» Articles » PMID: 30077485

A Compliant Aortic Model for in Vitro Simulations: Design and Manufacturing Process

Overview
Journal Med Eng Phys
Date 2018 Aug 6
PMID 30077485
Citations 6
Authors
Affiliations
Soon will be listed here.
Abstract

We design and manufacture a silicone model of the human aorta, able to mimic both the geometrical and the mechanical properties of physiological individuals, with a specific focus on reproducing the compliance. In fact, while the models available in the literature exhibit an unrealistic compliant behavior, though they are detailed from the geometrical viewpoint, here the goal is to provide an accurate compliant tool for in vitro testing the devices that interface with the vascular system. A parametric design of the aortic model is obtained based on the available literature data, and the model is manufactured with a specific silicone mixture using rapid prototyping and molding techniques. The manufactured prototype has been tested by means of computed tomography scans for evaluating the matching of the mechanical properties with the desired ones. Results show a high degree of adherence between the imposed and the measured compliance values for each main aortic section. Thus, our work proves the feasibility of the approach, and the possibility to manufacture compliant models that reproduce the mechanical behavior of the aorta for in vitro studies.

Citing Articles

Comparison of Two Generations of Thoracic Aortic Stent Grafts and Their Impact on Aortic Stiffness in an Porcine Model.

Mandigers T, Conti M, Allievi S, Dedola F, Bissacco D, Bianchi D EJVES Vasc Forum. 2023; 59:8-14.

PMID: 37213485 PMC: 10199196. DOI: 10.1016/j.ejvsvf.2023.04.001.


The effect of terminal impedance on aortic morphology and hemodynamics: an phantom study using flow field visualization.

Chen H, Wang W, Liu D, Cao Z, Yang Y, He Y Front Bioeng Biotechnol. 2023; 11:1175916.

PMID: 37168613 PMC: 10165012. DOI: 10.3389/fbioe.2023.1175916.


Validation and Verification of High-Fidelity Simulations of Thoracic Stent-Graft Implantation.

Ramella A, Migliavacca F, Rodriguez Matas J, Heim F, Dedola F, Marconi S Ann Biomed Eng. 2022; 50(12):1941-1953.

PMID: 35854187 PMC: 9794542. DOI: 10.1007/s10439-022-03014-y.


Assessing the aneurysm occlusion efficacy of a shear-thinning biomaterial in a 3D-printed model.

Schroeder G, Edalati M, Tom G, Kuntjoro N, Gutin M, Gurian M J Mech Behav Biomed Mater. 2022; 130:105156.

PMID: 35397405 PMC: 9060636. DOI: 10.1016/j.jmbbm.2022.105156.


Computational analysis of aortic haemodynamics in the presence of ascending aortic aneurysm.

Petuchova A, Maknickas A Technol Health Care. 2021; 30(1):187-200.

PMID: 34806632 PMC: 8842780. DOI: 10.3233/THC-219002.