Literature DB >> 20409579

The significance of crack-resistance curves to the mixed-mode fracture toughness of human cortical bone.

Elizabeth A Zimmermann1, Maximilien E Launey, Robert O Ritchie.   

Abstract

The majority of fracture mechanics studies on the toughness of bone have been performed under tensile loading. However, it has recently been shown that the toughness of human cortical bone in the transverse (breaking) orientation is actually much lower in shear (mode II) than in tension (mode I); a fact that is physiologically relevant as in vivo bone is invariably loaded multiaxially. Since bone is a material that derives its fracture resistance primarily during crack growth through extrinsic toughening mechanisms, such as crack deflection and bridging, evaluation of its toughness is best achieved through measurements of the crack-resistance or R-curve, which describes the fracture toughness as a function of crack extension. Accordingly, in this study, we attempt to measure for the first time the R-curve fracture toughness of human cortical bone under physiologically relevant mixed-mode loading conditions. We show that the resulting mixed-mode (mode I+II) toughness depends strongly on the crack trajectory and is the result of the competition between the paths of maximum mechanical driving force and "weakest" microstructural resistance. Published by Elsevier Ltd.

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Year:  2010        PMID: 20409579      PMCID: PMC3087812          DOI: 10.1016/j.biomaterials.2010.03.056

Source DB:  PubMed          Journal:  Biomaterials        ISSN: 0142-9612            Impact factor:   12.479


  10 in total

1.  Mechanistic fracture criteria for the failure of human cortical bone.

Authors:  R K Nalla; J H Kinney; R O Ritchie
Journal:  Nat Mater       Date:  2003-03       Impact factor: 43.841

2.  From brittle to ductile fracture of bone.

Authors:  Herwig Peterlik; Paul Roschger; Klaus Klaushofer; Peter Fratzl
Journal:  Nat Mater       Date:  2005-12-11       Impact factor: 43.841

3.  The true toughness of human cortical bone measured with realistically short cracks.

Authors:  K J Koester; J W Ager; R O Ritchie
Journal:  Nat Mater       Date:  2008-06-29       Impact factor: 43.841

4.  Fracture in human cortical bone: local fracture criteria and toughening mechanisms.

Authors:  R K Nalla; J S Stölken; J H Kinney; R O Ritchie
Journal:  J Biomech       Date:  2005-07       Impact factor: 2.712

5.  Calculation of porosity and osteonal cement line effects on the effective fracture toughness of cortical bone in longitudinal crack growth.

Authors:  Y N Yeni; T L Norman
Journal:  J Biomed Mater Res       Date:  2000-09-05

6.  Resistance to crack growth in human cortical bone is greater in shear than in tension.

Authors:  T L Norman; S V Nivargikar; D B Burr
Journal:  J Biomech       Date:  1996-08       Impact factor: 2.712

7.  Mechanistic aspects of the fracture toughness of elk antler bone.

Authors:  M E Launey; P-Y Chen; J McKittrick; R O Ritchie
Journal:  Acta Biomater       Date:  2009-11-24       Impact factor: 8.947

8.  Mixed-mode fracture of human cortical bone.

Authors:  Elizabeth A Zimmermann; Maximilien E Launey; Holly D Barth; Robert O Ritchie
Journal:  Biomaterials       Date:  2009-07-01       Impact factor: 12.479

Review 9.  A rate-dependent microcrack-bridging model that can explain the strain rate dependency of cortical bone apparent yield strength.

Authors:  Yener N Yeni; David P Fyhrie
Journal:  J Biomech       Date:  2003-09       Impact factor: 2.712

Review 10.  Measurement of the toughness of bone: a tutorial with special reference to small animal studies.

Authors:  R O Ritchie; K J Koester; S Ionova; W Yao; N E Lane; J W Ager
Journal:  Bone       Date:  2008-06-28       Impact factor: 4.398

  10 in total
  11 in total

1.  Identifying Novel Clinical Surrogates to Assess Human Bone Fracture Toughness.

Authors:  Mathilde Granke; Alexander J Makowski; Sasidhar Uppuganti; Mark D Does; Jeffry S Nyman
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Review 2.  Patient-Specific Bone Multiscale Modelling, Fracture Simulation and Risk Analysis-A Survey.

Authors:  Amadeus C S de Alcântara; Israel Assis; Daniel Prada; Konrad Mehle; Stefan Schwan; Lucia Costa-Paiva; Munir S Skaf; Luiz C Wrobel; Paulo Sollero
Journal:  Materials (Basel)       Date:  2019-12-24       Impact factor: 3.623

3.  The effects of tensile-compressive loading mode and microarchitecture on microdamage in human vertebral cancellous bone.

Authors:  Floor M Lambers; Amanda R Bouman; Evgeniy V Tkachenko; Tony M Keaveny; Christopher J Hernandez
Journal:  J Biomech       Date:  2014-11-28       Impact factor: 2.712

4.  Modelling of bone fracture and strength at different length scales: a review.

Authors:  Fereshteh A Sabet; Ahmad Raeisi Najafi; Elham Hamed; Iwona Jasiuk
Journal:  Interface Focus       Date:  2016-02-06       Impact factor: 3.906

5.  Theoretical consideration of the effect of drug holidays on BMD and tissue age.

Authors:  C J Hernandez; H K Lopez; J M Lane
Journal:  Osteoporos Int       Date:  2014-02-26       Impact factor: 4.507

Review 6.  The role of nanoscale toughening mechanisms in osteoporosis.

Authors:  Philipp J Thurner; Orestis L Katsamenis
Journal:  Curr Osteoporos Rep       Date:  2014-09       Impact factor: 5.096

7.  Insulin-like growth factor 1, glycation and bone fragility: implications for fracture resistance of bone.

Authors:  Grażyna E Sroga; Ping-Cheng Wu; Deepak Vashishth
Journal:  PLoS One       Date:  2015-01-28       Impact factor: 3.240

8.  Microscopic assessment of bone toughness using scratch tests.

Authors:  Amrita Kataruka; Kavya Mendu; Orieka Okeoghene; Jasmine Puthuvelil; Ange-Therese Akono
Journal:  Bone Rep       Date:  2016-12-07

9.  50 years of scanning electron microscopy of bone-a comprehensive overview of the important discoveries made and insights gained into bone material properties in health, disease, and taphonomy.

Authors:  Furqan A Shah; Krisztina Ruscsák; Anders Palmquist
Journal:  Bone Res       Date:  2019-05-22       Impact factor: 13.567

10.  A novel videography method for generating crack-extension resistance curves in small bone samples.

Authors:  Orestis L Katsamenis; Thomas Jenkins; Federico Quinci; Sofia Michopoulou; Ian Sinclair; Philipp J Thurner
Journal:  PLoS One       Date:  2013-02-06       Impact factor: 3.240

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