Valentina Mazzi

About Valentina Mazzi

Valentina Mazzi, With an exceptional h-index of 9 and a recent h-index of 9 (since 2020), a distinguished researcher at Politecnico di Torino, specializes in the field of Biomedical Engineering, Cardiovascular Fluid Mechanics, Computational Fluid Dynamics, Modeling and Simulation.

His recent articles reflect a diverse array of research interests and contributions to the field:

Influence of intracoronary hemodynamic forces on atherosclerotic plaque phenotypes

Blood flow energy identifies coronary lesions culprit of future myocardial infarction

Plaque progression is dependent on the local hemodynamics (time-averaged wall shear stress and TSVI) in combination with the plaque phenotype

Corrigendum to" Impact of wall displacements on the large-scale flow coherence in ascending aorta"[J. Biomech. 154 (2023) 111620].

Impact of wall displacements on the large-scale flow coherence in ascending aorta

Modelling aortic flows: impact of wall displacements on large-scale hemodynamic coherence in ascending aorta

Wall shear stress topological skeleton variability predicts plaque growth in human coronary arteries

Isogeometric hierarchical model reduction for advection–diffusion process simulation in microchannels

Valentina Mazzi Information

University

Position

PoliToBIOMed Lab

Citations(all)

226

Citations(since 2020)

226

Cited By

28

hIndex(all)

9

hIndex(since 2020)

9

i10Index(all)

9

i10Index(since 2020)

9

Email

University Profile Page

Google Scholar

Valentina Mazzi Skills & Research Interests

Biomedical Engineering

Cardiovascular Fluid Mechanics

Computational Fluid Dynamics

Modeling and Simulation

Top articles of Valentina Mazzi

Influence of intracoronary hemodynamic forces on atherosclerotic plaque phenotypes

International Journal of Cardiology

2024/3/15

Blood flow energy identifies coronary lesions culprit of future myocardial infarction

Annals of Biomedical Engineering

2024/2

Plaque progression is dependent on the local hemodynamics (time-averaged wall shear stress and TSVI) in combination with the plaque phenotype

European Heart Journal

2023/11

Corrigendum to" Impact of wall displacements on the large-scale flow coherence in ascending aorta"[J. Biomech. 154 (2023) 111620].

Journal of Biomechanics

2023/7/27

Impact of wall displacements on the large-scale flow coherence in ascending aorta

Journal of Biomechanics

2023/6/1

Modelling aortic flows: impact of wall displacements on large-scale hemodynamic coherence in ascending aorta

2023

Wall shear stress topological skeleton variability predicts plaque growth in human coronary arteries

2023

Isogeometric hierarchical model reduction for advection–diffusion process simulation in microchannels

2023/1/1

Risk of myocardial infarction based on endothelial shear stress analysis using coronary angiography

Atherosclerosis

2022/2/1

The variability of wall shear stress topological skeleton predicts plaque growth in human coronary arteries

2022

Smartphone-based particle image velocimetry for cardiovascular flows applications: A focus on coronary arteries

Frontiers in Bioengineering and Biotechnology

2022/12/8

Divergence of the normalized wall shear stress as an effective computational template of low-density lipoprotein polarization at the arterial blood-vessel wall interface

Computer Methods and Programs in Biomedicine

2022/11/1

Links between wall shear stress topological skeleton and imaging markers of early atherosclerosis at the carotid artery

2022/7/27

Coronary artery stenting affects wall shear stress topological skeleton

Journal of Biomechanical Engineering

2022/1/11

Early atherosclerotic changes in coronary arteries are associated with endothelium shear stress contraction/expansion variability

Annals of Biomedical Engineering

2021/7/29

Wall shear stress topological skeleton analysis in cardiovascular flows: Methods and applications

2021/1

EULERIAN-BASED WALL SHEAR STRESS TOPOLOGICAL SKELETON AS A TEMPLATE OF NEAR-WALL MASS TRANSPORT IN ARTERIES

2021

Exploring the link between wall shear stress topological skeleton and near-wall mass transport in cardiovascular flows using a Eulerian-based method

2021

Wall shear stress topological skeleton independently predicts long-term restenosis after carotid bifurcation endarterectomy

Annals of biomedical engineering

2020/12

A Eulerian method to analyze wall shear stress fixed points and manifolds in cardiovascular flows

Biomechanics and modeling in mechanobiology

2020/10

See List of Professors in Valentina Mazzi University(Politecnico di Torino)