Engineered Interfaces in Fiber Reinforced Composites

Kim, Jang-Kyo; Mai, Yiu-Wing

In stock
Regular price 94.250 KD inc. VAT
License
Table of contents
  • Copyright Pageiv
  • Contentsix
  • Forewordv
  • Prefacevii
  • Chapter 1. Introduction1
  • References4
  • Chapter 2. Characterization of Interface Properties5
  • 2.1. Introduction5
  • 2.2. Theories of Adhesion and Types of Bonding5
  • 2.3. Physico-chemical Characterization of Interfaces17
  • Chapter 3. Measurements of Interface/Interlaminar Properties43
  • 3.1. Introduction43
  • 3.2. The Mechanical Properties of Fiber-Matrix Interfaces44
  • 3.3. Interlaminar/Intralaminar Properties61
  • 3.4. Interlaminar Fracture Toughness74
  • Chapter 4. Micromechanics of Stress Transfer Across the Interface93
  • 4.1. Introduction93
  • 4.2. Fiber Fragmentation Test94
  • 4.3. Fiber Pull-Out Test125
  • 4.4. Fiber Push-out150
  • 4.5. Cyclic Loading in Fiber Pull-out and Fiber Push-out156
  • Chapter 5. Surface Treatments of Fibers and Effects on Composite Properties171
  • 5.1. Introduction171
  • 5.2. Glass Fibers and Silane Coupling Agents172
  • 5.3. Carbon Fibers183
  • 5.4. Polymeric Fibers196
  • 5.5. Inorganic Fibers205
  • Chapter 6. Interface Mechanics and Fracture Toughness Theories239
  • 6.1. Interface-related Fracture Toughness Theories239
  • 6.2. Toughness Theories for Short and Randomly Oriented Fiber Composites247
  • 6.3. Fracture Toughness Maps254
  • 6.4. Crack-Interface Interactions257
  • Chapter 7. Improvement of Transverse Fracture Toughness with Interface Control279
  • 7.1. Introduction279
  • 7.2. Fiber Coating and Intermittent Bonding Concept- Experimental Studies281
  • 7.3. Theoretical Studies of Interphase and Three Engineered Interphase Concepts295
  • 7.4. Control of Laminar Interfaces-Delamination Promoters306
  • 7.5. Residual Stresses308
  • Chapter 8. Improvement of Interlaminar Fracture Toughness with Interface Control329
  • 8.1. Introduction329
  • 8.2. Effects of Matrix Materials on Interlaminar Fracture Resistance330
  • 8.3. Delamination Resisters342
  • 8.4. Three-dimensional Textile Composites Concept351
  • Appendices367
  • List of Symbols and Abbreviations371
  • Author Index377
  • Subject Index391
Book details
  • Vendor Elsevier S & T
  • SKU 9780080426952
  • ISBN-13 9780080530970
  • Author Kim, Jang-Kyo; Mai, Yiu-Wing
  • Category Technology & Engineering
  • Subject Materials Science

Do you have questions about this book?

Ask an expert!

The study and application of composite materials are a truly interdisciplinary endeavour that has been enriched by contributions from chemistry, physics, materials science, mechanics and manufacturing engineering. The understanding of the interface (or interphase) in composites is the central point of this interdisciplinary effort. From the early development of composite materials of various nature, the optimization of the interface has been of major importance. While there are many reference books available on composite materials, few of them deal specifically with the science and mechanics of the interface of fiber reinforced composites. Further, many recent advances devoted solely to research in composite interfaces have been scattered in a variety of published literature and have yet to be assembled in a readily accessible form. To this end this book is an attempt to bring together recent developments in the field, both from the materials science and mechanics perspective, in a single convenient volume.

The central theme of the book is tailoring the interface properties to optimise the mechanical peformance and structural integrity of composites with enhanced strength/stiffness and fracture toughness (or specific fracture resistance). It deals mainly with interfaces in advanced composites made from high performance fibers, such as glass, carbon, aramid, ultra high modulus polyethylene and some inorganic (e.g. B/W, A12O3, SiC) fibers, and matrix materials encompassing polymers, metals/alloys and ceramics. The book is intended to provide a comprehensive treatment of composite interfaces in such a way that it should be of interest to materials scientists, technologists and practising engineers, as well as graduate students and their supervisors in advanced composites. We hope that this book will also serve as a valuable source of reference to all those involved in the design and research of composite interfaces.

The book contains eight chapters of discussions on microstructure-property relationships with underlying fundamental mechanics principles. In Chapter 1, an introduction is given to the nature and definition of interfaces in fiber reinforced composites. Chapter 2 is devoted to the mechanisms of adhesion which are specific to each fiber-matrix system, and the physio-chemical characterization of the interface with regard to the origin of adhesion. The experimental techniques that have been developed to assess the fiber-matrix interface bond quality on a microscopic scale are presented in Chapter 3, along with the techniques of measuring interlaminar/intralaminar strengths and fracture toughness using bulk composite laminates. The applicability and limitations associated with loading geometry and interpretation of test data are compared. Chapter 4 presents comprehensive theoretical analyses based on shear-lag models of the single fiber composite tests, with particular interest being placed on the interface debond process and the nature of the fiber-matrix interfacial bonding. Chapter 5 is devoted to reviewing current techniques of fiber surface treatments which have been devised to improve the bond strength and the fiber-matrix compatibility/stability during the manufacturing processes of composites. The micro-failure mechanisms and their associated theories of fracture toughness of composites are discussed in Chapter 6. The roles of the interface and its effects on the mechanical performance of fiber composites are addressed from several viewpoints. Recent research efforts to augment the transverse and interlaminar fracture toughness by means of controlled interfaces are presented in Chapters 7 and 8.