Related Experiment Video
Updated: Jun 30, 2025

Three-Dimensional Printing of a Complex Aortic Anomaly
Published on: November 1, 2018
Computational Fluid Dynamic Assessment of Patients with Congenital Heart Disease from 3D Rotational Angiography
Jenny E Zablah1, Michael J Shorofsky1, Kelly Cao2
1Children's Hospital of Colorado Heart Institute, University of Colorado Anschutz Medical Campus, Aurora, CO, USA.
Insights
This study demonstrates that integrating 3D rotational angiography (3DRA) with hemodynamic data and computational fluid dynamics (CFD) can quantify blood flow in congenital heart disease patients. This method provides detailed functional insights without extra imaging procedures.
Area of Science:
- Cardiovascular Imaging and Hemodynamics
- Medical Physics and Computational Biology
Background:
- Congenital heart disease (CHD) necessitates comprehensive imaging for anatomical and functional assessment, including blood flow.
- Current methods often require multiple imaging modalities, increasing patient burden.
- 3D rotational angiography (3DRA) offers CTA-like imaging during cardiac catheterization, providing anatomical detail and procedural guidance.
Purpose of the Study:
- To investigate the feasibility of generating quantitative blood flow information using 3DRA, hemodynamic data, and computational fluid dynamics (CFD).
- To establish if this integrated approach can provide functional insights without additional imaging or procedures.
- To assess the accuracy and detail of CFD outputs derived from 3DRA compared to established methods.
Main Methods:
- A retrospective feasibility study involving four CHD patients with 3DRA and hemodynamic data.
- 3DRA data processed for vascular region segmentation and CFD grid generation.
- Blood flow simulation using integrated catheter hemodynamic data for boundary conditions.
Main Results:
- Successful generation of key CFD outputs: flow patterns, distribution fractions, and wall shear stress.
- CFD outputs demonstrated comparable detail and resolution to CT or MR angiography.
- Computed flow distributions showed high accuracy, with less than 2.0% error compared to measured data in two cases.
Conclusions:
- Systematic integration of 3DRA, hemodynamic data, and CFD is a feasible and effective method for quantitative blood flow analysis.
- This approach offers valuable visualization and functional information without requiring additional imaging.
- The technique holds promise as an alternative for assessing hemodynamics in CHD patients.
Abstract:
For congenital heart disease patients, multiple imaging modalities are needed to discern anatomy and functional information such as differential blood flow. During cardiac catheterization, 3D rotational angiography (3DRA) can provide CTA-like images, enabling anatomical information and intraprocedural guidance. We seek to establish whether unique aspects of this technique can also generate quantitative functional blood flow information. We propose that systematic integration of 3DRA imaging, catheter hemodynamic information, and computational fluid dynamics (CFD), can provide quantitative information regarding blood flow dynamics and energetics, without additional imaging or procedures. We report a single center retrospective feasibility study comprising four patients with 3DRA imaging and a complete set of hemodynamic data. 3DRA was processed and segmented to reconstruct vascular regions of interest (ROI), and a computational grid for CFD modeling of blood flow through the ROI was generated. Blood flow was simulated by integrating catheter hemodynamic data to devise boundary conditions at vascular ROI inlets and outlets. The 3DRA-based workflow successfully generated key computational outputs commonly used for cardiovascular applications, including flow patterns, distribution fractions, wall shear stress. Computational outputs obtained were as detailed and resolved as those obtained from more commonly used CT or MR angiography. Accuracy was confirmed by comparing computed flow distributions with measurements for 2 cases, showing less than 2.0% error from the measured data. Systematic integration of catheter hemodynamic information, 3DRA imaging, and CFD modeling, provides an effective and feasible alternative to obtain important quantitative blood flow information and visualization, without additional imaging.

