Novel glass fibre reinforced hierarchical composites with improved interfacial, mechanical and dynamic mechanical properties developed using cellulose microcrystals
This paper reports the use of cellulose microcrystals (CMCs) for improving fibre-matrix interface, mechanical, dynamic mechanical and thermal degradation behaviour of glass fibre reinforced epoxy composites. An ultrasonic treatment for 1 h was used to disperse CMCs (1–3 wt%) within an epoxy resin, w...
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doaj-7bb5c0744188431389287f9b85a811ec2020-11-25T02:36:23ZengElsevierMaterials & Design0264-12752020-03-01188Novel glass fibre reinforced hierarchical composites with improved interfacial, mechanical and dynamic mechanical properties developed using cellulose microcrystalsShama Parveen0Subramani Pichandi1Parikshit Goswami2Sohel Rana3Technical Textiles Research Centre, School of Applied Sciences, University of Huddersfield, Queensgate, Huddersfield HD1 3DH, UKIComp, University of Limerick, Limerick V94 T9PX, IrelandTechnical Textiles Research Centre, School of Applied Sciences, University of Huddersfield, Queensgate, Huddersfield HD1 3DH, UKTechnical Textiles Research Centre, School of Applied Sciences, University of Huddersfield, Queensgate, Huddersfield HD1 3DH, UK; Corresponding author.This paper reports the use of cellulose microcrystals (CMCs) for improving fibre-matrix interface, mechanical, dynamic mechanical and thermal degradation behaviour of glass fibre reinforced epoxy composites. An ultrasonic treatment for 1 h was used to disperse CMCs (1–3 wt%) within an epoxy resin, which was subsequently infused through glass fabrics to develop hierarchical composites containing both macro and micro-scale reinforcements. It was observed that CMC dispersion in the epoxy resin was homogeneous at 1 wt% CMC and further increase in CMC concentrations led to linear increase in both agglomerate size and total agglomerated area. Addition of 1 wt% CMC to the composite matrix drastically changed the glass fibre-epoxy interface and led to a maximum improvement of 65% in interlaminar shear strength, 14% in tensile strength, 76% in flexural strength, 111% and 119% in fracture energy in tensile and flexural modes, 9.4% in impact strength, 13.5% in storage modulus, 21.9% in loss modulus and 13 °C in the glass transition temperature of composites. Therefore, the use of CMCs could be an industrially viable, economical and eco-friendly approach of developing hierarchical glass fibre composites with considerably improved performance. Keywords: Glass fibre composites, Cellulose microcrystals, Fibre-matrix interface, Mechanical properties, Fracture energy, Dynamic mechanical performancehttp://www.sciencedirect.com/science/article/pii/S026412751930886X |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Shama Parveen Subramani Pichandi Parikshit Goswami Sohel Rana |
spellingShingle |
Shama Parveen Subramani Pichandi Parikshit Goswami Sohel Rana Novel glass fibre reinforced hierarchical composites with improved interfacial, mechanical and dynamic mechanical properties developed using cellulose microcrystals Materials & Design |
author_facet |
Shama Parveen Subramani Pichandi Parikshit Goswami Sohel Rana |
author_sort |
Shama Parveen |
title |
Novel glass fibre reinforced hierarchical composites with improved interfacial, mechanical and dynamic mechanical properties developed using cellulose microcrystals |
title_short |
Novel glass fibre reinforced hierarchical composites with improved interfacial, mechanical and dynamic mechanical properties developed using cellulose microcrystals |
title_full |
Novel glass fibre reinforced hierarchical composites with improved interfacial, mechanical and dynamic mechanical properties developed using cellulose microcrystals |
title_fullStr |
Novel glass fibre reinforced hierarchical composites with improved interfacial, mechanical and dynamic mechanical properties developed using cellulose microcrystals |
title_full_unstemmed |
Novel glass fibre reinforced hierarchical composites with improved interfacial, mechanical and dynamic mechanical properties developed using cellulose microcrystals |
title_sort |
novel glass fibre reinforced hierarchical composites with improved interfacial, mechanical and dynamic mechanical properties developed using cellulose microcrystals |
publisher |
Elsevier |
series |
Materials & Design |
issn |
0264-1275 |
publishDate |
2020-03-01 |
description |
This paper reports the use of cellulose microcrystals (CMCs) for improving fibre-matrix interface, mechanical, dynamic mechanical and thermal degradation behaviour of glass fibre reinforced epoxy composites. An ultrasonic treatment for 1 h was used to disperse CMCs (1–3 wt%) within an epoxy resin, which was subsequently infused through glass fabrics to develop hierarchical composites containing both macro and micro-scale reinforcements. It was observed that CMC dispersion in the epoxy resin was homogeneous at 1 wt% CMC and further increase in CMC concentrations led to linear increase in both agglomerate size and total agglomerated area. Addition of 1 wt% CMC to the composite matrix drastically changed the glass fibre-epoxy interface and led to a maximum improvement of 65% in interlaminar shear strength, 14% in tensile strength, 76% in flexural strength, 111% and 119% in fracture energy in tensile and flexural modes, 9.4% in impact strength, 13.5% in storage modulus, 21.9% in loss modulus and 13 °C in the glass transition temperature of composites. Therefore, the use of CMCs could be an industrially viable, economical and eco-friendly approach of developing hierarchical glass fibre composites with considerably improved performance. Keywords: Glass fibre composites, Cellulose microcrystals, Fibre-matrix interface, Mechanical properties, Fracture energy, Dynamic mechanical performance |
url |
http://www.sciencedirect.com/science/article/pii/S026412751930886X |
work_keys_str_mv |
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