IEEE Transactions on Electrical Insulation · 1985 · 14 citations · 5 references
Thermal InsulationElectrical EngineeringEngineeringHigh Temperature MaterialsHigh Voltage EngineeringElectrical StressesUltimate FailureInsulation DegradationDurability PerformanceThermal ProtectionDevice ReliabilityPartial Discharge QuantitiesElectronic PackagingHeat TransferThermal EngineeringPhysic Of FailureElectrical Insulation
This paper presents the results on a resin-rich machine insulation system subjected to varying stresses such as electrical (2.6 to 13.3 MV/m) and thermal (40 to 155° C) acting together. Accelerated electro-thermal aging experiments subsequently have been performed to understand the insulation degradation The interpretations are based on several measured properties like capacitance, loss tangent, ac resistance, leakage current, and partial discharge quantities. The results indicate that the changes in properties are not significant below a certain temperature for any applied stress, Beyond this temperature large variations are observed even for low electrical stresses. Electrothermal aging studies reveal that the acceleration of the insulation degradation and the ultimate time to failure depends on the relative values of temperature and voltage stresses. At lower temperatures, below critical, material characteristics of the system predominate whereas beyond this temperature, other phenomena come into play causing insulation deterioration. During aging under combined stresses, it appears that the prevailing temperature of the system has a significant role in the insulation degradation and ultimate failure.
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Aging of insulation by thermal and electrical stresses
Emmanuel Fort, H. E. Pietsch · 1975 · 27 citations
Electrical Insulation Measurements
Electronics and Power · 1966 · 14 citations