1,110
Views
127
CrossRef citations to date
0
Altmetric
Original Articles

Wall stress and flow dynamics in abdominal aortic aneurysms: finite element analysis vs. fluid–structure interaction

, , , &
Pages 301-322 | Received 11 May 2007, Accepted 25 Nov 2007, Published online: 05 Jun 2008

Keep up to date with the latest research on this topic with citation updates for this article.

Read on this site (7)

Mario de Lucio, Marcos Fernández García, Jacobo Díaz García, Luis Esteban Romera Rodríguez & Francisco Álvarez Marcos. (2021) On the importance of tunica intima in the aging aorta: a three-layered in silico model for computing wall stresses in abdominal aortic aneurysms. Computer Methods in Biomechanics and Biomedical Engineering 24:5, pages 467-484.
Read now
Serena de Gelidi & Andrea Bucchi. (2019) Comparative finite element modelling of aneurysm formation and physiologic inflation in the descending aorta. Computer Methods in Biomechanics and Biomedical Engineering 22:15, pages 1197-1208.
Read now
Mohammadali Sharzehee, Seyed Saeid Khalafvand & Hai-Chao Han. (2018) Fluid-structure interaction modeling of aneurysmal arteries under steady-state and pulsatile blood flow: a stability analysis. Computer Methods in Biomechanics and Biomedical Engineering 21:3, pages 219-231.
Read now
Justyna A. Niestrawska, Daniel Ch. Haspinger & Gerhard A. Holzapfel. (2018) The influence of fiber dispersion on the mechanical response of aortic tissues in health and disease: a computational study. Computer Methods in Biomechanics and Biomedical Engineering 21:2, pages 99-112.
Read now
R. Antón, C.-Y. Chen, M.-Y. Hung, E.A. Finol & K. Pekkan. (2015) Experimental and computational investigation of the patient-specific abdominal aortic aneurysm pressure field. Computer Methods in Biomechanics and Biomedical Engineering 18:9, pages 981-992.
Read now
An-Shik Yang, Chih-Yung Wen, Li-Yu Tseng, Chih-Chieh Chiang, Wen-Yih Isaac Tseng & Hsi-Yu Yu. (2014) An innovative numerical approach to resolve the pulse wave velocity in a healthy thoracic aorta model. Computer Methods in Biomechanics and Biomedical Engineering 17:5, pages 461-473.
Read now
Evangelos Makris, Vasileios Gkanis, Sokrates Tsangaris & Christos Housiadas. (2012) A methodology to generate structured computational grids from DICOM data: application to a patient-specific abdominal aortic aneurysm (AAA) model. Computer Methods in Biomechanics and Biomedical Engineering 15:2, pages 173-183.
Read now

Articles from other publishers (120)

Burcu RAMAZANLI, Cüneyt SERT & M. Metin YAVUZ. (2023) EFFECT OF INLET VELOCITY PROFILE AND ENTRANCE LENGTH ON ABDOMINAL AORTIC ANEURYSM HEMODYNAMICS SIMULATIONSGİRİŞ HIZ PROFİLİ VE GİRİŞ UZUNLUĞUNUN ABDOMİNAL AORT ANEVRİZMASI HEMODİNAMİĞİ SİMÜLASYONLARINA ETKİSİ. Isı Bilimi ve Tekniği Dergisi 43:2, pages 159-174.
Crossref
Hüseyin Enes SALMAN. (2023) Pıhtı Birikiminin Abdominal Aort Anevrizması Yırtılma Riskine Etkisinin Mühendislik Yöntemleriyle İncelenmesiInvestigation of the Effect of Clot Deposition on the Risk of Abdominal Aortic Aneurysm Rupture by Engineering Methods. Fırat Üniversitesi Mühendislik Bilimleri Dergisi.
Crossref
Judith Fonken, Esther Maas, Arjet Nievergeld, Marc van Sambeek, Frans van de Vosse & Richard Lopata. (2023) The Impact of a Limited Field-of-View on Computed Hemodynamics in Abdominal Aortic Aneurysms: Evaluating the Feasibility of Completing Ultrasound Segmentations with Parametric Geometries. Annals of Biomedical Engineering 51:6, pages 1296-1309.
Crossref
Aykut Can Arslan & Huseyin Enes Salman. (2023) Effect of Intraluminal Thrombus Burden on the Risk of Abdominal Aortic Aneurysm Rupture. Journal of Cardiovascular Development and Disease 10:6, pages 233.
Crossref
Alexis Throop, Martina Bukac & Rana Zakerzadeh. (2022) Prediction of wall stress and oxygen flow in patient-specific abdominal aortic aneurysms: the role of intraluminal thrombus. Biomechanics and Modeling in Mechanobiology 21:6, pages 1761-1779.
Crossref
Samantha Amrani, Kornelia Eveilleau, Verena Fassbender, Hasan Obeid, Imad Abi-Nasr, Pascal Giordana, Magid Hallab & Georges Leftheriotis. (2022) Assessment of the systolic rise time by photoplethysmography in peripheral arterial diseases: a comparative study with ultrasound Doppler. European Heart Journal Open 2:3.
Crossref
Mohammad Al-Rawi. (2022) Two-Way Interaction (Aorta Blood-Artery) using Computational Fluid Dynamics (CFD) Simulation. Two-Way Interaction (Aorta Blood-Artery) using Computational Fluid Dynamics (CFD) Simulation.
Martin Hossack, Robert Fisher, Francesco Torella, Jillian Madine, Mark Field & Riaz Akhtar. (2022) Micromechanical and Ultrastructural Properties of Abdominal Aortic Aneurysms. Artery Research 28:1, pages 15-30.
Crossref
Martina Bukač & Shawn C. Shadden. (2021) Quantifying the effects of intraluminal thrombi and their poroelastic properties on abdominal aortic aneurysms. Archive of Applied Mechanics 92:2, pages 435-446.
Crossref
Shaojie Zhang, Joan D. Laubrie, S. Jamaleddin Mousavi & Stéphane Avril. (2021) 3D finite‐element modeling of vascular adaptation after endovascular aneurysm repair . International Journal for Numerical Methods in Biomedical Engineering 38:2.
Crossref
EYK Ng & Leonard Jun Cong Looi. (2022) Numerical analysis of biothermal-fluids and cardiac thermal pulse of abdominal aortic aneurysm. Mathematical Biosciences and Engineering 19:10, pages 10213-10251.
Crossref
Farhan Muhib, Md Didarul Islam & M Tarik Arafat. (2022) A study on the computational hemodynamic and mechanical parameters for understanding intracranial aneurysms of patients with hypertension and atrial fibrillation. Informatics in Medicine Unlocked 32, pages 101031.
Crossref
Nimmy Thankom Philip, B.S.V. Patnaik & B.J. Sudhir. (2022) Hemodynamic simulation of abdominal aortic aneurysm on idealised models: Investigation of stress parameters during disease progression. Computer Methods and Programs in Biomedicine 213, pages 106508.
Crossref
Christopher B. Sylvester, Dora Y. Huang, Elysa Jui, Kavya L. Singampalli, Jennifer P. Connell & K. Jane Grande-Allen. 2022. Debulking in Cardiovascular Interventions and Revascularization Strategies. Debulking in Cardiovascular Interventions and Revascularization Strategies 1 27 .
Nenad D. Filipovic. 2021. Computational Modeling and Simulation Examples in Bioengineering. Computational Modeling and Simulation Examples in Bioengineering 1 32 .
Huseyin Enes Salman, Reema Yousef Kamal & Huseyin Cagatay Yalcin. (2021) Numerical Investigation of the Fetal Left Heart Hemodynamics During Gestational Stages. Frontiers in Physiology 12.
Crossref
Judith H. C. Fonken, Esther J. Maas, Arjet H. M. Nievergeld, Marc R. H. M. van Sambeek, Frans N. van de Vosse & Richard G. P. Lopata. (2021) Ultrasound-Based Fluid-Structure Interaction Modeling of Abdominal Aortic Aneurysms Incorporating Pre-stress. Frontiers in Physiology 12.
Crossref
Ahmadreza B. Shahrestani, Bader Alshuraiaan & Mohsen Izadi. (2021) Combined natural convection-FSI inside a circular enclosure divided by a movable barrier. International Communications in Heat and Mass Transfer 126, pages 105426.
Crossref
Seifollah Gholampour & Nasser Fatouraee. (2021) Boundary conditions investigation to improve computer simulation of cerebrospinal fluid dynamics in hydrocephalus patients. Communications Biology 4:1.
Crossref
Nimmy Thankom Philip, B. S. V. Patnaik & Sudhir B. J.. (2020) Fluid structure interaction study in model abdominal aortic aneurysms: Influence of shape and wall motion. International Journal for Numerical Methods in Biomedical Engineering 37:3.
Crossref
Huseyin Enes Salman & Huseyin Cagatay Yalcin. (2021) Computational Modeling of Blood Flow Hemodynamics for Biomechanical Investigation of Cardiac Development and Disease. Journal of Cardiovascular Development and Disease 8:2, pages 14.
Crossref
John Friesen, Jonas Bergner, Mohammad Ibrahim Aftab Khan, Stefan Triess, Andreas Zoll, Peter F. Pelz & Farzin Adili. (2021) Comparison of existing aneurysm models and their path forward. Computer Methods and Programs in Biomedicine Update 1, pages 100019.
Crossref
Coşkun Bilgi & Kunt Atalık. (2020) Effects of blood viscoelasticity on pulsatile hemodynamics in arterial aneurysms. Journal of Non-Newtonian Fluid Mechanics 279, pages 104263.
Crossref
Amir Shamloo, Sina Ebrahimi, Ali Amani & Famida Fallah. (2020) Targeted Drug Delivery of Microbubble to Arrest Abdominal Aortic Aneurysm Development: A Simulation Study Towards Optimized Microbubble Design. Scientific Reports 10:1.
Crossref
April J. Boyd. (2020) Biomechanical prediction of abdominal aortic aneurysm rupture potential. Journal of Vascular Surgery 71:2, pages 627.
Crossref
Chi Wei Ong, Ian Wee, Nicholas Syn, Sheryl Ng, Hwa Liang Leo, Arthur Mark Richards & Andrew M.T.L. Choong. (2020) Computational Fluid Dynamics Modeling of Hemodynamic Parameters in the Human Diseased Aorta: A Systematic Review. Annals of Vascular Surgery 63, pages 336-381.
Crossref
Ke Luo, Wentao Jiang, Chen Yu, Xiaobao Tian, Zhihong Zhou & Yuan Ding. (2019) Fluid–Solid Interaction Analysis on Iliac Bifurcation Artery: A Numerical Study. International Journal of Computational Methods 16:07, pages 1850112.
Crossref
Ahmed Elhanafy, Amr Guaily & Ahmed Elsaid. (2019) Numerical simulation of blood flow in abdominal aortic aneurysms: Effects of blood shear-thinning and viscoelastic properties. Mathematics and Computers in Simulation 160, pages 55-71.
Crossref
Huseyin Enes Salman, Burcu Ramazanli, Mehmet Metin Yavuz & Huseyin Cagatay Yalcin. (2019) Biomechanical Investigation of Disturbed Hemodynamics-Induced Tissue Degeneration in Abdominal Aortic Aneurysms Using Computational and Experimental Techniques. Frontiers in Bioengineering and Biotechnology 7.
Crossref
Nikolaos Kontopodis, Konstantinos Tzirakis, Emmanouil Tavlas, Stella Lioudaki & Christos Ioannou. 2019. Abdominal Aortic Aneurysm - From Basic Research to Clinical Practice. Abdominal Aortic Aneurysm - From Basic Research to Clinical Practice.
Coşkun Bilgi & Kunt Atalık. (2019) Numerical investigation of the effects of blood rheology and wall elasticity in abdominal aortic aneurysm under pulsatile flow conditions. Biorheology 56:1, pages 51-71.
Crossref
Ahmed Elhanafy, Amr Guaily & Ahmed Elsaid. (2019) Numerical simulation of Oldroyd-B fluid with application to hemodynamics. Advances in Mechanical Engineering 11:5, pages 168781401985284.
Crossref
Mohammad O. Hamdan, Hashem M. Alargha, Saud Khashan & Waseem H. Aziz. (2019) CFD Investigation of the Effect of Cerebral Aneurysms Size on Wall Stresses and Strain. CFD Investigation of the Effect of Cerebral Aneurysms Size on Wall Stresses and Strain.
Yorgos Stergiou, Athanasios Kanaris, Aikaterini Mouza & Spiros Paras. (2019) Fluid-Structure Interaction in Abdominal Aortic Aneurysms: Effect of Haematocrit. Fluids 4:1, pages 11.
Crossref
Tejas Canchi, Ashish Saxena, EYK Ng, Esley CH Pwee & Sriram Narayanan. (2018) Application of Fluid–Structure Interaction Methods to Estimate the Mechanics of Rupture in Asian Abdominal Aortic Aneurysms. BioNanoScience 8:4, pages 1035-1044.
Crossref
T. Ahamed, R. A. Peattie, L. Dorfmann & E. M. Cherry Kemmerling. (2018) Pulsatile flow measurements and wall stress distribution in a patient specific abdominal aortic aneurysm phantom. ZAMM - Journal of Applied Mathematics and Mechanics / Zeitschrift für Angewandte Mathematik und Mechanik 98:12, pages 2258-2274.
Crossref
Tipapon Khamdaeng & Pradit Terdtoon. (2018) Regional pulse wave velocity and stress in aneurysmal arch-shaped aorta. Bio-Medical Materials and Engineering 29:4, pages 527-549.
Crossref
G.C. Shit & Sreeparna Majee. (2018) Magnetic field interaction with blood flow and heat transfer through diseased artery having Abdominal Aortic Aneurysm. European Journal of Mechanics - B/Fluids 71, pages 1-14.
Crossref
W. J. Lin, M. D. Iafrati, R. A. Peattie & L. Dorfmann. (2017) Growth and remodeling with application to abdominal aortic aneurysms. Journal of Engineering Mathematics 109:1, pages 113-137.
Crossref
Nikolaos Kontopodis, Konstantinos TzirakisChristos V Ioannou. (2018) The Obsolete Maximum Diameter Criterion, the Evident Role of Biomechanical (Pressure) Indices, the New Role of Hemodynamic (Flow) Indices, and the Multi-Modal Approach to the Rupture Risk Assessment of Abdominal Aortic Aneurysms. Annals of Vascular Diseases 11:1, pages 78-83.
Crossref
Tejas Canchi, Eddie Y. K. Ng, Ashish Saxena & Sriram Narayanan. 2018. Multi-Modality Imaging. Multi-Modality Imaging 83 101 .
L. P. Argani, F. Torella, R. K. Fisher, R. G. McWilliams, M. L. Wall & A. B. Movchan. (2017) Deformation and dynamic response of abdominal aortic aneurysm sealing. Scientific Reports 7:1.
Crossref
S. RUIZ DE GALARRETA, R. ANTON, A. CAZON & A. PRADERA-MALLABIABARRENA. (2018) INFLUENCE OF THE LOCAL MEAN CURVATURE ON THE ABDOMINAL AORTIC ANEURYSM STRESS DISTRIBUTION. Journal of Mechanics in Medicine and Biology 17:08, pages 1750106.
Crossref
Serena de Gelidi, Gianluca Tozzi & Andrea Bucchi. (2017) The effect of thickness measurement on numerical arterial models. Materials Science and Engineering: C 76, pages 1205-1215.
Crossref
Gary Han Chang, Clemens M. Schirmer & Yahya Modarres-Sadeghi. (2017) A reduced-order model for wall shear stress in abdominal aortic aneurysms by proper orthogonal decomposition. Journal of Biomechanics 54, pages 33-43.
Crossref
Sergio Ruiz de Galarreta, Aitor Cazón, Raúl Antón & Ender A. Finol. (2017) A Methodology for Verifying Abdominal Aortic Aneurysm Wall Stress. Journal of Biomechanical Engineering 139:1.
Crossref
Ashkan Javadzadegan, Anne Simmons, Masud Behnia & Tracie Barber. (2017) Computational modelling of abdominal aortic aneurysms: Effect of suprarenal vs infrarenal positions. European Journal of Mechanics - B/Fluids 61, pages 112-124.
Crossref
Santanu Chandra, Vimalatharmaiyah Gnanaruban, Fabian Riveros, Jose F. Rodriguez & Ender A. Finol. (2016) A Methodology for the Derivation of Unloaded Abdominal Aortic Aneurysm Geometry With Experimental Validation. Journal of Biomechanical Engineering 138:10.
Crossref
Francesco Nappi, Angelo Rosario Carotenuto, Arsenio Cutolo, Pierre Fouret, Christophe Acar, Juan Carlos Chachques & Massimiliano Fraldi. (2016) Compliance mismatch and compressive wall stresses drive anomalous remodelling of pulmonary trunks reinforced with Dacron grafts. Journal of the Mechanical Behavior of Biomedical Materials 63, pages 287-302.
Crossref
T. Ahamed, L. Dorfmann & R.W. Ogden. (2016) Modelling of residually stressed materials with application to AAA. Journal of the Mechanical Behavior of Biomedical Materials 61, pages 221-234.
Crossref
R. A. Peattie, E. Golden, R. S. Nomoto, C. M. Margossian, F. Q. Pancheri, E. S. Edgar, M. D. Iafrati & A. Luis Dorfmann. (2016) A Technique for Comparing Wall Pressure Distributions in Steady Flow Through Rigid Versus Flexible Patient-based Abdominal Aortic Aneurysm Phantoms. Experimental Techniques 40:4, pages 1187-1201.
Crossref
Serena de Gelidi, Gianluca Tozzi & Andrea Bucchi. (2016) The Role of Pre-Conditioning Frequency in the Experimental Characterization of Hyper-Elastic Materials as Models for Soft Tissue Applications. International Journal of Applied Mechanics 08:05, pages 1650066.
Crossref
Noel Conlisk, Arjan J. Geers, Olivia M.B. McBride, David E. Newby & Peter R. Hoskins. (2016) Patient-specific modelling of abdominal aortic aneurysms: The influence of wall thickness on predicted clinical outcomes. Medical Engineering & Physics 38:6, pages 526-537.
Crossref
Maria G. C. Nestola, Alessio Gizzi, Christian Cherubini & Simonetta Filippi. (2015) Three-band decomposition analysis in multiscale FSI models of abdominal aortic aneurysms. International Journal of Modern Physics C 27:02, pages 1650017.
Crossref
Han LiKexin LinDanial Shahmirzadi. (2016) FSI Simulations of Pulse Wave Propagation in Human Abdominal Aortic Aneurysm: The Effects of Sac Geometry and Stiffness. Biomedical Engineering and Computational Biology 7, pages BECB.S40094.
Crossref
Yueh-Hsun Lu, Karthick Mani, Bivas Panigrahi, Wen-Tang Hsu & Chia-Yuan Chen. (2016) Endoleak Assessment Using Computational Fluid Dynamics and Image Processing Methods in Stented Abdominal Aortic Aneurysm Models. Computational and Mathematical Methods in Medicine 2016, pages 1-9.
Crossref
Young Kwon. 2015. Multiphysics and Multiscale Modeling. Multiphysics and Multiscale Modeling 375 392 .
Vitaly O. Kheyfets, Lourdes Rios, Triston Smith, Theodore Schroeder, Jeffrey Mueller, Srinivas Murali, David Lasorda, Anthony Zikos, Jennifer Spotti, John J. ReillyJr.Jr. & Ender A. Finol. (2015) Patient-specific computational modeling of blood flow in the pulmonary arterial circulation. Computer Methods and Programs in Biomedicine 120:2, pages 88-101.
Crossref
Bram Trachet, Joris Bols, Joris Degroote, Benedict Verhegghe, Nikolaos Stergiopulos, Jan Vierendeels & Patrick Segers. (2015) An Animal-Specific FSI Model of the Abdominal Aorta in Anesthetized Mice. Annals of Biomedical Engineering 43:6, pages 1298-1309.
Crossref
Yaser Mesri, Hamid Niazmand, Amin Deyranlou & Mahmood Reza Sadeghi. (2015) Fluid-structure interaction in abdominal aortic aneurysms: Structural and geometrical considerations. International Journal of Modern Physics C 26:04, pages 1550038.
Crossref
Vitaly Kheyfets, Mirunalini Thirugnanasambandam, Lourdes Rios, Daniel Evans, Triston Smith, Theodore Schroeder, Jeffrey Mueller, Srinivas Murali, David Lasorda, Jennifer Spotti & Ender Finol. (2015) The Role of Wall Shear Stress in the Assessment of Right Ventricle Hydraulic Workload. Pulmonary Circulation 5:1, pages 90-100.
Crossref
Fatma Gulden Simsek & Young W. Kwon. (2015) Investigation of material modeling in fluid–structure interaction analysis of an idealized three-layered abdominal aorta: aneurysm initiation and fully developed aneurysms. Journal of Biological Physics 41:2, pages 173-201.
Crossref
Nikolaos Kontopodis, Eleni Metaxa, Yannis Papaharilaou, Emmanouil Tavlas, Dimitrios Tsetis & Christos Ioannou. (2014) Advancements in identifying biomechanical determinants for abdominal aortic aneurysm rupture. Vascular 23:1, pages 65-77.
Crossref
M. Nicolás, V.R. Palero, E. Peña, M.P. Arroyo, M.A. Martínez & M. Malvè. (2015) Numerical and experimental study of the fluid flow through a medical device. International Communications in Heat and Mass Transfer 61, pages 170-178.
Crossref
Tejas Canchi, S. D. Kumar, E. Y. K. Ng & Sriram Narayanan. (2015) A Review of Computational Methods to Predict the Risk of Rupture of Abdominal Aortic Aneurysms. BioMed Research International 2015, pages 1-12.
Crossref
Y. Wang, D. Joannic, P. Delassus, A. Lalande, P. Juillion & J.-F. Fontaine. (2015) Comparaison de la mesure des déformations de fantômes de l’aorte à partir d’image obtenues par IRM et stéréovision. Comparaison de la mesure des déformations de fantômes de l’aorte à partir d’image obtenues par IRM et stéréovision.
Y. Wang, D. Joannic, P. Delassus, A. Lalande, P. Juillion & J.-F. Fontaine. (2015) Comparaison de la mesure des déformations de fantômes de l’aorte à partir d’image obtenues par IRM et stéréovision. Comparaison de la mesure des déformations de fantômes de l’aorte à partir d’image obtenues par IRM et stéréovision.
Md. Sohel Rana, Md. Fazlay Rubby & A. B. M. Toufique Hasan. (2015) Study of Physiological Flow Through an Abdominal Aortic Aneurysm (AAA). Procedia Engineering 105, pages 885-892.
Crossref
Igor Inga & Danial Shahmirzadi. (2015) In silico characterization of the effects of size, distribution, and modulus contrast of aortic focal softening on pulse wave propagations. Artery Research 11:C, pages 10.
Crossref
Florentina Ene, Patrick Delassus & Liam Morris. (2014) The influence of computational assumptions on analysing abdominal aortic aneurysm haemodynamics. Proceedings of the Institution of Mechanical Engineers, Part H: Journal of Engineering in Medicine 228:8, pages 768-780.
Crossref
Jaime E. Zelaya, Sevan Goenezen, Phong T. Dargon, Amir-Farzin Azarbal & Sandra Rugonyi. (2014) Improving the Efficiency of Abdominal Aortic Aneurysm Wall Stress Computations. PLoS ONE 9:7, pages e101353.
Crossref
Ashkan Javadzadegan, Babak Fakhim, Mehrdad Behnia & Masud Behnia. (2014) Fluid-structure interaction investigation of spiral flow in a model of abdominal aortic aneurysm. European Journal of Mechanics - B/Fluids 46, pages 109-117.
Crossref
Claudio Chiastra, Francesco Migliavacca, Miguel Ángel Martínez & Mauro Malvè. (2014) On the necessity of modelling fluid–structure interaction for stented coronary arteries. Journal of the Mechanical Behavior of Biomedical Materials 34, pages 217-230.
Crossref
Chia-Yuan Chen, Raúl Antón, Ming-yang Hung, Prahlad Menon, Ender A. Finol & Kerem Pekkan. (2014) Effects of Intraluminal Thrombus on Patient-Specific Abdominal Aortic Aneurysm Hemodynamics via Stereoscopic Particle Image Velocity and Computational Fluid Dynamics Modeling. Journal of Biomechanical Engineering 136:3.
Crossref
Danial Shahmirzadi & Elisa E. Konofagou. (2014) Quantification of arterial wall inhomogeneity size, distribution, and modulus contrast using FSI numerical pulse wave propagation. Artery Research 8:2, pages 57.
Crossref
Michael D. Hope & Thomas A. Hope. (2013) Functional and molecular imaging techniques in aortic aneurysm disease. Current Opinion in Cardiology 28:6, pages 609-618.
Crossref
A. Karthikesalingam, R.J. Cobb, A. Khoury, E.C. Choke, R.D. Sayers, P.J. Holt & M.M. Thompson. (2013) The Morphological Applicability of a Novel Endovascular Aneurysm Sealing (EVAS) System (Nellix) in Patients with Abdominal Aortic Aneurysms. European Journal of Vascular and Endovascular Surgery 46:4, pages 440-445.
Crossref
A Karthikesalingam, P J Holt, A Vidal-Diez, E C Choke, B O Patterson, L J Thompson, T Ghatwary, M J Bown, R D Sayers & M M Thompson. (2013) Predicting aortic complications after endovascular aneurysm repair. British Journal of Surgery 100:10, pages 1302-1311.
Crossref
Santanu Chandra, Samarth S. Raut, Anirban Jana, Robert W. Biederman, Mark Doyle, Satish C. Muluk & Ender A. Finol. (2013) Fluid-Structure Interaction Modeling of Abdominal Aortic Aneurysms: The Impact of Patient-Specific Inflow Conditions and Fluid/Solid Coupling. Journal of Biomechanical Engineering 135:8.
Crossref
Samarth S. Raut, Santanu Chandra, Judy Shum & Ender A. Finol. (2013) The Role of Geometric and Biomechanical Factors in Abdominal Aortic Aneurysm Rupture Risk Assessment. Annals of Biomedical Engineering 41:7, pages 1459-1477.
Crossref
Valérie Deplano, Clark Meyer, Carine Guivier-Curien & Eric Bertrand. (2013) New insights into the understanding of flow dynamics in an in vitro model for abdominal aortic aneurysms. Medical Engineering & Physics 35:6, pages 800-809.
Crossref
Eric K. Shang, Derek P. Nathan, Shanna R. Sprinkle, Sarah C. Vigmostad, Ronald M. Fairman, Joseph E. Bavaria, Robert C. Gorman, Joseph H. GormanIIIIII, Krishnan B. Chandran & Benjamin M. Jackson. (2013) Peak Wall Stress Predicts Expansion Rate in Descending Thoracic Aortic Aneurysms. The Annals of Thoracic Surgery 95:2, pages 593-598.
Crossref
Eduardo Soudah, E. Y. K. Ng, T. H. Loong, Maurizio Bordone, Uei Pua & Sriram Narayanan. (2013) CFD Modelling of Abdominal Aortic Aneurysm on Hemodynamic Loads Using a Realistic Geometry with CT. Computational and Mathematical Methods in Medicine 2013, pages 1-9.
Crossref
S.I.S. Pinto, E. Doutel, J.B.L.M. Campos & J.M. Miranda. (2013) Blood Analog Fluid Flow in Vessels with Stenosis: Development of an Openfoam Code to Simulate Pulsatile Flow and Elasticity of the Fluid. APCBEE Procedia 7, pages 73-79.
Crossref
Tina L. T. Shek, Leonard W. Tse, Aydin Nabovati & Cristina H. Amon. (2012) Computational Fluid Dynamics Evaluation of the Cross-Limb Stent Graft Configuration for Endovascular Aneurysm Repair. Journal of Biomechanical Engineering 134:12.
Crossref
Fabian Rengier, Michael Delles, Roland Unterhinninghofen, Sebastian Ley, Matthias Müller-Eschner, Sasan Partovi, Philipp Geisbüsch, Rüdiger Dillmann, Hans-Ulrich Kauczor & Hendrik von Tengg-Kobligk. (2012) In vivo and in vitro validation of aortic flow quantification by time-resolved three-dimensional velocity-encoded MRI. The International Journal of Cardiovascular Imaging 28:8, pages 1999-2008.
Crossref
Danial Shahmirzadi, Ronny X. Li & Elisa E. Konofagou. (2012) Pulse-Wave Propagation in Straight-Geometry Vessels for Stiffness Estimation: Theory, Simulations, Phantoms and In Vitro Findings. Journal of Biomechanical Engineering 134:11.
Crossref
Marie Sand Enevoldsen, Mads Moller Pedersen, Martin Christian Hemmsen, Michael Bachmann Nielsen & Jorgen Arendt Jensen. (2012) Computational fluid dynamics using in vivo ultrasound blood flow measurements. Computational fluid dynamics using in vivo ultrasound blood flow measurements.
Georgios A. Pitoulias, Dimitrios M. Mavros, Evaggelos A. Pappas, Stefanos K. Atmatzidis & Dimitrios K. Papadimitriou. (2012) Chronic Contained Abdominal Aortic Aneurysm Rupture After Suprarenal Fixation Fatigue Fracture. Annals of Vascular Surgery 26:7, pages 1011.e7-1011.e10.
Crossref
J. S. Wilson, S. Baek & J. D. Humphrey. (2012) Importance of initial aortic properties on the evolving regional anisotropy, stiffness and wall thickness of human abdominal aortic aneurysms. Journal of The Royal Society Interface 9:74, pages 2047-2058.
Crossref
M. Malvè, A. García, J. Ohayon & M.A. Martínez. (2012) Unsteady blood flow and mass transfer of a human left coronary artery bifurcation: FSI vs. CFD. International Communications in Heat and Mass Transfer 39:6, pages 745-751.
Crossref
MAMADOU TOUNGARA, GREGORY CHAGNON & CHRISTIAN GEINDREAU. (2012) NUMERICAL ANALYSIS OF THE WALL STRESS IN ABDOMINAL AORTIC ANEURYSM: INFLUENCE OF THE MATERIAL MODEL NEAR-INCOMPRESSIBILITY. Journal of Mechanics in Medicine and Biology 12:01, pages 1250005.
Crossref
J.D. Humphrey & G.A. Holzapfel. (2012) Mechanics, mechanobiology, and modeling of human abdominal aorta and aneurysms. Journal of Biomechanics 45:5, pages 805-814.
Crossref
Efstratios Georgakarakos, George S. Georgiadis, Antonios Xenakis, Konstantinos C. Kapoulas, Miltos K. Lazarides, Adamantios S. Tsangaris & Christos V. Ioannou. (2012) Application of Bioengineering Modalities in Vascular Research: Evaluating the Clinical Gain. Vascular and Endovascular Surgery 46:2, pages 101-108.
Crossref
Danial Shahmirzadi & Elisa E. Konofagou. (2012) Detection of aortic wall inclusions using regional pulse wave propagation and velocity in silico . Artery Research 6:3, pages 114.
Crossref
JONAS LANTZ, JOHAN RENNER & MATTS KARLSSON. (2012) WALL SHEAR STRESS IN A SUBJECT SPECIFIC HUMAN AORTA — INFLUENCE OF FLUID-STRUCTURE INTERACTION. International Journal of Applied Mechanics 03:04, pages 759-778.
Crossref
Christopher B. Washington, Judy Shum, Satish C. Muluk & Ender A. Finol. (2011) The Association of Wall Mechanics and Morphology: A Case Study of Abdominal Aortic Aneurysm Growth. Journal of Biomechanical Engineering 133:10.
Crossref
Ryan R. Davies. (2011) Invited Commentary. The Annals of Thoracic Surgery 92:4, pages 1389-1390.
Crossref
Kosmas I. Paraskevas, Dimitri P. Mikhailidis & Frank J. Veith. (2011) The Rationale for Lowering the Size Threshold in Elective Endovascular Repair of Abdominal Aortic Aneurysm. Journal of Endovascular Therapy 18:3, pages 308-313.
Crossref
Efstratios Georgakarakos, Christos V. Ioannou, Yannis Papaharilaou, Theodoros Kostas & Asterios N. Katsamouris. (2011) Computational Evaluation of Aortic Aneurysm Rupture Risk: What Have We Learned So Far?. Journal of Endovascular Therapy 18:2, pages 214-225.
Crossref
Seong Wook Cho, Seung Wook Kim, Moon Hyun Sung, Kyoung Chul Ro & Hong Sun Ryou. (2011) Fluid-structure interaction analysis on the effects of vessel material properties on blood flow characteristics in stenosed arteries under axial rotation. Korea-Australia Rheology Journal 23:1, pages 7-16.
Crossref
Judy Shum, Giampaolo Martufi, Elena Di Martino, Christopher B. Washington, Joseph Grisafi, Satish C. Muluk & Ender A. Finol. (2010) Quantitative Assessment of Abdominal Aortic Aneurysm Geometry. Annals of Biomedical Engineering 39:1, pages 277-286.
Crossref
Moqueet A. Qureshi, Brain D. Conway & Roy K. Greenberg. 2011. Biomechanics and Mechanobiology of Aneurysms. Biomechanics and Mechanobiology of Aneurysms 285 329 .
M. Xenos & D. Bluestein. 2011. Biomechanics and Mechanobiology of Aneurysms. Biomechanics and Mechanobiology of Aneurysms 181 220 .
Amir H. Malkawi, Robert J. Hinchliffe, Yun Xu, Peter J. Holt, Ian M. Loftus & Matt M. Thompson. (2010) Patient-specific biomechanical profiling in abdominal aortic aneurysm development and rupture. Journal of Vascular Surgery 52:2, pages 480-488.
Crossref
Andreas Stadlbauer, Wilma van der Riet, Gerard Crelier & Erich Salomonowitz. (2010) Accelerated time-resolved three-dimensional MR velocity mapping of blood flow patterns in the aorta using SENSE and k-t BLAST. European Journal of Radiology 75:1, pages e15-e21.
Crossref
A. Dorfmann, C. Wilson, E. S. Edgar & R. A. Peattie. (2009) Evaluating patient-specific abdominal aortic aneurysm wall stress based on flow-induced loading. Biomechanics and Modeling in Mechanobiology 9:2, pages 127-139.
Crossref
Judy Shum, Elena S. DiMartino, Adam Goldhammer, Daniel H. Goldman, Leah C. Acker, Gopal Patel, Julie H. Ng, Giampaolo Martufi & Ender A. Finol. (2010) Semiautomatic vessel wall detection and quantification of wall thickness in computed tomography images of human abdominal aortic aneurysms. Medical Physics 37:2, pages 638-648.
Crossref
E. Georgakarakos, C.V. Ioannou, Y. Kamarianakis, Y. Papaharilaou, T. Kostas, E. Manousaki & A.N. Katsamouris. (2010) The Role of Geometric Parameters in the Prediction of Abdominal Aortic Aneurysm Wall Stress. European Journal of Vascular and Endovascular Surgery 39:1, pages 42-48.
Crossref
Robert H. P. McGregor, Bryn A. Lloyd, Dominik Szczerba & Gábor Székely. 2010. Biomedical Simulation. Biomedical Simulation 49 58 .
Jean Bismuth, Christof Karmonik, Dipan Shah, Mark G. Davies & Alan B. Lumsden. 2010. Computational Surgery and Dual Training. Computational Surgery and Dual Training 91 100 .
Smbat AmirbekianRobert C. LongJr.Jr., Michelle A. Consolini, Jin Suo, Nick J. Willett, Sam W. FieldenDon P. Giddens, W. Robert Taylor & John N. Oshinski. (2009) In vivo assessment of blood flow patterns in abdominal aorta of mice with MRI: implications for AAA localization. American Journal of Physiology-Heart and Circulatory Physiology 297:4, pages H1290-H1295.
Crossref
Jiang Xiong, Wei Guo, Juan Wang & Wei Zhou. (2009) Effects of Wall Thickness on Stress Distribution in Patient-Specific Models of Abdominal Aortic Aneurysm. Effects of Wall Thickness on Stress Distribution in Patient-Specific Models of Abdominal Aortic Aneurysm.
V. Kanyanta, A. Ivankovic & A. Karac. (2009) Validation of a fluid–structure interaction numerical model for predicting flow transients in arteries. Journal of Biomechanics 42:11, pages 1705-1712.
Crossref
Giampaolo Martufi, Elena S. Di Martino, Cristina H. Amon, Satish C. Muluk & Ender A. Finol. (2009) Three-Dimensional Geometrical Characterization of Abdominal Aortic Aneurysms: Image-Based Wall Thickness Distribution. Journal of Biomechanical Engineering 131:6.
Crossref
F.P.P. Tan, A. Borghi, R.H. Mohiaddin, N.B. Wood, S. Thom & X.Y. Xu. (2009) Analysis of flow patterns in a patient-specific thoracic aortic aneurysm model. Computers & Structures 87:11-12, pages 680-690.
Crossref
Ryo Torii, Nigel B. Wood, Nearchos Hadjiloizou, Andrew W. Dowsey, Andrew R. Wright, Alun D. Hughes, Justin Davies, Darrel P. Francis, Jamil Mayet, Guang-Zhong Yang, Simon A. McG. Thom & X. Yun Xu. (2009) Fluid-structure interaction analysis of a patient-specific right coronary artery with physiological velocity and pressure waveforms. Communications in Numerical Methods in Engineering 25:5, pages 565-580.
Crossref
F. P. P. TAN, R. TORII, A. BORGHI, R. H. MOHIADDIN, N. B. WOOD & X. Y. XU. (2012) FLUID-STRUCTURE INTERACTION ANALYSIS OF WALL STRESS AND FLOW PATTERNS IN A THORACIC AORTIC ANEURYSM. International Journal of Applied Mechanics 01:01, pages 179-199.
Crossref
Erick Johnson, Yongjie Zhang & Kenji Shimada. 2009. Proceedings of the 18th International Meshing Roundtable. Proceedings of the 18th International Meshing Roundtable 397 414 .
M. Breeuwer, S. de Putter, U. Kose, L. Speelman, K. Visser, F. Gerritsen, R. Hoogeveen, R. Krams, H. van den Bosch, J. Buth, T. Gunther, B. Wolters, E. van Dam & F. van de Vosse. (2008) Towards patient-specific risk assessment of abdominal aortic aneurysm. Medical & Biological Engineering & Computing 46:11, pages 1085-1095.
Crossref

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.