Literature DB >> 17160416

Transversely isotropic properties of porcine liver tissue: experiments and constitutive modelling.

C Chui1, E Kobayashi, X Chen, T Hisada, I Sakuma.   

Abstract

Knowledge of the biomechanical properties of soft tissue, such as liver, is important in modelling computer aided surgical procedures. Liver tissue does not bear mechanical loads, and, in numerical simulation research, is typically assumed to be isotropic. Nevertheless, a typical biological soft tissue is anisotropic. In vitro uniaxial tension and compression experiments were conducted on porcine cylindrical and cubical liver tissue samples respectively assuming a simplistic architecture of liver tissue with its constituent lobule and connective tissues components. With the primary axis perpendicular to the cross sectional surface of samples, the tissue is stiffer with tensile or compressive force in the axial direction compared to that of the transverse direction. At 20% strain, about twice as much force is required to elongate a longitudinal tissue sample than that of a transverse sample. Results of the study suggest that liver tissue is transversely isotropic. A combined strain energy based constitutive equation for transversely isotropic material is proposed. The improved capability of this equation to model the experimental data compared to its previously disclosed isotropic version suggests that the assumption on the fourth invariant in the constitutive equation is probably correct and that anisotropy properties of liver tissue should be considered in surgical simulation.

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Year:  2006        PMID: 17160416     DOI: 10.1007/s11517-006-0137-y

Source DB:  PubMed          Journal:  Med Biol Eng Comput        ISSN: 0140-0118            Impact factor:   2.602


  13 in total

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5.  Mechanical compliance of the endocardium.

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6.  Three-dimensional finite element modelling of the human ACL: simulation of passive knee flexion with a stressed and stress-free ACL.

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7.  Constitutive modelling of brain tissue: experiment and theory.

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8.  Magnetic resonance elastography by direct visualization of propagating acoustic strain waves.

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Review 9.  Experimental approaches on measuring the mechanical properties and constitutive laws of arterial walls.

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Authors:  F J Carter; T G Frank; P J Davies; D McLean; A Cuschieri
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  14 in total

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6.  Smoothed particle hydrodynamics simulation of biphasic soft tissue and its medical applications.

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7.  Biomechanical analysis of traumatic mesenteric avulsion.

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8.  Characterization of the mechanical properties of resected porcine organ tissue using optical fiber photoelastic polarimetry.

Authors:  Alexa W Hudnut; Behzad Babaei; Sonya Liu; Brent K Larson; Shannon M Mumenthaler; Andrea M Armani
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9.  Estimating zero-strain states of very soft tissue under gravity loading using digital image correlation.

Authors:  Zhan Gao; Jaydev P Desai
Journal:  Med Image Anal       Date:  2009-11-14       Impact factor: 8.545

10.  Dynamics of tissue shrinkage during ablative temperature exposures.

Authors:  Christian Rossmann; Elizabeth Garrett-Mayer; Frank Rattay; Dieter Haemmerich
Journal:  Physiol Meas       Date:  2013-12-17       Impact factor: 2.833

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