27.12.2012 Views

ARUP; ISBN: 978-0-9562121-5-3 - CMBBE 2012 - Cardiff University

ARUP; ISBN: 978-0-9562121-5-3 - CMBBE 2012 - Cardiff University

ARUP; ISBN: 978-0-9562121-5-3 - CMBBE 2012 - Cardiff University

SHOW MORE
SHOW LESS

You also want an ePaper? Increase the reach of your titles

YUMPU automatically turns print PDFs into web optimized ePapers that Google loves.

9. REFERENCES<br />

1. Limbert G. A mesostructurally-based anisotropic continuum model for biological<br />

soft tissues--Decoupled invariant formulation. J Mech Behav Biomed Mater.<br />

2011;4:1637-57.<br />

2. Boehler. Lois de comportement anisotrope des milieux continus. Journal de<br />

Mécanique. 1<strong>978</strong>;17:153-90.<br />

3. Holzapfel GA, Gasser TC, Ogden RW. A new constitutive framework for arterial<br />

wall mechanics and a comparative study of material models. J Elast. 2000;61:1-48.<br />

4. Humphrey JD, Yin FCP. On Constitutive Relations and Finite Deformations of<br />

Passive Cardiac Tissue .1. A Pseudostrain-Energy Function. J Biomech Eng.<br />

1987;109:298-304.<br />

5. Limbert G, Taylor M. On the constitutive modeling of biological soft connective<br />

tissues. A general theoretical framework and tensors of elasticity for strongly<br />

anisotropic fiber-reinforced composites at finite strain. Int J Solids Struct.<br />

2002;39:2343-58.<br />

6. Weiss JA, Maker BN, Govindjee S. Finite element implementation of<br />

incompressible transversely isotropic hyperelasticity. Comput Meth Appl Mech<br />

Eng. 1996;135:107-28.<br />

7. Blemker SS, Pinsky PM, Delp SL. A 3D model of muscle reveals the causes of<br />

nonuniform strains in the biceps brachii. J Biomech. 2005;38:657-65.<br />

8. Ito D, Tanaka E, Yamamoto S. A novel constitutive model of skeletal muscle taking<br />

into account anisotropic damage. J Mech Behav Biomed Mater. 2010;3:85-93.<br />

9. Tang Y, Ballarini R, Buehler MJ, Eppell SJ. Deformation micromechanisms of<br />

collagen fibrils under uniaxial tension. J Roy Soc Inter. 2010;7:839-50.<br />

10. Wagner DR, Lotz JC. Theoretical model and experimental results for the nonlinear<br />

elastic behavior of human annulus fibrosus. Journal of Orthopaedic Research.<br />

2004;22:901-9.<br />

11. Lu J, Zhang L. Physically motivated invariant formulation for transversely isotropic<br />

hyperelasticity. Int J Solids Struct. 2005;42:6015-31.<br />

12. Lanir Y, Fung YC. Two-Dimensional Mechanical Properties of Rabbit Skin—II:<br />

Experimental Results. J Biomech. 1972;7:171-82.<br />

13. Buehler M. Hierarchical nanomechanics of collagen fibrils: atomistic and molecular<br />

modeling. In: Fratzl P, editor. Collagen: Structure and Mechanics. New York:<br />

Springer Science; 2008. p. 175-247.<br />

14. Kratky O, Porod G. Röntgenuntersuchungen gelöster Fadenmoleküle. Recueil des<br />

Travaux Chimiques des Pays-Bas et de la Belgique. 1949;68:1106-22.<br />

15. Flory PJ. Statistical Mechanics of Chain Molecules. Chichester-New York: John<br />

Wiley & Sons; 1969.<br />

16. Kuhl E, Garikipati K, Arruda E, Grosh K. Remodeling of biological tissue:<br />

Mechanically induced reorientation of a transversely isotropic chain network. J<br />

Mech Phys Solids. 2005;53:1552-73.<br />

17. Kramer RZ, Venugopal MG, Bella J, Mayville P, Brodsky B, Berman HM.<br />

Staggered molecular packing in crystals of a collagen-like peptide with a single<br />

charged pair. Journal of Molecular Biology. 2000;301:1191-205.<br />

18. Sun YL, Luo ZP, Fertala A, An KN. Direct quantification of the flexibility of type I<br />

collagen monomer. Biochemical and Biophysical Research Communications.<br />

2002;295:382-6.<br />

19. Gautieri A, Vesentini S, Redaelli A, Buehler MJ. Hierarchical structure and<br />

nanomechanics of collagen microfibrils from the atomic scale up. Nano Lett.<br />

2011;11:757-66.

Hooray! Your file is uploaded and ready to be published.

Saved successfully!

Ooh no, something went wrong!