Publications
58
Citations
478
Est. group size
~4
Recurring co-author estimate
Active years
14
Publishing since 2013
Melissa C. Brindise studies blood flow (hemodynamics) in the brain's blood vessels, particularly in cerebral aneurysms and after surgical procedures like cerebral bypass for moyamoya disease, using high-fidelity computer simulations and experimental flow-measurement techniques. Her work also extends to studying transitional and turbulent fluid flow in pipes as a basis for understanding vessel flow, and to developing automated methods for detecting heart abnormalities from ECG signals. The lab combines fluid dynamics, medical imaging, 3D printing of patient-specific vessel models, and signal processing to better understand and predict cardiovascular and cerebrovascular conditions.
Publication output has fluctuated over the last decade, rising to a peak in 2024 after a slow 2023, suggesting an active but variable rather than steadily growing or declining output.
Generated by claude-sonnet-5 from public bibliographic data · Jul 20, 2026
- Evaluating the role of graft angle on cerebral hemodynamics following direct cerebral bypass for moyamoya disease
PLoS ONE · 2026
- Effect of heart rate on Hemodynamcis of CA
Open MIND · 2026
- Effect of heart rate on Hemodynamcis of CA
Zenodo (CERN European Organization for Nuclear Research) · 2026
- Automated detection of arrhythmias using a novel interpretable feature set extracted from 12-lead electrocardiogram
Computers in Biology and Medicine · 2025
- Resolving high frequency fluctuations in cerebral aneurysm hemodynamics: the critical role of high-fidelity simulations and heart rate effects
Computer Methods and Programs in Biomedicine · 2025
- Effect of the Womersley number on transition to turbulence in pipe flow: An experimental study
Physics of Fluids · 2024
- Effect of wall compliance on vessel hemodynamics: A baseline particle tracking velocimetry study
Physics of Fluids · 2024
- Characterizing the onset of transitional and turbulent flow regimes in pipe flows using instantaneous time-frequency-based analysis
Physics of Fluids · 2024
- Investigating intermittent behaviors in transitional flows using a novel time–frequency-based method
Experiments in Fluids · 2024
- AUTONOMOUS DETECTION OF MYOCARDIAL INFARCTION AND OTHER ECG ABNORMALITIES USING PHYSIOLOGICALLY INTERPRETABLE FEATURES
Journal of the American College of Cardiology · 2024
- Evaluating High-Frequency Fluctuations And Its Effect On Hemodynamics At Varying Heart Rates In Intracranial Aneurysms Via 4D PTV
2024
- E-135 Hemodynamic evaluation of graft structure in direct cerebral bypass
2024
- Additive manufacturing of patient-specific high-fidelity and thickness-controlled cerebral aneurysm geometries
Manufacturing Letters · 2023
- Bulletin of the American Physical Society×6
- arXiv (Cornell University)×6
- Physics of Fluids×4
- Experiments in Fluids×3
- IEEE Transactions on Medical Imaging×3
- Brett Meyers
Medicine · Purdue University West Lafayette
- Azariyas A. Challa
Medicine · The Ohio State University
- Vien T. Truong
Medicine · The Ohio State University
- Wojciech Mazur
Medicine · The Ohio State University
- You Zhong
Medicine · Purdue University West Lafayette
This profile was generated automatically from public scholarly data (OpenAlex). Group size and activity levels are estimates derived from co-authorship patterns.
Last updated Jul 20, 2026.
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