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Sensitivity of the gradient oscillatory number to flow input waveform shapes
Yuji Shimogonya1, Hiroshige Kumamaru, Kazuhiro Itoh
1Department of Mechanical and Systems Engineering, University of Hyogo, 2167 Shosha, Himeji, Hyogo 671-2201, Japan. shimogonya@eng.u-hyogo.ac.jp
The gradient oscillatory number (GON) is a reliable hemodynamic indicator for cerebral aneurysm initiation. Our study shows GON is insensitive to flow input waveform shapes, simplifying its use in large-scale studies.
Area of Science:
- Biomedical Engineering
- Fluid Dynamics
- Medical Imaging
Background:
- Cerebral aneurysms are a significant health concern.
- Hemodynamic factors play a crucial role in aneurysm initiation.
- The gradient oscillatory number (GON) is a potential indicator of these hemodynamic forces.
Purpose of the Study:
- To assess the sensitivity of the gradient oscillatory number (GON) to variations in flow input waveform shapes.
- To determine if assumed flow waveforms can be used in place of patient-specific waveforms for GON analysis.
- To evaluate the utility of GON as a hemodynamic indicator for cerebral aneurysm initiation.
Main Methods:
- Computational fluid dynamics (CFD) simulations were performed on a human internal carotid artery model.
- Three different flow input waveform shapes were used to analyze GON.
- Local absolute and relative variations of GON were computed to quantify sensitivity to waveform changes.
Main Results:
- Elevated GON was observed at known aneurysm sites across all tested waveform shapes.
- Qualitative GON distributions showed no significant differences between the three waveform shapes.
- Quantitative analysis indicated that GON is largely insensitive to flow waveform shape variability.
Conclusions:
- The gradient oscillatory number (GON) is robust to variations in flow input waveform shapes.
- Assumed flow waveforms can be substituted for individual waveforms in large-scale studies for GON analysis.
- GON remains a promising hemodynamic indicator for cerebral aneurysm initiation detection.
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