Why Do Transformer Failures Occur? An Analysis of Key Issues in Selection, Operation, and Maintenance Based on Field Case Studies
Oil-immersed transformer oil leakage is a common issue in outdoor projects.
Many site personnel consider minor oil seepage as “not serious” and choose to continue operation temporarily. However, from an engineering perspective, any oil leakage should be addressed immediately and should not be delayed.
Transformer oil has two critical functions:
- Cooling medium
- Insulation medium
Long-term oil leakage can cause:
- Oil level reduction, exposing the upper winding to air and causing a sharp decrease in insulation strength;
- External moisture entering through leakage points, increasing moisture content;
- Reduced oil volume, weakening circulating cooling capability and worsening temperature rise.
4.1Most Common Oil Leakage Locations on Site
(1) Tank Cover and Tank Flange Sealing Area
Large-capacity transformer tank covers are large in size. Uneven bolt tightening or aging sealing gaskets can cause leakage.
(2)High-Voltage / Low-Voltage Bushing Base
Thermal expansion and contraction stresses concentrate in this area, causing sealing rings to age, crack, and lose effectiveness.
(3)Radiator and Tank Connection Flanges
Vibration and thermal cycling can loosen bolts and cause gasket failure.
(4)Drain Valve and Oil Sampling Valve
Common causes include aging sealing components or incomplete closing after operation.
4.2Case: Outdoor Transformer Oil Leakage in UAE
An oil-immersed transformer in an industrial project was inspected during its third year of operation. Minor oil seepage was found at the bottom of the tank.
Because the transformer was still operating normally, the team decided to postpone repair.
However, in the Middle East:
- Daytime temperatures exceed 45℃;
- Large temperature differences occur between day and night;
- Severe dust exposure exists.
Continuous thermal cycling accelerated seal gasket aging, while dust accumulation around the leakage area further worsened the condition.
Six months later:
- Oil level decreased;
- Moisture content increased;
- Insulation performance deteriorated;
- The transformer eventually had to be shut down.
If the sealing component had been replaced at the initial stage, the repair would have taken only several hours.
At the later stage, the repair required:
- Oil draining;
- Drying treatment;
- Re-testing.
The maintenance cost increased several times.
4.3Correct Oil Leakage Handling Process
Leakage detected
↓
Record location and leakage amount (take photos and keep records)
↓
Determine severity:
- Minor seepage or obvious dripping?
- Leakage frequency?
↓
Identify the cause: - Seal aging?
- Loose bolts?
- Welding cracks?
↓
Develop repair plan: - Minor leakage: tighten bolts under controlled conditions or replace sealing rings;
- Severe leakage: power shutdown, oil draining, and repair required.
↓
Post-repair testing: - Sealing test
- Oil breakdown voltage test
Confirm no abnormality before returning the transformer to operation.
5. Winding Failure: The “Hidden Fracture” Left by Short-Circuit Impact
The winding is the heart of the transformer.
During normal operation, it continuously withstands:
- Thermal stress
- Mechanical forces
When a grid short circuit occurs, the huge short-circuit current (which can reach 10–20 times rated current) generates extremely strong electromagnetic forces between windings.
This may cause:
- Axial or radial winding deformation;
- Compression damage to insulation layers;
- Changes in turn-to-turn spacing;
- Electric field distortion.
The most easily overlooked point is:
After a short-circuit impact, the transformer may still continue operating normally.
It is like a bone with a small crack — a person may still be able to walk, but the structure is no longer in perfect condition.
After repeated impacts or another load disturbance, the existing damage may continue developing and eventually lead to insulation failure. In severe cases, conductor breakage may occur.
5.1Case: Industrial Park Project in Russia
A 2000kVA oil-immersed transformer experienced a grid short circuit during its third winter of operation.
Protection devices operated, and the transformer was re-energized afterward.
Because power supply remained normal, no further inspection was carried out.
One year later, another failure occurred.
Factory inspection found:
- Significant axial deformation of the low-voltage winding.
Analysis showed:
- Large seasonal load variations in winter;
- Frequent startup of large equipment;
- Increased starting impact current;
- Mechanical stress changes caused by low temperatures.
The previous short-circuit event had already caused minor deformation. Because it was not detected in time, the damage gradually developed into insulation failure.
5.2Preventing Winding Failures from the Source
(1)Specify Higher Short-Circuit Withstand Capability During Selection
Technical specifications should include requirements such as:
- “Short-circuit impedance shall not be lower than the required standard value”;
- “Windings shall use semi-hard copper conductors”;
- “Additional end clamping structures shall be provided.”
Do not only state:
“Comply with IEC 60076.”
(2)Pay Attention to Short-Circuit Testing Before Delivery
For industrial projects or critical grid nodes, it is recommended to require:
Short-circuit withstand capability type test reports
(real physical tests, not only calculation reports).
(3) Control Short-Circuit Impact Frequency During Operation
If a system experiences a short-circuit trip:
It is recommended to perform:
Winding deformation analysis using Frequency Response Analysis (FRA)
to determine whether mechanical deformation has occurred.
Do not ignore the issue simply because:
“The transformer is still operating.”
6. New Challenges in the Renewable Energy Era: Load Cycling, Harmonics, and Harsh Outdoor Environments

About ZISHENG ELECTRICAL
Zisheng are a professional 19+ years manufacturer in producing Oil-Immersed Transformers, Compact Substation, Pad Mounted Transformers, Pole Mounted Transformers and Dry Type Transformers. We own the certificates of ISO/CE/IEC 60076 and TUV Rheinland.
Transformers undergo rigorous FAT and type testing, support voltage/capacity customization. Welcome to consult for Catalog and Product. you can contact us at email [email protected].





