Article
Open Access
Mechanical and Degradation Properties of Phosphate Based Glass Fibre/PLA Composites with different Fibre Treatment Regimes
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A. J. Parsons,
Published/Copyright:
December 1, 2010
Published Online: 2010-12
©2011 by Walter de Gruyter GmbH & Co.
Articles in the same Issue
- TABLE OF CONTENTS
- Non-linear Viscoelastic-Viscoplastic Constitutive Modelling of Creep in Continuous Fibre Glass Mat Thermoplastic Composites
- Prediction of Long-term Fatigue Strength of Quasi-isotropic CFRP Laminates with a Hole Under Compressive Loading
- Mechanical and Degradation Properties of Phosphate Based Glass Fibre/PLA Composites with different Fibre Treatment Regimes
- Validation of Fatigue Life Prediction Method under Variable Fatigue Loading for CFRP Laminates
- A Mesoscale Model for Damage, Cracking and Delamination Prediction in Composite Materials
- Skin - Core Interfacial Stress Distribution in Al - CFRP Sandwich Structures Subjected to Thermal Fatigue
- Effect of Physical Non-linearity on Cyclic Fatigue Life Prediction of Polymer Matrix Composites
- Accelerated Testing Methodology for Long-term Fatigue Life Prediction of Polymer Composites
Creative Commons
BY-NC-ND 3.0
Articles in the same Issue
- TABLE OF CONTENTS
- Non-linear Viscoelastic-Viscoplastic Constitutive Modelling of Creep in Continuous Fibre Glass Mat Thermoplastic Composites
- Prediction of Long-term Fatigue Strength of Quasi-isotropic CFRP Laminates with a Hole Under Compressive Loading
- Mechanical and Degradation Properties of Phosphate Based Glass Fibre/PLA Composites with different Fibre Treatment Regimes
- Validation of Fatigue Life Prediction Method under Variable Fatigue Loading for CFRP Laminates
- A Mesoscale Model for Damage, Cracking and Delamination Prediction in Composite Materials
- Skin - Core Interfacial Stress Distribution in Al - CFRP Sandwich Structures Subjected to Thermal Fatigue
- Effect of Physical Non-linearity on Cyclic Fatigue Life Prediction of Polymer Matrix Composites
- Accelerated Testing Methodology for Long-term Fatigue Life Prediction of Polymer Composites