DocumentCode
3355052
Title
Generation of LMW components in silicone rubbers
Author
Lu, Z.W. ; Janssen, H. ; Herden, A. ; Kärner, H.C.
Author_Institution
Northeast China Inst. of Electr. Power Eng., Jilin, China
Volume
2
fYear
1999
fDate
1999
Firstpage
727
Abstract
Silicone rubber materials (SiR) used for high voltage outdoor insulators are able to recover hydrophobicity after loss. This self-healing process is mainly based on the diffusion of low molecular weight molecules (LMWs). The amount of diffusible LMWs determines the lifetime of the self-healing-process. Former results indicated that lost LMWs are replaced by new LMWs generated from the silicone bulk. For two different SiR the impoverishment and the generation of LMWs are shown by the following experiments: Storing SiR samples continuously in solvent, the absolute amount of LMWs is determined. The influence of the solvent pollution on the value is announced. Sample sets are stored for 4 days at different temperatures (about 20, 80, and 140°C). Afterwards the amount of LMWs is determined. To confirm generation of LMWs, several cycles of this experiment are carried out. Only for samples stored at 140°C was the LMW amount significantly higher. Gas chromatography combined with mass spectroscopy (GC-MS) investigations are carried out to analyse SiR extracts as well as solvent pollutions. Chemical reactions generating LMWs are presented
Keywords
chromatography; mass spectroscopic chemical analysis; molecular weight; silicone rubber insulators; gas chromatography; high voltage outdoor insulators; hydrophobicity; low molecular weight molecules; mass spectroscopy; self-healing; silicone rubbers; solvent pollution; Chemicals; Cities and towns; Ovens; Pollution measurement; Power engineering and energy; Rubber; Silicon on insulator technology; Solvents; Temperature; Voltage;
fLanguage
English
Publisher
ieee
Conference_Titel
Electrical Insulation and Dielectric Phenomena, 1999 Annual Report Conference on
Conference_Location
Austin, TX
Print_ISBN
0-7803-5414-1
Type
conf
DOI
10.1109/CEIDP.1999.807908
Filename
807908
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