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Fracture and Fatigue Characterisation of Cortical Bone Tissue
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Fracture and Fatigue Characterisation of Cortical Bone Tissue

Book Details

Format Hardback or Cased Book
ISBN-10 1032450312
ISBN-13 9781032450315
Publisher Taylor & Francis Ltd
Imprint CRC Press
Country of Manufacture GB
Country of Publication GB
Publication Date Sep 6th, 2024
Print length 184 Pages
Weight 453 grams
Ksh 15,650.00
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This book is a key guide to bone fracture and fatigue, focusing on quasi-static and fatigue and fracture characterization of cortical bone tissue. Discussing the fundamental aspects of fracture mechanics and fatigue, applicable to many orthotropic materials, the book examines novel, cutting-edge approaches to analyse and model this.

Fracture and Fatigue Characterisation of Cortical Bone Tissue is a key guide to bone fracture and fatigue, focusing on quasi-static and fatigue-fracture characterisation of cortical bone tissue. Discussing the fundamental aspects of fracture mechanics and fatigue, which are applicable to many orthotropic materials, this book examines novel, cutting-edge approaches to analyse and model bone fracture and fatigue.

As the population ages across the globe, bone fracture and fatigue has become a fundamental part of mechanical and biomedical engineering research. Beginning with a thorough description of fracture mechanics and fatigue, the book describes non-linear fracture mechanics under quasi-static and fatigue analyses. It goes on to present a cohesive zone modelling method which is appropriate for mode I, mode II and mixed-mode I+II loading. Presenting the latest research, this book describes cutting-edge fracture tests, new methods for data reduction purposes and numerical models based on cohesive zone modelling. This book is key to aiding both students and professionals in applying fundamental theories and methods to cortical bone tissue.

The book will be of interest to students and professionals working in mechanical engineering and biomedical engineering, including work on quasi-static fracture, fracture under fatigue loading, artificial bones and fracture mechanisms.


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