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1 - Introduction

Published online by Cambridge University Press:  05 February 2016

Surjya Kumar Maiti
Affiliation:
Indian Institute of Technology, Bombay
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Summary

Introduction

Fracture mechanics provides the basis for designing machine and structural components with materials containing defects such as crack, gives rational approach for assessing degree of safety or reliability of an in-service degraded machine component, and helps to calculate the life of a component with crack subjected to cyclically fluctuating load, corrosion, creep, or a combination of all these. A crack is a discontinuity, internal or external (Figs 1.1 and 1.2), in the material with zero tip radius. The development of the subject has been driven by the stringent safety requirements of the aerospace industry, nuclear power plants and other safety-critical applications. The advancement in the understanding of the subject coupled with developments in material science, experimental methods, and numerical techniques such as finite element, boundary element, and meshless methods, has facilitated optimum design and minimization of material usage for an application.

This book presents the gradual development in the fundamental understanding of the subject and in numerical methods that have facilitated its applications. Though the subject can be studied from the viewpoint of material science and mechanics, the focus here is on the latter.

Linear Elastic Fracture Mechanics

Development of the subject originated with the work of Griffith (1921), who propounded the condition of unstable extension of an existing crack in a brittle material within the framework of global energy balance or the First Law of Thermodynamics. The shortcomings of the approach were eliminated by Irwin (1948), who classified the three fundamental modes of crack extension and presented the condition of fracture in terms of a parameter associated with the stress–strain field in the close neighbourhood of the crack-tip. He also showed the link between the crack-tip field parameter, the stress intensity factor (SIF), and the energy release rate parameter introduced by Griffith. These parameters have proved useful in characterizing the fracture of brittle materials and have helped in practical design applications. Brittle materials fracture without showing any plastic deformation before the onset of crack extension or during crack propagation. This type of failure is distinguished by the fact that the fractured parts can be put together to get the original geometry almost reconstructed (Fig. 1.1).

Elastic Plastic or Yielding Fracture Mechanics

Most materials that are used in engineering constructions and machine building are metallic and show plastic deformation around the crack-tip prior to crack extension and during crack extension (Fig. 1.2).

Type
Chapter
Information
Fracture Mechanics
Fundamentals and Applications
, pp. 1 - 5
Publisher: Cambridge University Press
Print publication year: 2015

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References

1.1 Griffith, A.A. 1921. ‘The Phenomena of Flow and Rupture in Solids.Philosophical Transaction of the Royal Society, London, Series A 221: 163–97.Google Scholar
1.2 Irwin, G.R. 1948. ‘Fracture Dynamics.’ In Fracturing of Metals, 147–66. Cleveland:American Society for Metals.Google Scholar
1.3 Paris, P.C. and F., Erdogan. 1963. ‘A Critical Analysis of Crack Propagation Laws.Journal of Basic Engineering, Transactions of ASME 85: 528–34.CrossRefGoogle Scholar
1.4 Rice, J.R. 1968. ‘A Path Independent Integrals and the Approximate Analysis of Strain Concentration by Notches and Cracks.Journal of Applied Mechanics, Transactions of ASME 35: 379–86.CrossRefGoogle Scholar
1.5 Wells, A.A. 1961. ‘Unstable crack propagation in metals: cleavage and fast fracture’, Vol. 1, 210–30. Proceedings of the Crack Propagation Symposium, College of Aeronautics, Cranfield.Google Scholar

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  • Introduction
  • Surjya Kumar Maiti, Indian Institute of Technology, Bombay
  • Book: Fracture Mechanics
  • Online publication: 05 February 2016
  • Chapter DOI: https://doi.org/10.1017/CBO9781316156438.002
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  • Introduction
  • Surjya Kumar Maiti, Indian Institute of Technology, Bombay
  • Book: Fracture Mechanics
  • Online publication: 05 February 2016
  • Chapter DOI: https://doi.org/10.1017/CBO9781316156438.002
Available formats
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Save book to Google Drive

To save content items to your account, please confirm that you agree to abide by our usage policies. If this is the first time you use this feature, you will be asked to authorise Cambridge Core to connect with your account. Find out more about saving content to Google Drive.

  • Introduction
  • Surjya Kumar Maiti, Indian Institute of Technology, Bombay
  • Book: Fracture Mechanics
  • Online publication: 05 February 2016
  • Chapter DOI: https://doi.org/10.1017/CBO9781316156438.002
Available formats
×