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[×ÊÔ´] Ó¢ÎÄÔ­°æÊé¼®---½£Çųö°æÉ磺An introduction to metal matrix composites

An Introduction to Metal Matrix Composites

By T. W. Clyne
University of Cambridge

By P. J. Withers
University of Cambridge



Frontmatter:  Read PDF  pp. i-vi
Contents:  Read PDF  pp. vii-xiv
Preface:  Read PDF  pp. xv-xvi
+ 1 - General introduction:  Read PDF  pp. 1-11
1.1 Types of MMC and general microstructural features   Read PDF  1
1.2 Historical background   Read PDF  3
1.3 Interactions between constituents and the concept of load transfer   Read PDF  7
References   Read PDF  10
+ 2 - Basic composite mechanics:  Read PDF  pp. 12-43
2.1 The slab model   Read PDF  12
2.2 The shear lag model   Read PDF  20
2.3 Continuous coaxial cylinder models   Read PDF  30
2.4 Finite difference and finite element models   Read PDF  34
References   Read PDF  41
+ 3 - The Eshelby approach to modelling composites:  Read PDF  pp. 44-70
3.1 Misfit stresses   Read PDF  45
3.2 An example of a misfit strain ¨C differential thermal contraction   Read PDF  48
3.3 Internal stresses in loaded composites   Read PDF  51
3.4 The matrix stress field   Read PDF  55
3.5 Modelling non-dilute systems   Read PDF  57
3.6 Composite stiffness   Read PDF  62
3.7 Simple representations of Eshelby's equations   Read PDF  66
References   Read PDF  69
+ 4 - Plastic deformation:  Read PDF  pp. 71-116
4.1 Onset of yielding: the effect of internal stress   Read PDF  73
4.2 Onset of yielding: the effect of matrix microstructure   Read PDF  84
4.3 Modelling of bulk plastic flow   Read PDF  86
4.4 Internal stress relaxation   Read PDF  94
4.5 Reduced internal stress work-hardening   Read PDF  103
4.6 Diffraction studies of plastic deformation in long and short fibre systems   Read PDF  108
References   Read PDF  112
+ 5 - Thermal effects and high temperature behaviour:  Read PDF  pp. 117-165
5.1 Thermal stresses and strains   Read PDF  117
5.2 Isothermal creep   Read PDF  123
5.3 Thermal cycling creep   Read PDF  141
References   Read PDF  158
+ 6 - The interfacial region:  Read PDF  pp. 166-217
6.1 The significance of interfacial bond strength   Read PDF  166
6.2 The characterisation of bond strength   Read PDF  178
6.3 Interfacial chemistry   Read PDF  190
6.4 Fibre coatings   Read PDF  202
References   Read PDF  209
+ 7 - Fracture processes and failure mechanisms:  Read PDF  pp. 218-276
7.1 Failure processes in long fibre MMCs   Read PDF  218
7.2 Failure processes in discontinuous MMCs   Read PDF  230
7.3 Fracture toughness and fatigue crack growth in MMCs   Read PDF  242
7.4 Effects of microstructural variables   Read PDF  256
7.5 Effects of testing variables   Read PDF  264
References   Read PDF  270
+ 8 - Transport properties and environmental performance:  Read PDF  pp. 277-317
8.1 Thermal and electrical conduction   Read PDF  277
8.2 Tribological behaviour   Read PDF  294
8.3 Mechanical damping properties   Read PDF  302
8.4 Oxidation and corrosion resistance   Read PDF  308
References   Read PDF  313
+ 9 - Fabrication processes:  Read PDF  pp. 318-369
9.1 Primary liquid phase processing   Read PDF  320
9.2 Primary solid state processing   Read PDF  346
9.3 Secondary processing   Read PDF  350
9.4 Machining and joining   Read PDF  357
References   Read PDF  360
+ 10 - Development of matrix microstructure:  Read PDF  pp. 370-398
10.1 Dislocation structure and behaviour   Read PDF  370
10.2 Precipitation behaviour   Read PDF  378
10.3 Grain structure, texture, recovery and recrystallisation   Read PDF  383
References   Read PDF  396
+ 11 - Testing and characterisation techniques:  Read PDF  


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