Title :
Analytical evaluation of distribution of relaxation time
Author :
Raju, G. R Govinda
Author_Institution :
Dept. of Electr. & Comput. Eng., Windsor Univ., Ont., Canada
Abstract :
The complex dielectric constant of a material in the condensed phase provides important information with regard to its microscopic properties. The real and imaginary properties of the dielectric constant are usually studied as a function of frequency at various constant temperatures or alternatively, as a function of temperature at various constant frequencies. Time domain measurements may also be employed instead of frequency domain measurements as an alternative technique. Using transformation techniques the time domain data are transformed into the frequency domain. A complex plane plot of the dielectric data in the frequency domain can be described by several functions such as Cole-Cole, Davidson-Cole or Havriliak-Negami expressions. From these expressions the distribution of relaxation times G(τ) may be derived analytical methods. Each of the distribution functions has distinct characteristics that may be used to gain insight into the macroscopic properties. The author has evaluated the distribution functions for several polymers. In this paper the calculations for poly(methyl methacrylate) PMMA and poly(vinyl acetate) are presented. In PVAc the influence of the glass transition temperature on the distribution is clearly evident
Keywords :
dielectric relaxation; frequency-domain analysis; glass transition; permittivity; polymers; time-domain analysis; Cole-Cole plot; Davidson-Cole plot; Havriliak-Negami expression; PMMA; complex dielectric constant; complex plane plot; condensed phase; distribution functions; frequency domain measurements; glass transition temperature; imaginary properties; macroscopic properties; microscopic properties; poly(methyl methacrylate); poly(vinyl acetate); polymers; real properties; relaxation time; time domain measurements; transformation techniques; Dielectric constant; Dielectric materials; Dielectric measurements; Distribution functions; Frequency domain analysis; Frequency measurement; Microscopy; Polymers; Temperature; Time measurement;
Conference_Titel :
Electrical Insulation and Dielectric Phenomena, 2000 Annual Report Conference on
Conference_Location :
Victoria, BC
Print_ISBN :
0-7803-6413-9
DOI :
10.1109/CEIDP.2000.885256