Dissolution Kinetics of R-Glass Fibres: Influence of Water Acidity, Temperature, and Stress Corrosion

Glass fibres slowly degrade due to dissolution when exposed to water. Such environmental aging results in the deterioration of the mechanical properties. In structural offshore and marine applications, as well as in the wind energy sector, R-glass fibre composites are continuously exposed to water a...

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Main Authors: Andrey E. Krauklis, Abedin I. Gagani, Kristine Vegere, Ilze Kalnina, Maris Klavins, Andreas T. Echtermeyer
Format: Article
Language:English
Published: MDPI AG 2019-03-01
Series:Fibers
Subjects:
Online Access:http://www.mdpi.com/2079-6439/7/3/22
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author Andrey E. Krauklis
Abedin I. Gagani
Kristine Vegere
Ilze Kalnina
Maris Klavins
Andreas T. Echtermeyer
author_facet Andrey E. Krauklis
Abedin I. Gagani
Kristine Vegere
Ilze Kalnina
Maris Klavins
Andreas T. Echtermeyer
author_sort Andrey E. Krauklis
collection DOAJ
description Glass fibres slowly degrade due to dissolution when exposed to water. Such environmental aging results in the deterioration of the mechanical properties. In structural offshore and marine applications, as well as in the wind energy sector, R-glass fibre composites are continuously exposed to water and humid environments for decades, with a typical design lifetime being around 25 years or more. During this lifetime, these materials are affected by various temperatures, acidity levels, and mechanical loads. A Dissolving Cylinder Zero-Order Kinetic (DCZOK) model was able to explain the long-term dissolution of R-glass fibres, considering the influence of the pH, temperature, and stress corrosion. The effects of these environmental conditions on the dissolution rate constants and activation energies of dissolution were obtained. Experimentally, dissolution was measured using High Resolution Inductively Coupled Plasma Mass Spectrometry (HR-ICP-MS). For stress corrosion, a custom rig was designed and used. The temperature showed an Arrhenius-type influence on the kinetics, increasing the rate of dissolution exponentially with increasing temperature. In comparison with neutral conditions, basic and acidic aqueous environments showed an increase in the dissolution rates, affecting the lifetime of glass fibres negatively. External loads also increased glass dissolution rates due to stress corrosion. The model was able to capture all of these effects.
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spelling doaj.art-fbd329f60d9d43f39a9a05d29f84ec542022-12-22T01:56:21ZengMDPI AGFibers2079-64392019-03-01732210.3390/fib7030022fib7030022Dissolution Kinetics of R-Glass Fibres: Influence of Water Acidity, Temperature, and Stress CorrosionAndrey E. Krauklis0Abedin I. Gagani1Kristine Vegere2Ilze Kalnina3Maris Klavins4Andreas T. Echtermeyer5Department of Mechanical and Industrial Engineering (past: Department of Engineering Design and Materials), Norwegian University of Science and Technology, 7491 Trondheim, NorwayDepartment of Mechanical and Industrial Engineering (past: Department of Engineering Design and Materials), Norwegian University of Science and Technology, 7491 Trondheim, NorwayInstitute of General Chemical Engineering, Faculty of Materials Science and Applied Chemistry, Riga Technical University, P. Valdena str. 3/7, Riga LV-1048, LatviaInstitute of General Chemical Engineering, Faculty of Materials Science and Applied Chemistry, Riga Technical University, P. Valdena str. 3/7, Riga LV-1048, LatviaDepartment of Environmental Science, University of Latvia, Riga LV-1004, LatviaDepartment of Mechanical and Industrial Engineering (past: Department of Engineering Design and Materials), Norwegian University of Science and Technology, 7491 Trondheim, NorwayGlass fibres slowly degrade due to dissolution when exposed to water. Such environmental aging results in the deterioration of the mechanical properties. In structural offshore and marine applications, as well as in the wind energy sector, R-glass fibre composites are continuously exposed to water and humid environments for decades, with a typical design lifetime being around 25 years or more. During this lifetime, these materials are affected by various temperatures, acidity levels, and mechanical loads. A Dissolving Cylinder Zero-Order Kinetic (DCZOK) model was able to explain the long-term dissolution of R-glass fibres, considering the influence of the pH, temperature, and stress corrosion. The effects of these environmental conditions on the dissolution rate constants and activation energies of dissolution were obtained. Experimentally, dissolution was measured using High Resolution Inductively Coupled Plasma Mass Spectrometry (HR-ICP-MS). For stress corrosion, a custom rig was designed and used. The temperature showed an Arrhenius-type influence on the kinetics, increasing the rate of dissolution exponentially with increasing temperature. In comparison with neutral conditions, basic and acidic aqueous environments showed an increase in the dissolution rates, affecting the lifetime of glass fibres negatively. External loads also increased glass dissolution rates due to stress corrosion. The model was able to capture all of these effects.http://www.mdpi.com/2079-6439/7/3/22glassfibresmodeldissolutionkineticswaterenvironmentalagingstress corrosion
spellingShingle Andrey E. Krauklis
Abedin I. Gagani
Kristine Vegere
Ilze Kalnina
Maris Klavins
Andreas T. Echtermeyer
Dissolution Kinetics of R-Glass Fibres: Influence of Water Acidity, Temperature, and Stress Corrosion
Fibers
glass
fibres
model
dissolution
kinetics
water
environmental
aging
stress corrosion
title Dissolution Kinetics of R-Glass Fibres: Influence of Water Acidity, Temperature, and Stress Corrosion
title_full Dissolution Kinetics of R-Glass Fibres: Influence of Water Acidity, Temperature, and Stress Corrosion
title_fullStr Dissolution Kinetics of R-Glass Fibres: Influence of Water Acidity, Temperature, and Stress Corrosion
title_full_unstemmed Dissolution Kinetics of R-Glass Fibres: Influence of Water Acidity, Temperature, and Stress Corrosion
title_short Dissolution Kinetics of R-Glass Fibres: Influence of Water Acidity, Temperature, and Stress Corrosion
title_sort dissolution kinetics of r glass fibres influence of water acidity temperature and stress corrosion
topic glass
fibres
model
dissolution
kinetics
water
environmental
aging
stress corrosion
url http://www.mdpi.com/2079-6439/7/3/22
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AT kristinevegere dissolutionkineticsofrglassfibresinfluenceofwateraciditytemperatureandstresscorrosion
AT ilzekalnina dissolutionkineticsofrglassfibresinfluenceofwateraciditytemperatureandstresscorrosion
AT marisklavins dissolutionkineticsofrglassfibresinfluenceofwateraciditytemperatureandstresscorrosion
AT andreastechtermeyer dissolutionkineticsofrglassfibresinfluenceofwateraciditytemperatureandstresscorrosion