Literature DB >> 1566907

Porous medium finite element model of the beating left ventricle.

J M Huyghe1, T Arts, D H van Campen, R S Reneman.   

Abstract

The axisymmetric model described represents myocardial tissue as a spongy anisotropic viscoelastic material. It includes torsion around the axis of symmetry of the ventricle, transmural variation of fiber angle, and redistribution of intracoronary blood in the myocardial wall. In simulations, end-systolic principal strains were equal to 0.45, -0.01, and -0.24 at two-thirds of the wall thickness from the epicardium and 0.26, 0.00, and -0.19 at one-third of the wall thickness from the epicardium. The direction of maximal shortening varied by less than 30 degrees from epicardium to endocardium, whereas fiber direction varied by greater than 100 degrees from epicardium to endocardium. During a normal cardiac cycle peak, equatorial intramyocardial pressure differed by less than 5% from peak intraventricular pressure. When redistribution of intracoronary blood in the ventricular wall was suppressed, peak equatorial intramyocardial pressure was found to exceed peak intraventricular pressure by greater than 30%. Simulated contraction of an unloaded left ventricle (left ventricular pressure = 0 kPa) produced similar magnitude for systolic intramyocardial pressures as the normal cardiac cycle. Transmural systolic fiber stress distribution was very sensitive to the chosen transmural fiber angle distribution.

Mesh:

Year:  1992        PMID: 1566907     DOI: 10.1152/ajpheart.1992.262.4.H1256

Source DB:  PubMed          Journal:  Am J Physiol        ISSN: 0002-9513


  17 in total

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6.  Dependence of intramyocardial pressure and coronary flow on ventricular loading and contractility: a model study.

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Review 7.  Transmural gradients of myocardial structure and mechanics: Implications for fiber stress and strain in pressure overload.

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Review 10.  Myocardial perfusion distribution and coronary arterial pressure and flow signals: clinical relevance in relation to multiscale modeling, a review.

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Journal:  Med Biol Eng Comput       Date:  2013-07-27       Impact factor: 2.602

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