Analysis of cardiac ventricular wall motion based on a three-dimensional electromechanical biventricular model
- 1. Departmentt of Biomedical Engineering, Zhejiang University, Hangzhou 310027 (China)
- 2. Department of Computer Science, Zhejiang University City College, Hangzhou 310015 (China)
- 3. School of Information Technology and Electrical Engineering, University of Queensland, St. Lucia, Brisbane, Queensland 4072 (Australia)
Description
This paper describes a biventricular model, which couples the electrical and mechanical properties of the heart, and computer simulations of ventricular wall motion and deformation by means of a biventricular model. In the constructed electromechanical model, the mechanical analysis was based on composite material theory and the finite-element method; the propagation of electrical excitation was simulated using an electrical heart model, and the resulting active forces were used to calculate ventricular wall motion. Regional deformation and Lagrangian strain tensors were calculated during the systole phase. Displacements, minimum principal strains and torsion angle were used to describe the motion of the two ventricles. The simulations showed that during the period of systole (1) the right ventricular free wall moves towards the septum, and at the same time, the base and middle of the free wall move towards the apex, which reduces the volume of the right ventricle; the minimum principle strain (E3) is largest at the apex, then at the middle of the free wall and its direction is in the approximate direction of the epicardial muscle fibres; (2) the base and middle of the left ventricular free wall move towards the apex and the apex remains almost static; the torsion angle is largest at the apex; the minimum principle strain E3 is largest at the apex and its direction on the surface of the middle wall of the left ventricle is roughly in the fibre orientation. These results are in good accordance with results obtained from MR tagging images reported in the literature. This study suggests that such an electromechanical biventricular model has the potential to be used to assess the mechanical function of the two ventricles, and also could improve the accuracy of ECG simulation when it is used in heart-torso model-based body surface potential simulation studies
Availability note (English)
Available online at http://stacks.iop.org/0031-9155/50/1901/pmb5_8_018.pdf or at the Web site for the journal Physics in Medicine and Biology (ISSN 1361-6560) http://www.iop.org/Additional details
Identifiers
- URL
- http://stacks.iop.org/0031-9155/50/1901/pmb5_8_018.pdf; http://www.iop.org/;
- DOI
- 10.1088/0031-9155/50/8/018;
- PII
- S0031-9155(05)89627-7;
Publishing Information
- Journal Title
- Physics in Medicine and Biology
- Journal Volume
- 50
- Journal Issue
- 8
- Journal Page Range
- p. 1901-1917
- ISSN
- 0031-9155
- CODEN
- PHMBA7
INIS
- Country of Publication
- United Kingdom
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 36099314
- Subject category
- S62: RADIOLOGY AND NUCLEAR MEDICINE;
- Descriptors DEI
- ACCURACY; COMPOSITE MATERIALS; COMPUTERIZED SIMULATION; DEFORMATION; EXCITATION; FINITE ELEMENT METHOD; HEART; IMAGES; LAGRANGIAN FUNCTION; MUSCLES; MYOCARDIUM; SURFACE POTENTIAL; TORSION; ULTRASONIC WAVES
- Descriptors DEC
- BODY; CALCULATION METHODS; CARDIOVASCULAR SYSTEM; ENERGY-LEVEL TRANSITIONS; FUNCTIONS; HEART; MATERIALS; MATHEMATICAL SOLUTIONS; MUSCLES; NUMERICAL SOLUTION; ORGANS; POTENTIALS; SIMULATION; SOUND WAVES