Title :
Numerical analysis of space charge accumulation and conduction properties in LDPE nanodielectrics
Author :
Daomin Min ; Weiwang Wang ; Shengtao Li
Author_Institution :
State Key Lab. of Electr. Insulation & Power Equip., Xi´an Jiaotong Univ., Xi´an, China
Abstract :
LDPE nanodielectrics show good space charge suppression performances, reducing the electric field distortions and improving the electric strengths. The decrease of space charge accumulation of LDPE nanodielectrics with increasing the nanoparticle loadings can be explained by the reduction of charge injection, the enhancement of conduction, and so on. However, the phenomena that the conductivities of LDPE nanodielectrics decrease firstly and then may increase with increasing the nanoparticle loadings has not been fully understood. A bipolar charge transport model consisting of charge injection, charge migration, and charge trapping, detrapping, recombination dynamics is used to investigate the space charge accumulation and conduction properties of LDPE nanodielectrics. Based on simulation results and existing experimental results, we discuss the influencing factors for space charge accumulation and conduction properties of LDPE nanodielectrics. It is found that the heightening of injection barrier plays a more important role in the suppression of space charges and the reduction of conductivities of LDPE nanodielectrics. Whereas, the variation of trap density and trap energy will regulate the nanoparticle loading dependent conduction properties.
Keywords :
charge injection; current density; dielectric materials; electric strength; electrical conductivity; nanofabrication; nanoparticles; plastics; space charge; LDPE nanodielectrics; bipolar charge transport model; charge detrapping; charge injection; charge migration; charge recombination dynamics; conduction properties; electric field distortions; electric strengths; enhancement conduction; injection barrier; low density polyethylene; nanoparticle loadings; numerical analysis; space charge accumulation; Current density; Electric fields; Electron traps; Loading; Mathematical model; Space charge; Conduction; LDPE nanodielectrics; bipolar charge transport; injection barrier; space charge;
Journal_Title :
Dielectrics and Electrical Insulation, IEEE Transactions on
DOI :
10.1109/TDEI.2015.7116341