenance Annual inspection only
Operating temperature -40°C to +55°C
H₂ measurement Separate solid-state or TCD sensor
Typical product life 10–15 years

Best for: Online, continuous, multi-gas monitoring on critical and remotely-located transformers where maintenance access is limited.

2. Gas Chromatography (GC)

Principle: Gas sample is injected into a column → different gases travel at different speeds → separated gases are sequentially detected by TCD or FID.

Key products: Qualitrol Serveron TM8/TM3

Parameter Specification
Gases measured 8–9 gases + moisture
Sampling interval 4 hours (1 hour under fault)
Consumables Carrier gas (He), calibration gas, columns
Detection limit (C₂H₂) ≤0.5 ppm
Maintenance Monthly to quarterly
Operating temperature -50°C to +55°C
H₂ measurement Via TCD (included in GC)
Typical product life 10 years (columns: 3–5 years)

Best for: Applications where laboratory-grade accuracy is required and regular maintenance access is available. GC is the only technology currently recognized as a reference method in IEC, IEEE, ASTM, and CIGRE standards.

3. Non-Dispersive Infrared (NDIR)

Principle: Broadband IR light passes through the gas sample → optical filters select specific wavelengths → photodetector measures attenuation (Lambert-Beer law). No acoustic detection — purely optical absorption measurement.

Key products: Vaisala OPT100, Siemens Multisense 5/9, LumaSense SmartDGA

Parameter Specification
Gases measured 5–9 gases + moisture
Sampling interval 1–1.5 hours
Consumables None
Detection limit (C₂H₂) ~0.5 ppm
Maintenance Low — periodic optical path cleaning
Operating temperature -40°C to +55°C
H₂ measurement Separate solid-state sensor
Typical product life 10–15 years

Best for: Utilities seeking maintenance-free multi-gas monitoring. Vaisala’s vacuum extraction variant eliminates oil temperature/pressure effects on gas partitioning.

4. Fourier Transform Infrared Spectroscopy (FTIR)

Principle: Broadband IR passes through interferometer → produces interferogram → Fourier transform yields full IR spectrum → gas identification and quantification from spectral features.

Key products: Hitachi Energy CoreSense M10

Parameter Specification
Gases measured 9 gases + moisture
Sampling interval 10 minutes (fastest multi-gas)
Consumables None
Detection limit (C₂H₂) ~0.5 ppm
Maintenance 10-year maintenance-free design
Operating temperature -50°C to +55°C
H₂ measurement Via FTIR spectral analysis
Typical product life 15–20 years

Best for: Utilities seeking fastest multi-gas analysis with long maintenance intervals. FTIR captures the full IR spectrum, enabling future gas additions via software update without hardware changes.

5. Tunable Diode Laser Absorption Spectroscopy (TDLAS)

Principle: Narrow-linewidth laser tuned to a single gas absorption line → extremely high spectral selectivity → photodetector measures absorption.

Key products: Emerging technology — primarily used for single-gas or dual-gas detection in research and niche applications.

Parameter Specification
Gases measured 1–2 gases per laser
Sampling interval Seconds to minutes
Consumables None
Detection limit (C₂H₂) <0.1 ppm
Maintenance Very low
Operating temperature -40°C to +55°C
H₂ measurement Not directly (no IR signature)
Typical product life 15+ years

Best for: Precision single-gas monitoring (e.g., C₂H₂ for arcing detection). Often used as a supplementary sensor alongside multi-gas PAS or NDIR systems.


Head-to-Head Comparison

Criterion PAS GC NDIR FTIR TDLAS
———– :—: :–: :—-: :—-: :—–:
Multi-gas capability ⭐⭐⭐⭐⭐ ⭐⭐⭐⭐⭐ ⭐⭐⭐⭐ ⭐⭐⭐⭐⭐ ⭐⭐
Detection sensitivity ⭐⭐⭐⭐ ⭐⭐⭐⭐⭐ ⭐⭐⭐ ⭐⭐⭐⭐ ⭐⭐⭐⭐⭐
No consumables ✅ Yes ❌ No ✅ Yes ✅ Yes ✅ Yes
Maintenance burden ⭐⭐⭐⭐⭐ ⭐⭐ ⭐⭐⭐⭐ ⭐⭐⭐⭐⭐ ⭐⭐⭐⭐⭐
Speed (time to result) ⭐⭐⭐⭐ ⭐⭐⭐ ⭐⭐⭐ ⭐⭐⭐⭐⭐ ⭐⭐⭐⭐⭐
Environmental robustness ⭐⭐⭐⭐⭐ ⭐⭐ ⭐⭐⭐⭐ ⭐⭐⭐⭐ ⭐⭐⭐⭐
Standards recognition ⭐⭐⭐ ⭐⭐⭐⭐⭐ ⭐⭐⭐ ⭐⭐⭐ ⭐⭐
Installed base (global) 20,000+ 5,000+ 15,000+ 2,000+ <1,000
Capital cost $$ $$$ $$$ $$$$ $$$
10-year TCO ⭐⭐⭐⭐⭐ ⭐⭐ ⭐⭐⭐⭐ ⭐⭐⭐⭐ ⭐⭐⭐⭐

Technology Selection Guide by Application

Application Scenario Recommended Technology Rationale
Critical GSU transformer (nuclear, large thermal) GC + PAS (dual) GC for accuracy/regulatory; PAS for continuous trending
Transmission substation (220 kV+) PAS or NDIR Maintenance-free, multi-gas, continuous
Remote/unmanned substation PAS with LoRa wireless Zero consumables; wireless data backhaul
Distribution transformer fleet H₂-only or PAS 3-gas Balance cost vs. diagnostic value
Offshore wind farm PAS (corrosion-resistant) No maintenance access; salt-spray environment
Industrial plant (steel, chemical) PAS or NDIR Harsh environment; maintenance-free operation
HVDC converter station PAS or FTIR Multi-gas for complex fault signatures
OLTC monitoring PAS (dedicated system) Sequential multi-tank measurement
Data center UPS transformers H₂-only + moisture Small transformers; cost-sensitive; 100% uptime
Mobile/portable DGA PAS (portable version) Fast field results in <30 minutes

Why PAS is the Most Deployed Online DGA Technology

PAS has become the dominant technology for online multi-gas DGA monitoring for several compelling reasons:

1. Proven at Scale

With over 20,000 PAS-based DGA units deployed globally since 2002, PAS has the largest installed base and longest field track record of any online DGA technology. GE Kelman alone operates over 15,000 PAS units across every continent and climate.

2. True Zero-Consumable Operation

PAS requires no carrier gas, no calibration gas, no columns, and no flame — ever. This is not just a cost advantage; it is an operational necessity for the growing number of transformers at unmanned sites, offshore platforms, and remote renewable installations.

3. Calibration Stability

PAS calibration depends on physical constants — gas absorption coefficients at specific IR wavelengths — rather than consumable-dependent parameters. Reference measurements at non-absorbing wavelengths provide continuous auto-calibration without intervention.

4. Continuous Rate-of-Change Data

PAS provides hourly gas concentrations, enabling rate-of-change trending that is often more diagnostically valuable than absolute concentration values. A rapid increase from 5 to 15 ppm in one week triggers action far more effectively than a single quarterly lab result of 10 ppm.

5. Evolving Technology

PAS is not standing still. Fourth-generation Laser PAS systems achieve 0.05 ppm detection limits with zero cross-interference. Emerging QEPAS technology has demonstrated 17 ppb detection in laboratory settings — a 10× improvement over current commercial systems.


The Two-Tier Monitoring Strategy

Industry best practice increasingly adopts a complementary approach:

Tier Technology Assets Covered Purpose
Online (Tier 1) PAS multi-gas Critical and high-value transformers Continuous trending, early warning, rate-of-change alarms
Laboratory (Tier 2) GC All transformers (annual/biannual) Regulatory compliance, confirmation of online data, fleet screening

This strategy optimizes both protection and cost: PAS provides 24/7 surveillance with zero consumable costs on the transformers that matter most, while periodic laboratory GC provides the regulatory documentation and independent verification that standards require.


Next Steps