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Published on: April 29, 2011
Optimization of inflow waveform phase-difference for minimized total cavopulmonary power loss
Onur Dur1, Curt G DeGroff, Bradley B Keller
1Department of Biomedical Engineering, Carnegie Mellon University, Pittsburgh, PA 15219, USA.
Insights
Optimizing caval flow waveforms in the total cavo-pulmonary connection (TCPC) can reduce energy loss by up to 30%. This finding improves understanding of single ventricle circuit hemodynamics for Fontan patients.
Area of Science:
- Biomedical Engineering
- Cardiovascular Physiology
- Computational Fluid Dynamics
Background:
- The Fontan operation is a palliative surgery for single ventricle congenital heart defects.
- Total cavo-pulmonary connection (TCPC) reroutes superior vena cava (SVC) and inferior vena cava (IVC) to pulmonary arteries (PA).
- Optimized hemodynamics and minimized power loss are crucial for Fontan procedure success.
Purpose of the Study:
- To investigate how temporal variations in SVC and IVC flow waveforms affect power loss in TCPC.
- To characterize power loss changes due to phase-shift and amplitude variations between SVC and IVC flows.
- To analyze the impact of respiration and pulsatility on energy dissipation within the TCPC pathway.
Main Methods:
- Utilized an experimentally validated pulsatile computational fluid dynamics (CFD) solver.
- Quantified energy dissipation by analyzing unsteady hemodynamics in idealized TCPC geometries.
- Incorporated patient-specific real-time phase-contrast magnetic resonance imaging (PC-MRI) flow waveforms from Fontan patients.
Main Results:
- Optimizing the phase-shift between caval flows reduced energy dissipation by up to 30% in idealized models.
- For patient-specific waveforms, power loss decreased by up to 11% through harmonic optimization at a mean flow of 3 L/min.
- Hemodynamic efficiency of single ventricle circuits is significantly influenced by caval flow waveform quality.
Conclusions:
- Caval flow waveform quality, regulated by respiratory pathways, strongly impacts single ventricle circuit efficiency.
- Patient-specific waveform optimization may offer therapeutic strategies to improve postoperative hemodynamics in Fontan patients.
- Findings suggest potential for enhancing Fontan patient outcomes through hemodynamic optimization.
Abstract:
The Fontan operation is a palliative surgical procedure performed on children, born with congenital heart defects that have yielded only a single functioning ventricle. The total cavo-pulmonary connection (TCPC) is a common variant of the Fontan procedure, where the superior vena cava (SVC) and inferior vena cava (IVC) are routed directly into the pulmonary arteries (PA). Due to the limited pumping energy available, optimized hemodynamics, in turn, minimized power loss, inside the TCPC pathway is required for the best optimal surgical outcomes. To complement ongoing efforts to optimize the anatomical geometric design of the surgical Fontan templates, here, we focused on the characterization of power loss changes due to the temporal variations in between SVC and IVC flow waveforms. An experimentally validated pulsatile computational fluid dynamics solver is used to quantify the effect of phase-shift between SVC and IVC inflow waveforms and amplitudes on internal energy dissipation. The unsteady hemodynamics of two standard idealized TCPC geometries are presented, incorporating patient-specific real-time PC-MRI flow waveforms of "functional" Fontan patients. The effects of respiration and pulsatility on the internal energy dissipation of the TCPC pathway are analyzed. Optimization of phase-shift between caval flows is shown to lead to lower energy dissipation up to 30% in these idealized models. For physiological patient-specific caval waveforms, the power loss is reduced significantly (up to 11%) by the optimization of all three major harmonics at the same mean pathway flow (3 L/min). Thus, the hemodynamic efficiency of single ventricle circuits is influenced strongly by the caval flow waveform quality, which is regulated through respiratory dependent physiological pathways. The proposed patient-specific waveform optimization protocol may potentially inspire new therapeutic applications to aid postoperative hemodynamics and improve the well being of the Fontan patients.
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