Title :
Multivariate analysis of the dielectric response of materials modeled using networks of resistors and capacitors
Author :
Kawakami Harrop Galvao, Roberto ; Kienitz, Karl Heinz ; Hadjiloucas, S. ; Walker, G.C. ; Bowen, J.W. ; Figueredo Carreiro Soares, Sofacles ; Ugulino Araujo, Mario Cesar
Author_Institution :
Dept. of Electron. Eng., Inst. Tecnol. de Aeronaut., Sao Jose dos Campos, Brazil
Abstract :
We discuss the modeling of dielectric responses of electromagnetically excited networks which are composed of a mixture of capacitors and resistors. Such networks can be employed as lumped-parameter circuits to model the response of composite materials containing conductive and insulating grains. The dynamics of the excited network systems are studied using a state space model derived from a randomized incidence matrix. Time and frequency domain responses from synthetic data sets generated from state space models are analyzed for the purpose of estimating the fraction of capacitors in the network. Good results were obtained by using either the time-domain response to a pulse excitation or impedance data at selected frequencies. A chemometric framework based on a Successive Projections Algorithm (SPA) enables the construction of multiple linear regression (MLR) models which can efficiently determine the ratio of conductive to insulating components in composite material samples. The proposed method avoids restrictions commonly associated with Archie´s law, the application of percolation theory or Kohlrausch-Williams-Watts models and is applicable to experimental results generated by either time domain transient spectrometers or continuous-wave instruments. Furthermore, it is quite generic and applicable to tomography, acoustics as well as other spectroscopies such as nuclear magnetic resonance, electron paramagnetic resonance and, therefore, should be of general interest across the dielectrics community.
Keywords :
capacitors; composite insulating materials; dielectric materials; frequency-domain analysis; matrix algebra; percolation; regression analysis; resistors; state-space methods; time-domain analysis; Archie law; Kohlrausch-Williams-Watts models; MLR models; SPA; capacitors; chemometric framework; composite material samples; continuous-wave instruments; dielectric response; electromagnetically excited networks; electron paramagnetic resonance; frequency domain responses; impedance data; insulating grains; lumped-parameter circuits; multiple linear regression model; multivariate analysis; nuclear magnetic resonance; percolation theory; pulse excitation; randomized incidence matrix; resistors; state space model; successive projections algorithm; synthetic data sets; time domain responses; time domain transient spectrometers; tomography; Admittance; Analytical models; Capacitors; Frequency-domain analysis; Resistors; Time-domain analysis; Archie´s law; Electrical circuits; Kohlrausch-Williams Watts models; capacitors; chemometrics; dielectrics; multivariate analysis; relaxation processes; signal processing; spectrometry;
Journal_Title :
Dielectrics and Electrical Insulation, IEEE Transactions on
DOI :
10.1109/TDEI.2013.6518970