Partial discharge testing in instrument transformers is a non-destructive diagnostic method that detects localized insulation breakdown inside the transformer before it leads to full failure. It measures discharge magnitude in picocoulombs (pC), giving engineers an early warning sign of insulation weakness long before a visible fault develops making it a critical tool for ensuring long-term reliability in metering and protection circuits. Regular partial discharge test on transformer units helps catch this degradation while it’s still manageable, long before it turns into an outage.
In this guide, you’ll learn what partial discharge actually is, why it occurs inside instrument transformers, how the test is performed in practice, and which IS and IEC standards including IEC 60270 govern acceptable discharge limits. Understanding partial discharge testing in instrument transformers isn’t just a compliance checkbox, it’s one of the most reliable ways to catch insulation degradation before it becomes a costly failure in the field.
A partial discharge test of current transformer units matters because PD is an early sign of insulation degradation, visible long before an actual fault occurs. Left undetected, it progresses silently until failure.
PD originates in voids, cracks, or contamination, causing localized field concentration and repeated discharges, driving insulation aging through thermal and chemical damage. Void discharge behaviour varies by type: oil-filled insulation discharges at liquid-solid interfaces, while epoxy resin insulation discharges within cast voids. Undetected PD risks sudden in-service failure and safety hazards. Bodies like CPRI and ERDA support insulation testing standards in India, reinforcing PD testing as mandatory for critical installations.
Most articles on partial discharge testing explain how to detect the problem. Far fewer explain where partial discharge comes from in the first place — yet for anyone specifying or buying a current transformer or voltage transformer, that is the more useful question. A partial discharge test of a current transformer does not create insulation quality; it only reveals it. The quality itself is decided years earlier, at the design and winding stage.
Partial discharge is a localised electrical breakdown that bridges only part of the insulation between two conductors. It does not cause immediate failure. It erodes the insulation gradually, and because insulation ageing follows a strongly non-linear relationship with electrical stress, even a modest increase in local field can shorten the service life of an instrument transformer disproportionately. This is why a low picocoulomb (pC) reading matters far beyond the test bay. That’s why a PD test of transformer units belongs at multiple stages of production, not just at the end — it catches design or winding flaws before they ever leave the factory.

Partial discharge testing of a current transformer using electrical testing equipment in a high-voltage transformer manufacturing facility.
Insulation void and gas inclusions. A cavity trapped in paper, oil or cast resin has a lower permittivity than the surrounding solid insulation, so the electric field inside it is higher than in the material around it — while its breakdown strength is lower. The result is void discharge: the cavity breaks down repeatedly at a fraction of the applied voltage, eroding the surrounding insulation from the inside. In oil-impregnated paper (OIP) instrument transformers, voids are typically the residue of incomplete vacuum drying and oil impregnation. In cast-resin and dry-type units, they arise from imperfect casting or curing.
Moisture and contamination. Moisture in cellulose insulation lowers dielectric strength, raises dissipation factor (tan δ), and accelerates ageing. It also lowers the PD inception voltage — the threshold at which discharges begin. Rigorous vacuum drying, controlled impregnation, and a properly sealed enclosure are the only real defences.
Field concentration at edges and interfaces. The electric field does not distribute itself evenly. It concentrates at sharp edges, at the ends of conductive layers, and at boundaries between materials of differing permittivity. In a high voltage current transformer, the most critical of these regions is the condenser-graded bushing — and it is here that design, more than material, decides whether a unit is partial discharge free.
Inside a condenser-graded bushing, thin conductive foils are embedded at calculated intervals between the primary conductor and the earthed flange. These foils form a chain of series capacitors, and the voltage across each layer is inversely proportional to that layer’s capacitance. By sizing the foils correctly, the designer forces each layer to carry an approximately equal share of the total voltage.
That grading does two jobs at once:
When the grading is well executed, the field is uniform and PD inception voltage sits comfortably above the operating and test voltages. When it is not — when foil geometry drifts, layers are unevenly sized, or foil edges are left sharp — the voltage distribution skews toward the weakest layers, local field rises, and partial discharge begins at test voltages the unit should comfortably withstand. A fine-graded bushing, with correctly proportioned layers and rounded, controlled foil edges, is therefore not a marketing phrase. It is the single most important reason a high voltage current transformer passes or fails its partial discharge test.
Manufacturers of instrument transformers use several complementary measures to keep discharge activity below the limits set by IEC 61869 and the relevant Indian standard:
A partial discharge test on an instrument transformer is, in effect, an audit of every one of the design and process decisions above. A unit that measures low, stable discharge at the specified test voltage is telling you that its insulation is void-free, dry, and correctly graded. A unit that shows rising discharge — or that passes only marginally is telling you something about how it was designed and built, not merely how it was tested.
This is why buyers of High Voltage Current Transformer and voltage transformers should look past the pass/fail line on the certificate and ask about the design behind it: how the bushing is graded, how the unit is dried and impregnated, how it is sealed, and whether every unit is routine-tested for partial discharge before dispatch — not only the type-test prototype.
A PD test of transformer unit fits into distinct stages of the equipment lifecycle.
Type test proves the design meets the required standard, done once on a prototype — not on every unit. A special type test adds stricter conditions when a project’s spec demands it. Straton’s designs are type tested at national laboratories as standard practice.
Routine test is performed on every manufactured unit before dispatch, since type testing validates the design but not each production unit. FAT confirms the specific equipment supplied for a project was built correctly. Straton’s 700kV Partial Discharge-free Series Resonance test lab, with a Static Frequency Converter for inductance and frequency regulation, supports this stage as part of their final testing sequence on every transformer.
Site Acceptance Testing is more common for larger power transformers; for instrument transformers it’s typically reserved for suspected transport/installation damage or when specifically required by project spec.
For Indian procurement — including PGCIL and State Electricity Board projects — which stage (type, routine, FAT, or site) is mandated is usually defined in the tender or technical specification, and should be confirmed before finalizing test scope.

Partial discharge testing of a current transformer using high-voltage electrical testing equipment in a controlled transformer testing laboratory.
Partial Discharge limits are set by IEC 61869‑1 and IS 16227, and vary by insulation type (oil-immersed vs. dry-type) and rated voltage class
Permissible discharge level is expressed in picocoulombs (pC), measured at the specified test voltage rather than at peak.
A unit passing at a stable, low pC reading indicates sound insulation; readings near the acceptance criteria warrant closer review of design and manufacturing quality.
| Aspect | Oil-Immersed CTs | Dry-Type (Cast Resin) CTs |
| Insulation type | Oil-impregnated paper (OIP) | Epoxy resin, cast via APG process |
| Primary PD cause | Residual moisture and voids from drying/impregnation | Gelation/casting defects (voids) |
| Moisture sensitivity | High — paper moisture reduced from typical 7–10% to under 0.5% during vacuum drying and impregnation | Low — hydrophobic, non-hygroscopic once cured and void-free |
| Humidity effect on insulation | Moisture-sensitive throughout service life; raises tan δ and lowers PD inception voltage | Comparatively stable across ambient humidity once properly cast |
| Applicable acceptance criteria | Separate permissible PD level under IS 16227 | Separate permissible PD level under IS 16227 |
| Test verification | Partial discharge test result checked against the oil-immersed limit, per BIS-aligned procedures | Partial discharge test result checked against the dry-type limit, per BIS-aligned procedures |
Key takeaway: the two insulation systems fail differently — one is moisture-driven, the other defect-driven — so a PD reading only means something when checked against the acceptance criteria for its own insulation type, not the other’s.
Straton Electricals’ in-house 700 kV PD-free test lab reflects strong Indian manufacturing and testing capability, letting every unit undergo Partial Discharge Testing on-site, validated per BIS-aligned standards and cross-checked at ERDA and CPRI. Higher-voltage lab capacity enables testing of larger transformer ratings without third-party dependency — a common bottleneck for EPCs and utilities. This in-house capability is a trust signal, cutting turnaround time versus outsourced testing and supporting faster delivery.
PD testing is generally required for 33kV and higher-rated CTs as part of type testing and often specified in utility tender documents. Requirements can vary by project and standard, so it’s best to confirm against your specific technical specification or IS/IEC requirement before finalising test scope.
Lower picocoulomb (pC) readings generally indicate healthier insulation. Acceptable limits differ for oil-immersed versus dry-type CTs and are specified in the applicable standard. Your test report will confirm whether the reading falls within the permitted range for your transformer type.
Type testing is done once to prove a design meets standards, usually on a prototype. Routine testing is done on every unit before dispatch to confirm consistent quality. Both use the same PD measurement principle but serve different purposes in the manufacturing process.
Yes, though for instrument transformers, factory testing before dispatch is more common practice. Site testing is typically reserved for larger power transformers or when transport/installation damage needs to be ruled out.
The insulation medium behaves differently under electrical stress — oil and dry resin have different discharge characteristics and failure modes. Standards account for this by setting separate permissible PD levels for each type, so results are judged against the right benchmark.