Experimental study of dielectric properties of composite materials pozzolan/DGEBA
The subject of composite materials with reinforced filler has been studied recently. This study to improve both the dielectric and structural characteristics of diglycidyl ether of bisphenol a (DGEBA) focused on the appropriate use (from 5% to 60 wt%) of pozzolan filler mechanically grinded to obtai...
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Published in | Polymer composites Vol. 38; no. 2; pp. 324 - 331 |
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Main Authors | , , , |
Format | Journal Article |
Language | English |
Published |
Newtown
Blackwell Publishing Ltd
01.02.2017
Wiley |
Subjects | |
Online Access | Get full text |
ISSN | 0272-8397 1548-0569 |
DOI | 10.1002/pc.23589 |
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Abstract | The subject of composite materials with reinforced filler has been studied recently. This study to improve both the dielectric and structural characteristics of diglycidyl ether of bisphenol a (DGEBA) focused on the appropriate use (from 5% to 60 wt%) of pozzolan filler mechanically grinded to obtain a very fine particle size (Ø < 10 μm) and area surface of 23.5 m2 g−1. The dielectric properties were investigated at great filler concentrations by weight. Epoxy microcomposite samples with a good dispersion of nanoparticles in the epoxy matrix were prepared and experiments were performed to measure the capacitance (C), the electrical resistance (R), and impedance (Z) as a function of frequency (1 kHz–10 kHz). Measurements were made using dielectric spectroscopy over the temperature range 25–80°C. Using the scanning electron microscope (SEM), the morphologies and structure of the surface and fracture surfaces of Pozzolan/DGEBA composites were observed. POLYM. COMPOS., 38:324–331, 2017. © 2015 Society of Plastics Engineers |
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AbstractList | The subject of composite materials with reinforced filler has been studied recently. This study to improve both the dielectric and structural characteristics of diglycidyl ether of bisphenol a (DGEBA) focused on the appropriate use (from 5% to 60 wt%) of pozzolan filler mechanically grinded to obtain a very fine particle size (Ø < 10 μm) and area surface of 23.5 m2 g−1. The dielectric properties were investigated at great filler concentrations by weight. Epoxy microcomposite samples with a good dispersion of nanoparticles in the epoxy matrix were prepared and experiments were performed to measure the capacitance (C), the electrical resistance (R), and impedance (Z) as a function of frequency (1 kHz–10 kHz). Measurements were made using dielectric spectroscopy over the temperature range 25–80°C. Using the scanning electron microscope (SEM), the morphologies and structure of the surface and fracture surfaces of Pozzolan/DGEBA composites were observed. POLYM. COMPOS., 38:324–331, 2017. © 2015 Society of Plastics Engineers The subject of composite materials with reinforced filler has been studied recently. This study to improve both the dielectric and structural characteristics of diglycidyl ether of bisphenol a (DGEBA) focused on the appropriate use (from 5% to 60 wt%) of pozzolan filler mechanically grinded to obtain a very fine particle size (Oe<10 mu m) and area surface of 23.5 m super(2) g super(-1). The dielectric properties were investigated at great filler concentrations by weight. Epoxy microcomposite samples with a good dispersion of nanoparticles in the epoxy matrix were prepared and experiments were performed to measure the capacitance (C), the electrical resistance (R), and impedance (Z) as a function of frequency (1 kHz-10 kHz). Measurements were made using dielectric spectroscopy over the temperature range 25-80 degree C. Using the scanning electron microscope (SEM), the morphologies and structure of the surface and fracture surfaces of Pozzolan/DGEBA composites were observed. POLYM. COMPOS., 38:324-331, 2017. copyright 2015 Society of Plastics Engineers The subject of composite materials with reinforced filler has been studied recently. This study to improve both the dielectric and structural characteristics of diglycidyl ether of bisphenol a (DGEBA) focused on the appropriate use (from 5% to 60 wt%) of pozzolan filler mechanically grinded to obtain a very fine particle size (Ø<10 µm) and area surface of 23.5 m2 g-1. The dielectric properties were investigated at great filler concentrations by weight. Epoxy microcomposite samples with a good dispersion of nanoparticles in the epoxy matrix were prepared and experiments were performed to measure the capacitance (C), the electrical resistance (R), and impedance (Z) as a function of frequency (1 kHz-10 kHz). Measurements were made using dielectric spectroscopy over the temperature range 25-80°C. Using the scanning electron microscope (SEM), the morphologies and structure of the surface and fracture surfaces of Pozzolan/DGEBA composites were observed. POLYM. COMPOS., 38:324-331, 2017. © 2015 Society of Plastics Engineers The subject of composite materials with reinforced filler has been studied recently. This study to improve both the dielectric and structural characteristics of diglycidyl ether of bisphenol a (DGEBA) focused on the appropriate use (from 5% to 60 wt%) of pozzolan filler mechanically grinded to obtain a very fine particle size ( Ø < 10 μm) and area surface of 23.5 m 2 g −1 . The dielectric properties were investigated at great filler concentrations by weight. Epoxy microcomposite samples with a good dispersion of nanoparticles in the epoxy matrix were prepared and experiments were performed to measure the capacitance ( C ), the electrical resistance ( R ), and impedance ( Z ) as a function of frequency (1 kHz–10 kHz). Measurements were made using dielectric spectroscopy over the temperature range 25–80°C. Using the scanning electron microscope (SEM), the morphologies and structure of the surface and fracture surfaces of Pozzolan/DGEBA composites were observed. POLYM. COMPOS., 38:324–331, 2017. © 2015 Society of Plastics Engineers |
Author | Bezzazi, Boudjema Smith, Agnès Aribi, Chouaib Irekti, Amar |
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Cites_doi | 10.1016/S0300-9440(00)00151-X 10.1016/0032-3861(94)90774-9 10.1021/la00046a012 10.1021/ar050055b 10.1016/S0032-3861(00)00392-X 10.1002/1521-4095(200106)13:11<800::AID-ADMA800>3.0.CO;2-G 10.1134/S1070427208020237 10.1016/S0032-3861(00)00346-3 10.1002/pc.10488 10.1007/978-3-662-07677-4_73 10.1016/0032-3861(82)90182-3 10.1080/10406630211462 10.1002/adma.19930050603 10.1021/ma00128a067 10.1002/app.1968.070120601 10.1002/polc.5070030108 10.1002/pen.11342 10.1016/0032-3861(96)00218-2 10.1016/j.dental.2004.08.003 10.1080/03602557808055845 10.2298/HEMIND0612327N 10.1016/S0143-7208(02)00050-5 10.1016/S0032-3861(00)00801-6 10.1016/S0300-9440(02)00049-8 10.1016/S1010-6030(01)00466-X 10.1016/S0300-9440(99)00056-9 10.1016/0032-3861(90)90274-3 10.2352/J.ImagingSci.Technol.2003.47.5.art00006 10.1080/10601326908053811 10.1016/j.reactfunctpolym.2012.05.004 10.1016/S0300-9440(03)00142-5 10.1002/app.13113 10.1002/pi.975 10.1021/cm00059a023 10.1016/j.jpowsour.2007.05.088 10.1021/la991548q |
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SubjectTerms | Bisphenol A Chemical Sciences Composite materials Dielectric properties Dielectrics Engineering Sciences Ethers Fillers Material chemistry Materials Pozzolans Scanning electron microscopy |
Title | Experimental study of dielectric properties of composite materials pozzolan/DGEBA |
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