Calibration of the mechanical boundary conditions for a patient-specific thoracic aorta model including the heart motion effect

Fuente: arXiv
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Autores principales: Geronzi, Leonardo, Bel-Brunon, Aline, Martinez, Antonio, Rochette, Michel, Sensale, Marco, Bouchot, Olivier, Lalande, Alain, Lin, Siyu, Valentini, Pier Paolo, Biancolini, Marco Evangelos
Formato: Preprint
Publicado: 2025
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author Geronzi, Leonardo
Bel-Brunon, Aline
Martinez, Antonio
Rochette, Michel
Sensale, Marco
Bouchot, Olivier
Lalande, Alain
Lin, Siyu
Valentini, Pier Paolo
Biancolini, Marco Evangelos
author_facet Geronzi, Leonardo
Bel-Brunon, Aline
Martinez, Antonio
Rochette, Michel
Sensale, Marco
Bouchot, Olivier
Lalande, Alain
Lin, Siyu
Valentini, Pier Paolo
Biancolini, Marco Evangelos
contents Objective: we propose a procedure for calibrating 4 parameters governing the mechanical boundary conditions (BCs) of a thoracic aorta (TA) model derived from one patient with ascending aortic aneurysm. The BCs reproduce the visco-elastic structural support provided by the soft tissue and the spine and allow for the inclusion of the heart motion effect. Methods: we first segment the TA from magnetic resonance imaging (MRI) angiography and derive the heart motion by tracking the aortic annulus from cine-MRI. A rigid-wall fluid-dynamic simulation is performed to derive the time-varying wall pressure field. We build the finite element model considering patient-specific material properties and imposing the derived pressure field and the motion at the annulus boundary. The calibration, which involves the zero-pressure state computation, is based on purely structural simulations. After obtaining the vessel boundaries from the cine-MRI sequences, an iterative procedure is performed to minimize the distance between them and the corresponding boundaries derived from the deformed structural model. A strongly-coupled fluid-structure interaction (FSI) analysis is finally performed with the tuned parameters and compared to the purely structural simulation. Results and Conclusion: the calibration with structural simulations allows to reduce maximum and mean distances between image-derived and simulation-derived boundaries from 8.64 mm to 6.37 mm and from 2.24 mm to 1.83 mm, respectively. The maximum root mean square error between the deformed structural and FSI surface meshes is 0.19 mm. This procedure may prove crucial for increasing the model fidelity in replicating the real aortic root kinematics.
format Preprint
id arxiv_https___arxiv_org_abs_2503_02485
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Calibration of the mechanical boundary conditions for a patient-specific thoracic aorta model including the heart motion effect
Geronzi, Leonardo
Bel-Brunon, Aline
Martinez, Antonio
Rochette, Michel
Sensale, Marco
Bouchot, Olivier
Lalande, Alain
Lin, Siyu
Valentini, Pier Paolo
Biancolini, Marco Evangelos
Medical Physics
Numerical Analysis
Objective: we propose a procedure for calibrating 4 parameters governing the mechanical boundary conditions (BCs) of a thoracic aorta (TA) model derived from one patient with ascending aortic aneurysm. The BCs reproduce the visco-elastic structural support provided by the soft tissue and the spine and allow for the inclusion of the heart motion effect. Methods: we first segment the TA from magnetic resonance imaging (MRI) angiography and derive the heart motion by tracking the aortic annulus from cine-MRI. A rigid-wall fluid-dynamic simulation is performed to derive the time-varying wall pressure field. We build the finite element model considering patient-specific material properties and imposing the derived pressure field and the motion at the annulus boundary. The calibration, which involves the zero-pressure state computation, is based on purely structural simulations. After obtaining the vessel boundaries from the cine-MRI sequences, an iterative procedure is performed to minimize the distance between them and the corresponding boundaries derived from the deformed structural model. A strongly-coupled fluid-structure interaction (FSI) analysis is finally performed with the tuned parameters and compared to the purely structural simulation. Results and Conclusion: the calibration with structural simulations allows to reduce maximum and mean distances between image-derived and simulation-derived boundaries from 8.64 mm to 6.37 mm and from 2.24 mm to 1.83 mm, respectively. The maximum root mean square error between the deformed structural and FSI surface meshes is 0.19 mm. This procedure may prove crucial for increasing the model fidelity in replicating the real aortic root kinematics.
title Calibration of the mechanical boundary conditions for a patient-specific thoracic aorta model including the heart motion effect
topic Medical Physics
Numerical Analysis
url https://arxiv.org/abs/2503.02485