Title :
Acoustic data of cross linked polyethylene (XLPE) and cured liquid silicone rubber (LSR) by means of ultrasonic and low frequency DMTA
Author :
Buchholz, Uwe ; Jaunich, Matthias ; Stark, Wolfgang ; Habel, Wolfgang ; Petersson, Bj A. T.
Author_Institution :
BAM Fed. Inst. for Mater. Res. & Testing, Berlin, Germany
fDate :
4/1/2012 12:00:00 AM
Abstract :
Partial discharges may cause damage to electrical insulation of high voltage equipment. They initiate elastic waves in the insulating material, e.g. in the stress cone of an outdoor termination. Localisation of the origin of such elastic waves can help to predict serious damaging processes in the electrical insulation. In order to measure and evaluate the wave propagation effects in typical multilayered elastomeric structures, knowledge of the material properties is required. The propagating velocity and the attenuation of longitudinal waves are important parameters. Values for these quantities found in the literature were not appropriate. Therefore, for cross-linked polyethylene (XLPE) and cured liquid silicone rubber (LSR), the longitudinal wave velocity and the attenuation were evaluated in the temperature interval from -20°C to 50°C and in the frequency range from 200 kHz to 600 kHz using a two-sample ultrasound technique. The loss factor was determined from these measured quantities. Additionally, low frequency Dynamic Mechanical Thermal Analysis (DMTA) was applied to investigate LSR and XLPE in a temperature interval between -100 and 50°C and to check qualitatively the ultrasound data.
Keywords :
insulating materials; partial discharges; polymers; silicone rubber; acoustic data; cross linked polyethylene; cured LSR; cured liquid silicone rubber; damaging processes; elastic waves; electrical insulation; frequency 200 kHz to 600 kHz; high voltage equipment; insulating material; longitudinal wave attenuation; low frequency DMTA; low frequency dynamic mechanical thermal analysis; multilayered elastomeric structures; outdoor termination; partial discharges; stress cone; temperature -100 degC to 50 degC; two-sample ultrasound technique; ultrasonic frequency DMTA; wave propagation effects; Acoustic measurements; Acoustics; Attenuation; Materials; Temperature measurement; Transducers; Ultrasonic variables measurement; Acoustic propagation; Cross linked polyethylene insulation; Mechanical variables measurement; Silicone rubber;
Journal_Title :
Dielectrics and Electrical Insulation, IEEE Transactions on
DOI :
10.1109/TDEI.2012.6180250