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Development of 3D Printed Coronary Artery Model with Motion Simulation

  • SUNY Buffalo

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

Patient-specific 3D-printed vascular models provide an excellent alternative to in vivo animal models for benchtop testing and validation of new imaging and medical device technologies for the treatment of vascular diseases. 3D printed coronary artery models, can replicate vascular structures with a high degree of accuracy but fail to reproduce the physiologic motion, limiting their utility in preclinical testing. In this work, we present the design of coronary artery models that mimic the motion induced by the beating heart. A coronary artery model derived from a patient CT scan was segmented and converted into a printable 3D model using Meshmixer and SolidWorks. The coronary arteries were mounted on a flexible, hollow balloon structure with an inlet and outlet for fluid/air circulation. The phantom was fabricated using Stratasys J750 Digital Anatomy 3D-printer, with Agilus30 materials selected for their tissue-like properties. Coronary motion was simulated by cyclically inflating and deflating the balloon with air via a syringe controlled by a programmable linear actuator, simulating phases of the cardiac cycle. X-ray images were acquired with the Infinix Biplane Angiography Imaging System (Canon Medical Systems) under simulated motion, both with a catheter/wire placed within the coronary arteries and with contrast-filled coronary vessels. From these images, the balloon expansion was measured to be 3.826 mm, corresponding to a 10.35% increase in diameter during inflation. The resulting coronary artery displacement, estimated by tracking catheter tip as reference point, was approximately 6.575 mm over 600 ms interval. This work demonstrates a method for integrating motion simulation into a 3D-printed coronary artery phantom. These models can be further adapted to represent various cardiovascular diseases, such as stenosis. These models can serve as platforms for in vitro flow experiments to validate new imaging technologies such as 1000 fps High-Speed-Angiography for assessing the severity of stenosis on coronary flow.

Original languageEnglish
Title of host publicationMedical Imaging 2026
Subtitle of host publicationClinical and Biomedical Imaging
EditorsBarjor S. Gimi, Andrzej Krol
PublisherSPIE
ISBN (Electronic)9781510697959
DOIs
StatePublished - Apr 1 2026
EventMedical Imaging 2026: Clinical and Biomedical Imaging - Vancouver, Canada
Duration: Feb 16 2026Feb 20 2026

Publication series

NameProgress in Biomedical Optics and Imaging - Proceedings of SPIE
Volume13929
ISSN (Print)1605-7422
ISSN (Electronic)2410-9045

Conference

ConferenceMedical Imaging 2026: Clinical and Biomedical Imaging
Country/TerritoryCanada
CityVancouver
Period02/16/2602/20/26

Keywords

  • 3D Printing
  • CAD
  • Cardiac Phantom
  • Coronary Arteries
  • Dynamic Simulation
  • Interventional Imaging
  • Model
  • Stenosis

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