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Thermal conduction and fire property of glass fiber-reinforced high impact polystyrene/magnesium hydroxide/microencapsulated red phosphorus composite

A series of flame-retarded high impact polystyrene/magnesium hydroxide/microencapsulated red phosphorus (HIPS/MH/MRP) composites reinforced with different amounts of glass fiber (GF) were prepared by melt compounding. The thermal conduction behavior of the GF-reinforced HIPS/MH/MRP composite before...

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Published in:Polymer degradation and stability 2016-07, Vol.129, p.180-191
Main Authors: Liu, Jichun, Guo, Yingbin, Zhang, Yanbin, Liu, Hongyu, Peng, Shuge, Pan, Bingli, Ma, Junying, Niu, Qingshan
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cited_by cdi_FETCH-LOGICAL-c366t-c5c5d3800576ef538e24a8ab1424ef5404fdaa54d6074d46f0f88919ee83cdad3
cites cdi_FETCH-LOGICAL-c366t-c5c5d3800576ef538e24a8ab1424ef5404fdaa54d6074d46f0f88919ee83cdad3
container_end_page 191
container_issue
container_start_page 180
container_title Polymer degradation and stability
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creator Liu, Jichun
Guo, Yingbin
Zhang, Yanbin
Liu, Hongyu
Peng, Shuge
Pan, Bingli
Ma, Junying
Niu, Qingshan
description A series of flame-retarded high impact polystyrene/magnesium hydroxide/microencapsulated red phosphorus (HIPS/MH/MRP) composites reinforced with different amounts of glass fiber (GF) were prepared by melt compounding. The thermal conduction behavior of the GF-reinforced HIPS/MH/MRP composite before ignition was studied by embedding thermocouples inside the composite at different depths along the thickness direction. The fire property of the composite was investigated by limiting oxygen index (LOI), UL-94, cone calorimeter test (CCT), scanning electron microscopy (SEM) and thermogravimetric analysis (TGA). It has been shown that the presence of GF promotes thermal conduction from surface area to the interior in the composite and the thermal inertia of the composite increases with GF loading. Because of increase in thermal conductivity and decrease in specific heat capacity, the heat on the sample surface can be transferred to the interior of composite more quickly than neat polymer and the temperature near the surface area of the GF-containing composite is reduced appreciably, which leads to delayed thermal degradation of polymers and increased difficulty of ignition. The incorporation of GF can increase the thermal stability, flame retardancy and smoke suppression of this composite simultaneously. The introduction of 2 wt% GF can hinder melt dripping of the HIPS/MH/MRP (100/30/10) composite and upgrade the UL-94 rating of this composite from V-1 to V-0. Thermal degradation of the polymer is retarded and no wicking effect occurs in this composite. Furthermore, the composite containing GF produces more residue and less smoke upon combustion. On the whole, the addition of GF not only increases thermal conduction and mechanical property, it also further improves fire safety of the flame-retarded HIPS/MH/MRP composite. The optimal mass fraction of GF is around 30 wt%.
doi_str_mv 10.1016/j.polymdegradstab.2016.04.015
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The incorporation of GF can increase the thermal stability, flame retardancy and smoke suppression of this composite simultaneously. The introduction of 2 wt% GF can hinder melt dripping of the HIPS/MH/MRP (100/30/10) composite and upgrade the UL-94 rating of this composite from V-1 to V-0. Thermal degradation of the polymer is retarded and no wicking effect occurs in this composite. Furthermore, the composite containing GF produces more residue and less smoke upon combustion. On the whole, the addition of GF not only increases thermal conduction and mechanical property, it also further improves fire safety of the flame-retarded HIPS/MH/MRP composite. 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subjects Flame retardancy
Glass fiber
Glass fiber reinforced plastics
Hips
Materials requirement planning
Melts
Polymer composite
Polymer matrix composites
Polystyrene resins
Smoke
Specific heat
Thermal conduction
Time to ignition
title Thermal conduction and fire property of glass fiber-reinforced high impact polystyrene/magnesium hydroxide/microencapsulated red phosphorus composite
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