Impact of Geometric Attributes on Abdominal Aortic Aneurysm Rupture Risk: An In Vivo FSI‐Based Study DOI
Xiaochen Wang, Mergen H. Ghayesh, Jiawen Li

et al.

International Journal for Numerical Methods in Biomedical Engineering, Journal Year: 2024, Volume and Issue: 40(12)

Published: Nov. 11, 2024

ABSTRACT Reported in this paper is a cutting‐edge computational investigation into the influence of geometric characteristics on abdominal aortic aneurysm (AAA) rupture risk, beyond traditional measure maximum diameter. A Comprehensive fluid–structure interaction (FSI) analysis was employed to assess risk factors range patient scenarios, with use three‐dimensional (3D) AAA models reconstructed from patient‐specific data and finite element method. Wall shear stress (WSS), its derivatives such as time‐averaged WSS (TAWSS), oscillatory index (OSI), relative residence time (RRT) transverse (transWSS) offer insights force dynamics acting wall. Emphasis placed these WSS‐based metrics seven key indices. By correlating discrepancies biomechanical phenomena, study highlights novel profound impact geometry prediction. This demonstrates necessity multidimensional assessment approach, future efforts should complement findings experimental validations for an applicable approach clinical use.

Language: Английский

Hemodynamic Insights into Abdominal Aortic Aneurysms: Bridging the Knowledge Gap for Improved Patient Care DOI Creative Commons
Suvash C. Saha, Isabella Francis, Goutam Saha

et al.

Fluids, Journal Year: 2024, Volume and Issue: 9(2), P. 50 - 50

Published: Feb. 15, 2024

Background: Abdominal aortic aneurysms (AAAs) present a formidable public health concern due to their propensity for localized, anomalous expansion of the abdominal aorta. These insidious dilations, often in early stages, mask life-threatening potential rupture, which carries grave prognosis. Understanding hemodynamic intricacies governing AAAs is paramount predicting aneurysmal growth and imminent risk rupture. Objective: Our extensive investigation delves into this complex environment intrinsic AAAs, utilizing comprehensive numerical analyses physiological pulsatile blood flow realistic boundary conditions explore multifaceted dynamics influencing aneurysm rupture risk. study introduces novel elements by integrating these parameters overall context pathophysiology, thus advancing our understanding intricate mechanics evolution Methods: Conservation mass momentum equations are used model an solved using finite volume-based ANSYS Fluent solver. Resistance pressure outlets following three-element Windkessel were imposed at each outlet accurately AAAs’ shear stress. Results: results uncover elevated velocities within aneurysm, suggesting augmented future increased stress wall. During systole phase, high wall (WSS) was observed, typically associated with lower while low oscillatory index (OSI) noted, correlating decreased expansion. Conversely, during diastole WSS OSI identified, potentially weakening wall, thereby promoting Conclusion: underscores indispensable role computational fluid dynamic (CFD) techniques diagnostic, therapeutic, monitoring realms AAAs. This body research significantly advances offering pivotal insights underpinning progression informing clinical interventions enhancing patient care.

Language: Английский

Citations

6

Nonlinear Biomechanical Behaviour of Extracranial Carotid Artery Aneurysms in the Framework of Windkessel Effect via FSI Technique DOI Creative Commons
Kaveh Moghadasi,

Mergen H. Ghayesh,

Jiawen Li

et al.

Journal of the mechanical behavior of biomedical materials/Journal of mechanical behavior of biomedical materials, Journal Year: 2024, Volume and Issue: 160, P. 106760 - 106760

Published: Sept. 30, 2024

Language: Английский

Citations

5

Surface effects and size-dependent dynamic analysis of Timoshenko micro-pipes conveying fluid under moving harmonic loads and magnetic fields DOI Creative Commons

Abbas Zandi-Baghche-Maryam,

Mohammad Hosseini, Reza Bahaadini

et al.

International Journal of Dynamics and Control, Journal Year: 2025, Volume and Issue: 13(2)

Published: Jan. 17, 2025

Language: Английский

Citations

0

Free vibration of a pipe conveying fluid constituted by the standard solid viscoelastic model DOI
Xia Tan, Sheng Liu, You-Qi Tang

et al.

International Journal of Dynamics and Control, Journal Year: 2025, Volume and Issue: 13(2)

Published: Jan. 25, 2025

Language: Английский

Citations

0

Computational fluid dynamics modelling of hemodynamics in aortic aneurysm and dissection: a review DOI Creative Commons
Mengqiang Hu, Bing Chen, Yuanming Luo

et al.

Frontiers in Bioengineering and Biotechnology, Journal Year: 2025, Volume and Issue: 13

Published: March 21, 2025

Hemodynamic analysis based on computational fluid dynamics (CFD) modelling is expected to improve risk stratification for patients with aortic aneurysms and dissections. However, the parameter settings in CFD simulations involve considerable variability uncertainty. Additionally, exact relationship between hemodynamic features disease progression remains unclear. These challenges limit clinical application of models. This review presents a detailed overview workflow CFD-based analysis, focus recent advancements field. We also conducted systematic 27 studies large sample sizes (n > 5) that examine characteristics Some identified consistent relationships progression, reinforcing potential limitations such as small oversimplified patient-specific models remain. findings emphasize need larger, more refine strategies, strengthen connection hemodynamics diseases, ultimately facilitate use management.

Language: Английский

Citations

0

Modeling Techniques and Boundary Conditions in Abdominal Aortic Aneurysm Analysis: Latest Developments in Simulation and Integration of Machine Learning and Data-Driven Approaches DOI Creative Commons
Burcu Ramazanlı,

Oyku Yagmur,

Efe Cesur Sarioglu

et al.

Bioengineering, Journal Year: 2025, Volume and Issue: 12(5), P. 437 - 437

Published: April 22, 2025

Research on abdominal aortic aneurysms (AAAs) primarily focuses developing a clear understanding of the initiation, progression, and treatment AAA through improved model accuracy. High-fidelity hemodynamic biomechanical predictions are essential for clinicians to optimize preoperative planning minimize therapeutic risks. Computational fluid dynamics (CFDs), finite element analysis (FEA), fluid-structure interaction (FSI) widely used simulate hemodynamics biomechanics. However, accuracy these simulations depends utilization realistic sophisticated boundary conditions (BCs), which properly integrating with rest cardiovascular system. Recent advances in machine learning (ML) techniques have introduced faster, data-driven surrogates modeling. These approaches can accelerate segmentation, predict biomechanics, assess disease progression. their reliability high-quality training data derived from CFDs FEA simulations, where BC modeling plays crucial role. Accurate BCs enhance ML predictions, increasing clinical applicability. This paper reviews existing models, discussing limitations technical challenges. Additionally, recent advancements explored, current states, future directions, common algorithms, limitations.

Language: Английский

Citations

0

A Review of Fluid-Structure Interaction: Blood Flow in Arteries DOI Creative Commons

Zubeir Allum Saib,

Farid Abed, Mergen H. Ghayesh

et al.

Biomedical Engineering Advances, Journal Year: 2025, Volume and Issue: unknown, P. 100171 - 100171

Published: April 1, 2025

Language: Английский

Citations

0

A Viscoelastic Constitutive Framework for Aging Muscular and Elastic Arteries DOI
Will Zhang, Majid Jadidi, Sayed Ahmadreza Razian

et al.

Acta Biomaterialia, Journal Year: 2024, Volume and Issue: unknown

Published: Sept. 1, 2024

Language: Английский

Citations

2

A predictive surrogate model for hemodynamics and structural prediction in abdominal aorta for different physiological conditions DOI

Xuan Tang,

ChaoJie Wu

Computer Methods and Programs in Biomedicine, Journal Year: 2023, Volume and Issue: 243, P. 107931 - 107931

Published: Nov. 20, 2023

Language: Английский

Citations

6

A comprehensive review on computational analysis, research advances, and major findings on Abdominal Aortic Aneurysms for the years 2021 to 2023 DOI

Anastasia Manta,

Konstantinos Tzirakis

Annals of Vascular Surgery, Journal Year: 2024, Volume and Issue: unknown

Published: Sept. 1, 2024

Language: Английский

Citations

1