DocumentCode :
1773320
Title :
Evaluation of a new technique for preparation of HDPE / silica nanocomposites
Author :
Couderc, H. ; Frechette, M.F. ; Heid, T. ; David, E.
Author_Institution :
Ecole de Technol. Super. (ETS), Montreal, QC, Canada
fYear :
2014
fDate :
8-11 June 2014
Firstpage :
324
Lastpage :
328
Abstract :
This paper presents a new preparation method of nanocomposites using planetary milling of ceramic nanofiller with polymer matrix. The chosen matrix is High Density Poly Ethylene and the filler is nanometric fumed silica, raw or surface treated with two different silanes surfactants. The idea is to promote the penetration of nanosilica in HDPE grains using the high shear stress occurring during planetary milling. Different fabrication parameters (duration and rotation speed) were tested. Scanning Differential Calorimetry measurements showed that the cristallinity rate is slightly reduced by the inclusion of a nanofiller. Initially, the samples exhibited a loss peak at 0.1Hz at 20°C, due to the water presence at the interface. This peak was removed after a short annealing at 100°C. At higher temperatures, nanocomposites samples should exhibit a Maxwell - Wagner - Sillars loss peak in Dielectric Spectroscopy measurements, from the interface developed in the material between materials with different conductivities (nanosilica and HDPE). In the case of untreated nanosilica, this is the case. But, for treated silica, the peak is shown to disappears when the nanostructure correspond to the better dispersion state, due to overlapping of quasi-conductive regions around the nanoparticles.
Keywords :
annealing; differential scanning calorimetry; milling; nanocomposites; polyethylene insulation; shear strength; silicon compounds; HDPE grains; HDPE nanocomposites; SiO2; ceramic nanofiller; cristallinity rate; dielectric spectroscopy measurements; high density poly ethylene; nanocomposite preparation method; nanometric fumed silica; nanosilica; planetary milling; polymer matrix; scanning differential calorimetry; shear stress; short annealing; silane surfactants; silica nanocomposites; temperature 100 C; temperature 20 C; Aggregates; Dielectrics; Dispersion; Milling; Nanocomposites; Nanoparticles; Silicon compounds; Fumed Silica; dielectric properties; nanocomposite; planetary milling; polyethylene; thermal properties;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Electrical Insulation Conference (EIC), 2014
Conference_Location :
Philadelphia, PA
Print_ISBN :
978-1-4799-2787-6
Type :
conf
DOI :
10.1109/EIC.2014.6869402
Filename :
6869402
Link To Document :
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