Understanding the accelerated weathering response of thermoplastic composites

Glass fibre reinforced polymer (GFRP) has been extensively used over the years which requires the reliability and service lifetime to be determined. Former studies on using different fillers, polymers and how properties changed after weathering have been presented. However, most have investigated on...

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Main Author: Lee, Pei Ying
Other Authors: Aravind Dasari
Format: Final Year Project (FYP)
Language:English
Published: Nanyang Technological University 2023
Subjects:
Online Access:https://hdl.handle.net/10356/165710
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author Lee, Pei Ying
author2 Aravind Dasari
author_facet Aravind Dasari
Lee, Pei Ying
author_sort Lee, Pei Ying
collection NTU
description Glass fibre reinforced polymer (GFRP) has been extensively used over the years which requires the reliability and service lifetime to be determined. Former studies on using different fillers, polymers and how properties changed after weathering have been presented. However, most have investigated on a different combination of polymers, fillers, and weathering method of these FRPs to understand the influence of weathering, indicating the presence of a research gap. In this thesis, the effect of polypropylene (PP) and Poly (ethylene glycol-co-1,4-cyclohexanedimethanol terephthalate) (PETG) with the addition of glass fibres (GFs) under accelerated weathering conditions were investigated. This will provide insight in understanding the critical parameters influencing the material properties in FRP for future studies. This eventually helps to detail the acceleration factors that are in play. Samples were irradiated in the QUV with UVA lamp for 21 weeks in 2-week increments. Two different irradiance levels, 0.83 W/m2/nm from week 0 - 11, and 1.66 W/m2 /nm from week 11 – 21 were employed. Their visual appearances, colour changes, mechanical and chemical changes had been analysed before and after weathering. Mechanical properties were investigated with Tensile Testing and Flexural Testing. Colour measurement of the PETG/GF surfaces were carried out by measuring CIELAB parameters (L*, a*, b* and ∆E*). The thermal characteristics of the GRFPs were investigated using differential scanning calorimetry (DSC) and thermogravimetric analysis (TGA). With the use of attenuated total reflectance fourier transform-infrared (ATR-FTIR), the modifications in the surface chemical groups of the GRFPs were identified. From the results obtained in this study conducted, it has shown that photo oxidation, thermo oxidation and hydrolytic degradation had indeed occurred on the surface for both FRPs throughout the accelerated weathering process. This revealed the importance of the combined exposure of UV radiation, heat, and cool cycle to GRFP degradation. Unfortunately, the objective to determine the critical weathering and acceleration factors could not be achieved. Further characterisations on the surface and core are required to be conducted to enhance its significance.
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spelling ntu-10356/1657102023-04-15T16:46:26Z Understanding the accelerated weathering response of thermoplastic composites Lee, Pei Ying Aravind Dasari School of Materials Science and Engineering aravind@ntu.edu.sg Engineering::Materials::Composite materials Glass fibre reinforced polymer (GFRP) has been extensively used over the years which requires the reliability and service lifetime to be determined. Former studies on using different fillers, polymers and how properties changed after weathering have been presented. However, most have investigated on a different combination of polymers, fillers, and weathering method of these FRPs to understand the influence of weathering, indicating the presence of a research gap. In this thesis, the effect of polypropylene (PP) and Poly (ethylene glycol-co-1,4-cyclohexanedimethanol terephthalate) (PETG) with the addition of glass fibres (GFs) under accelerated weathering conditions were investigated. This will provide insight in understanding the critical parameters influencing the material properties in FRP for future studies. This eventually helps to detail the acceleration factors that are in play. Samples were irradiated in the QUV with UVA lamp for 21 weeks in 2-week increments. Two different irradiance levels, 0.83 W/m2/nm from week 0 - 11, and 1.66 W/m2 /nm from week 11 – 21 were employed. Their visual appearances, colour changes, mechanical and chemical changes had been analysed before and after weathering. Mechanical properties were investigated with Tensile Testing and Flexural Testing. Colour measurement of the PETG/GF surfaces were carried out by measuring CIELAB parameters (L*, a*, b* and ∆E*). The thermal characteristics of the GRFPs were investigated using differential scanning calorimetry (DSC) and thermogravimetric analysis (TGA). With the use of attenuated total reflectance fourier transform-infrared (ATR-FTIR), the modifications in the surface chemical groups of the GRFPs were identified. From the results obtained in this study conducted, it has shown that photo oxidation, thermo oxidation and hydrolytic degradation had indeed occurred on the surface for both FRPs throughout the accelerated weathering process. This revealed the importance of the combined exposure of UV radiation, heat, and cool cycle to GRFP degradation. Unfortunately, the objective to determine the critical weathering and acceleration factors could not be achieved. Further characterisations on the surface and core are required to be conducted to enhance its significance. Bachelor of Engineering (Materials Engineering) 2023-04-10T07:08:47Z 2023-04-10T07:08:47Z 2023 Final Year Project (FYP) Lee, P. Y. (2023). Understanding the accelerated weathering response of thermoplastic composites. Final Year Project (FYP), Nanyang Technological University, Singapore. https://hdl.handle.net/10356/165710 https://hdl.handle.net/10356/165710 en application/pdf Nanyang Technological University
spellingShingle Engineering::Materials::Composite materials
Lee, Pei Ying
Understanding the accelerated weathering response of thermoplastic composites
title Understanding the accelerated weathering response of thermoplastic composites
title_full Understanding the accelerated weathering response of thermoplastic composites
title_fullStr Understanding the accelerated weathering response of thermoplastic composites
title_full_unstemmed Understanding the accelerated weathering response of thermoplastic composites
title_short Understanding the accelerated weathering response of thermoplastic composites
title_sort understanding the accelerated weathering response of thermoplastic composites
topic Engineering::Materials::Composite materials
url https://hdl.handle.net/10356/165710
work_keys_str_mv AT leepeiying understandingtheacceleratedweatheringresponseofthermoplasticcomposites