Title :
Thermodynamic model for electrical tree propagation kinetics in combined electrical and mechanical stresses
Author :
Ding, H.-Z. ; Varlow, B.R.
Author_Institution :
Sch. of Eng., Manchester Univ.
Abstract :
In this paper we develop a kinetic model for the growth of electrical tree structures in solid polymeric insulation that allows for combined electrical and mechanical stresses. We present an energy balance analysis during the tree growth process and show the total tree extension driving force is not a material constant due to the existence of a damage process zone around the tree tip and the dissipated heat and the trapped energy remaining in the damage process zone. We derive both the tree growth rate equation and life formula of tree propagation to breakdown, based on the specific tree growth mechanism and the fractal nature of tree structures. We perform electrical tree growth tests in epoxy resin samples with and without mechanical residual stresses, and present results which show that the proposed model can give predicted tree propagation times to failure in good agreement with the experimental data of the tree growth subjected to a combined electrical and mechanical stress
Keywords :
epoxy insulation; fractals; insulation testing; life testing; stress analysis; thermodynamics; trees (electrical); breakdown; damage process zone; electrical stress; electrical tree propagation kinetics; energy balance analysis; epoxy resin; fractal dimension; heat dissipation; mechanical stress; organic insulating materials; solid polymeric insulation; thermodynamic model; trapped energy; tree extension driving force; tree growth mechanism; tree growth process; tree growth rate equation; Dielectrics and electrical insulation; Equations; Kinetic theory; Plastic insulation; Polymers; Solid modeling; Stress; Thermodynamics; Tree data structures; Trees - insulation;
Journal_Title :
Dielectrics and Electrical Insulation, IEEE Transactions on
DOI :
10.1109/TDEI.2005.1394018