access icon free Development of industrial scale PVC nanocomposites with comprehensive enhancement in dielectric properties

This study aims to develop large-scale polyvinyl chloride (PVC) nanocomposites for industrial application with power cables. To achieve this goal, PVC/silicon dioxide and PVC/titanium dioxide nanocomposites were fabricated with two different loadings of nanoparticles: 0.3 and 0.6 wt.%, in the presence of a suitable coupling agent that was used to reduce the agglomeration of nanoparticles and enhance the compatibility with polymer matrix. The coupling agent used in this study was the amino silane, and the process followed in the nanocomposites preparation was the melt blending method. The dielectric properties of these synthesised nanocomposites were studied by measuring the AC dielectric breakdown strength under the uniform field, then compared with the simulation results. The relative permittivity ( ɛ r), loss tangent (tan  δ ), and DC electrical conductivity ( σ ) were also measured under frequencies ranging from 20 Hz to 1 MHz. In addition, the internal discharge measurements are performed using the traditional needle-plane configuration with the help of phase-resolved partial discharge (PD) analyser. This technique is used to analyse the PDs activity with respect to the phase angle of the applied voltage. It was found that the dielectric breakdown strength and PD resistance of the prepared samples are increased higher than that of the neat PVC; however, the ɛ r, tan  δ , and σ at 50 Hz are decreased.

Inspec keywords: electric breakdown; electrical conductivity; titanium compounds; permittivity; nanoparticles; silicon compounds; melt processing; dielectric losses; nanocomposites; nanofabrication; filled polymers

Other keywords: TiO2; amino silane; melt blending method; phase-resolved partial discharge analyser; traditional needle-plane configuration; power cables; SiO2; nanoparticles; PVC-titanium dioxide nanocomposites; relative permittivity; internal discharge measurements; dielectric breakdown strength; polymer matrix; DC electrical conductivity; PVC-silicon dioxide; loss tangent; frequency 20.0 Hz to 1.0 MHz; dielectric properties; AC dielectric breakdown

Subjects: Other methods of nanofabrication; Electrical properties of thin films, low-dimensional and nanoscale structures; Preparation of reinforced polymers and polymer-based composites; Dielectric breakdown and space-charge effects; Dielectric loss and relaxation; Dielectric permittivity

http://iet.metastore.ingenta.com/content/journals/10.1049/iet-smt.2018.5270
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content/journals/10.1049/iet-smt.2018.5270
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