Title :
Possible mechanisms of superior resistance of polyamide nanocomposites to partial discharges and plasmas
Author :
Fuse, Norikazu ; Ohki, Yoshimichi ; Kozako, Masahiro ; Tanaka, Toshikatsu
Author_Institution :
Waseda Univ., Tokyo
fDate :
2/1/2008 12:00:00 AM
Abstract :
Degradation profiles induced by partial discharges and those induced by oxygen plasmas are compared for polyamide/mica nanocomposites. Both the resistances to partial discharges and to plasmas improve with an increase in nanofiller content. On the other hand, the partial discharge resistance is not improved if mum-sized glass fibers are added to polyamide. In order to investigate these phenomena, the superior resistance mechanism of nanocomposites is discussed, focusing on the effects of the nanofillers on the bulk and surface structures of the resin. It was revealed from X-ray diffraction and permittivity measurements that the nanofiller loading increases crystallinity of the resin and restricts the molecular motion. This should enhance the resistance to degradation. Furthermore, observation results by scanning electron microscopy, energy dispersive X-ray spectroscopy, and X-ray diffraction revealed that the nanofillers had piled up themselves to form a layered structure on the sample surface in an early stage of degradation. Such a structure acts as a barrier against impact of charged particles and diffusion of gases such as oxygen, which should contribute to the improvement of resistance to degradation as its direct effect and also as its indirect effect by suppressing the oxidation of resin. Moreover, it was also revealed from scanning electron microscopy that the nanofillers impede the growth of surface cavities by partial discharges drastically.
Keywords :
X-ray chemical analysis; X-ray diffraction; filled polymers; mica; nanocomposites; nanoparticles; partial discharges; permittivity; plasma materials processing; scanning electron microscopy; surface structure; surface treatment; Nanocomposites; X-ray diffraction; degradation profiles; energy dispersive X-ray spectroscopy; gas diffusion; layered structure; mica; nanofiller; oxidation; partial discharges; permittivity; plasmas; polyamide; scanning electron microscopy; surface cavity growth; surface structures; Degradation; Glass; Nanocomposites; Partial discharges; Plasmas; Resins; Scanning electron microscopy; Surface resistance; Surface structures; X-ray diffraction;
Journal_Title :
Dielectrics and Electrical Insulation, IEEE Transactions on
DOI :
10.1109/T-DEI.2008.4446747