Location: Schmid, Nash, Young, Hunter, 2006 @ fe049013c4d2 / schmid_nash_young_hunter_2006_a.cellml

Author:
Catherine Lloyd <c.lloyd@auckland.ac.nz>
Date:
2010-05-10 21:49:31+12:00
Desc:
Updated documentation
Permanent Source URI:
https://models.cellml.org/workspace/schmid_nash_young_hunter_2006/rawfile/fe049013c4d27e2703720404370e98afc5cdc89f/schmid_nash_young_hunter_2006_a.cellml

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<!--  FILE :  separate_fung_law_1991.xml

CREATED :  30th July 2003

LAST MODIFIED : 30th July 2003

AUTHOR : Holger Schmid
          Bioengineering Institute
          The University of Auckland
          
MODEL STATUS :  This model conforms to the CellML 1.0 Specification released on
10th August 2001, and the 16/1/02 CellML Metadata 1.0 Specification.

DESCRIPTION :  This file contains a CellML description of the Separated Fung Law, that defines the higly nonlinear and anisotropic properties of (passive) cardiac muscle.

CHANGES:
18/02/04 - CML - Completed the Metadata.  
  
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<article>
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  <title>The Separated Fung Law</title>
  <author> 
    <firstname>Holger</firstname>
          <surname>Schmid</surname>

    <affiliation>
      <shortaffil>Auckland Bioengineering Institute, The University of Auckland</shortaffil>
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    This CellML model was implemented in a manner that could be used for performing finite element model simulations on the CMISS software program developed at the Auckland Bioengineering Institute, The University of Auckland. For additional information on implementation of cellML files in CMISS, please refer to the following <ulink url="http://www.bioeng.auckland.ac.nz/people/nickerso/cmiss/help.html">Link</ulink>.                          
            
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  <sect1 id="sec_structure">
<title>Model Structure</title>

<para>
ABSTRACT: The study of ventricular mechanics-analyzing the distribution of strain and stress in myocardium throughout the cardiac cycle-is crucially dependent on the accuracy of the constitutive law chosen to represent the highly nonlinear and anisotropic properties of passive cardiac muscle. A number of such laws have been proposed and fitted to experimental measurements of stress-strain behavior. Here we examine five of these laws and compare them on the basis of (i) "goodness of fit:" How well they fit a set of six shear deformation tests, (ii) "determinability:" How well determined the objective function is at the optimal parameter fit, and (iii) "variability:" How well determined the material parameters are over the range of experiments. These criteria are utilized to discuss the advantages and disadvantages of the constitutive laws.
</para>

<para>
The original paper reference is cited below:
</para>

<para>
Myocardial Material Parameter Estimation - A Comparative Study for Simple Shear, H. Schmid, M. P. Nash, A. A. Young and P. J. Hunter, 2006. <emphasis>Journal of Biomechanical Engineering</emphasis>, 128(5), 742-750.  <ulink url="http://www.ncbi.nlm.nih.gov/pubmed/16995761">PubMed ID: 16995761</ulink>  </para>

</sect1>
</article>
</documentation>


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        <rdf:li>separated fung law</rdf:li>
        <rdf:li>mechanical constitutive laws</rdf:li>
        <rdf:li>simple shear</rdf:li>
        <rdf:li>constitutive material law</rdf:li>
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    <dcterms:W3CDTF>2003-07-30T00:00:00+12:00</dcterms:W3CDTF>
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    <vCard:Orgname>The University of Auckland</vCard:Orgname>
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    <vCard:Given>Vignesh</vCard:Given>
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    <vCard:Given>Catherine</vCard:Given>
    <vCard:Family>Lloyd</vCard:Family>
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    <dcterms:W3CDTF>2003-12-28</dcterms:W3CDTF>
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    <dcterms:W3CDTF>2006-10-01 00:00</dcterms:W3CDTF>
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    <vCard:FN>Vignesh Kumar</vCard:FN>
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