ABAQUS (2009) ABAQUS user’s manual, version 6.9
Arruda EM, Boyce MC (1993) A three-dimensional constitutive model for the large stretch behavior of rubber elastic materials. J Mech Phys Solids 41:389–412
Article
Google Scholar
Barenblatt GI (1996) Scaling, self-similarity, and intermediate asymptotics. Cambridge University Press, Cambridge, MA
MATH
Google Scholar
Ben Amar M, Goriely A (2005) Growth and instability in elastic tissues. J Mech Phys Solids 53:2284–2319
Article
MATH
MathSciNet
Google Scholar
Cao YP, Lu J (2004a) Depth-sensing instrumented indentation with dual sharp indenters: stability analysis and corresponding regularization schemes. Acta Mater 52:1143–1153
Article
Google Scholar
Cao YP, Lu J (2004b) A new method to extract the plastic properties of metal materials from an instrumented spherical indentation loading curve. Acta Mater 52:4023–4032
Article
Google Scholar
Cheng YT, Cheng CM (1998) Relationships between hardness, elastic modulus, and the work of indentation. Appl Phys Lett 73:614–616
Article
Google Scholar
Cheng YT, Cheng CM (2004) Scaling, dimensional analysis, and indentation measurements. Mater Sci Eng R-Rep 44:91–149
Article
Google Scholar
Chen ZY, Diebels S (2012) Nanoindentation of hyperelastic polymer layers at finite deformation and parameter re-identification. Arch Appl Mech 82:1041–1056
Article
Google Scholar
Crichton ML, Donose BC, Chen X, Raphael AP, Huang H, Kendall MAF (2011) The viscoelastic, hyperelastic and scale dependent behaviour of freshly excised individual skin layers. Biomaterials 32:4670–4681
Article
Google Scholar
Cross SE, Jin YS, Rao JY, Gimzewski JK (2007) Nanomechanical analysis of cells from cancer patients. Nat Nanotech 2:780–783
Article
Google Scholar
Dao M, Chollacoop N, Van Vliet KJ, Venkatesh TA, Suresh S (2001) Computational modeling of the forward and reverse problems in instrumented sharp indentation. Acta Mater 49:3899–3918
Article
Google Scholar
Fischer-Cripps AC (2011) Nanoindentation. Springer, New York
Book
Google Scholar
Fung YC (1993) Biomechanics: mechanical properties of living tissues. Springer, New York
Book
Google Scholar
Fung YC, Fronek K, Patitucci P (1979) Pseudoelasticity of arteries and the choice of its mathematical expression. Am J Physiol-Heart C 237:H620–H631
Google Scholar
Giannakopoulos AE, Triantafyllou A (2007) Spherical indentation of incompressible rubber-like materials. J Mech Phys Solids 55:1196–1211
Google Scholar
Hadamard J (1923) Lectures on Cauchy’s problems in linear partial differential equations. Yale University Press, New Haven, CT
Google Scholar
Holzapfel GA, Ogden RW (2006) Mechanics of biological tissue. Springer, Berlin
Humphrey JD (2003) Continuum biomechanics of soft biological tissues. Proc R Soc A 459:3–46
Article
MATH
MathSciNet
Google Scholar
Lee B, Han L, Frank EH, Chubinskaya S, Ortiz C, Grodzinsky AJ (2010) Dynamic mechanical properties of the tissue-engineered matrix associated with individual chondrocytes. J Biomech 43:469–476
Article
Google Scholar
Lee H, Pharr GM, Nahm SH (2003) Material property evaluation of hyper-elastic rubber by micro-indentation. In: Proceedings of the SEM annual conference and exposition on experimental and applied mechanics
Levental I, Georges PC, Janmey PA (2007) Soft biological materials and their impact on cell function. Soft Matter 3:299–306
Article
Google Scholar
Li B, Cao YP, Feng XQ, Gao H (2012) Mechanics of morphological instabilities and surface wrinkling in soft materials: a review. Soft Matter 8:5728–5745
Article
Google Scholar
Lin D, Shreiber D, Dimitriadis E, Horkay F (2009) Spherical indentation of soft matter beyond the Hertzian regime: numerical and experimental validation of hyperelastic models. Biomech Model Mech 8:345–358
Article
Google Scholar
Liu D, Zhang Z, Sun L (2010) Nonlinear elastic load-displacement relation for spherical indentation on rubberlike materials. J Mater Res 25:2197–2202
Article
Google Scholar
Mooney M (1940) A theory of large elastic deformation. J Appl Phys 11:582–592
Article
MATH
Google Scholar
Oliver WC, Pharr GM (1992) Improved technique for determining hardness and elastic modulus using load and displacement sensing indentation experiments. J Mater Res 7:1564–1583
Article
Google Scholar
Rivlin RS (1948) Large elastic deformations of isotropic materials. IV. Further developments of the general theory. Philos Trans R Soc Lond Ser A Math Phys Sci 241:379–397
Article
MATH
MathSciNet
Google Scholar
Rodriguez EK, Hoger A, McCulloch A (1994) Stress-dependent finite growth in soft elastic tissue. J Biomech 27:455–467
Article
Google Scholar
Samani A, Plewes D (2004) A method to measure the hyperelastic parameters of ex vivo breast tissue samples. Phys Med Biol 49:4395–4405
Article
Google Scholar
Taber LA (1995) Biomechanics of growth, remodeling, and morphogenesis. Appl Mech Rev 48:487–545
Article
Google Scholar