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Structural Integrity and Durability of Advanced Composites: Innovative Modelling Methods and Intelligent Design presents scientific and technological research from leading composite materials scientists and engineers that showcase the fundamental issues and practical problems that affect the development and exploitation of large composite structures.As predicting precisely where cracks may develop in materials under stress is an age old mystery in the design and building of large-scale engineering structures, the burden of testing to provide "fracture safe design" is imperative. Readers will learn to transfer key ideas from research and development to both the design engineer and end-user of composite materials.This comprehensive text provides the information users need to understand deformation and fracture phenomena resulting from impact, fatigue, creep, and stress corrosion cracking and how these phenomena can affect reliability, life expectancy, and the durability of structures.
- Presents scientific and technological research from leading composite materials scientists and engineers that showcase fundamental issues and practical problems- Provides the information users need to understand deformation and fracture phenomena resulting from impact, fatigue, creep, and stress corrosion cracking- Enables readers to transfer key ideas from research and development to both the design engineer and end-user of composite materials
Part I Multi-scale mechanics, physical modelling and damage analysis1 Composite micromechanics: from carbon fibres to graphene2 A mechanisms-based framework for describing failure in composite materials3 The origins of residual stress and its evaluation in composite materials4 A multi-scale synergistic damage mechanics approach for modelling progressive failure in composite laminates5 From micro to macro: simulating crack propagation in carbon fibre composites6 Multi-scale modelling of high temperature polymer composites for aerospace applications7 Modelling of damage evaluation and failure of laminated composite materials across length scalesPart II Computational Modelling, Damage Simulation and Fatigue Analysis8 Computational techniques for simulation of damage and failure in composite materials9 Damage evolution modelling in laminates10 Virtual testing of impact in C/epoxy laminates11 Mixed mode fatigue of bonded joints in composites: experiments and modelling12 A general and rigorous accelerated testing methodology for long term life prediction of polymeric materials13 Effects of environment on creep behavior of three oxide-oxide ceramic matrix composites at 1200°C14 Anisotropic 3D arrays of fibresPart III Structural Integrity15 Structural integrity and the implementation of engineering composite materials 16 The control of the residual lifetimes of carbon fibre reinforced composite pressure vessels17 An extension of the point-stress criterion based on a coupled stress and energy fulfilment: application to the prediction of the open hole tensile strength of a composite plate18 Compressive fracture of layered composites caused by internal instability19 Analysis of delamination in laminates with angle-ply matrix cracks: onset of damage and residual stiffness properties20 Blast resistance of polymeric composite sandwich structures21 Maintenance and monitoring of composite helicopter structures and materialsPart IV Structural Integrity of Bonded and Bolted Joints22 Dynamic fractures of adhesively-bonded CFRP joints23 Damage tolerance and survivability of composite aircraft structures24 Computational and experimental study of composite scarf bonded joints25 Composite bond inspection26 Tensile failure of Composite scarf repairPart V Innovative Manufacturing and Materials for Increased Performance27 Carbon and TiO2 Nanotube-Polymer Composites: Manufacturing- Characterization and Interphasial Modeling28 Recycling of reinforced plastics29 Design and performance of novel aircraft structures with folded composite cores