Biomechanical Characterization of Ascending Aortic Aneurysms
暂无分享,去创建一个
S. Dymarkowski | J. Vander Sloten | N. Famaey | H. Fehervary | B. Meuris | A. Jorge-Penas | P. Verbrugghe | M. Smoljkić | P. van den Bergh | Louis Kluyskens | Á. Jorge-Peñas
[1] Ambroise Duprey,et al. Biaxial rupture properties of ascending thoracic aortic aneurysms. , 2016, Acta biomaterialia.
[2] Boyce E. Griffith,et al. Mechanical strength of aneurysmatic and dissected human thoracic aortas at different shear loading modes. , 2016, Journal of biomechanics.
[3] J. Vander Sloten,et al. Planar biaxial testing of soft biological tissue using rakes: A critical analysis of protocol and fitting process. , 2016, Journal of the mechanical behavior of biomedical materials.
[4] Karol Miller,et al. A simple, effective and clinically applicable method to compute abdominal aortic aneurysm wall stress. , 2016, Journal of the mechanical behavior of biomedical materials.
[5] Salvatore Pasta,et al. Constitutive modeling of ascending thoracic aortic aneurysms using microstructural parameters. , 2016, Medical engineering & physics.
[6] Elena S. Di Martino,et al. Is There a Role for Biomechanical Engineering in Helping to Elucidate the Risk Profile of the Thoracic Aorta? , 2016, The Annals of thoracic surgery.
[7] Ambroise Duprey,et al. Patient specific stress and rupture analysis of ascending thoracic aneurysms. , 2015, Journal of biomechanics.
[8] J. Elefteriades,et al. Guilt by association: paradigm for detecting a silent killer (thoracic aortic aneurysm) , 2015, Open Heart.
[9] J Vander Sloten,et al. Non-invasive, energy-based assessment of patient-specific material properties of arterial tissue , 2015, Biomechanics and modeling in mechanobiology.
[10] David Saloner,et al. Ascending thoracic aortic aneurysm wall stress analysis using patient-specific finite element modeling of in vivo magnetic resonance imaging. , 2014, Interactive cardiovascular and thoracic surgery.
[11] Franz Maier,et al. Human thoracic and abdominal aortic aneurysmal tissues: Damage experiments, statistical analysis and constitutive modeling. , 2015, Journal of the mechanical behavior of biomedical materials.
[12] A. Duprey,et al. Predictive Models with Patient Specific Material Properties for the Biomechanical Behavior of Ascending Thoracic Aneurysms , 2015, Annals of Biomedical Engineering.
[13] Maciej Kozarski,et al. Reproduction of continuous flow left ventricular assist device experimental data by means of a hybrid cardiovascular model with baroreflex control. , 2014, Artificial organs.
[14] Elena S. Di Martino,et al. Mechano-biology in the thoracic aortic aneurysm: a review and case study , 2014, Biomechanics and modeling in mechanobiology.
[15] Wei Sun,et al. Predictive biomechanical analysis of ascending aortic aneurysm rupture potential. , 2013, Acta biomaterialia.
[16] Wei Sun,et al. Age-Dependent Ascending Aorta Mechanics Assessed Through Multiphase CT , 2013, Annals of Biomedical Engineering.
[17] John A Elefteriades,et al. Natural history of thoracic aortic aneurysms: size matters, plus moving beyond size. , 2013, Progress in cardiovascular diseases.
[18] Michael D Hope,et al. Biomechanical properties of human ascending thoracic aortic aneurysms. , 2013, The Annals of thoracic surgery.
[19] J. Bavaria,et al. Peak wall stress predicts expansion rate in descending thoracic aortic aneurysms. , 2013, The Annals of thoracic surgery.
[20] Peter Regitnig,et al. Layer-specific damage experiments and modeling of human thoracic and abdominal aortas with non-atherosclerotic intimal thickening. , 2012, Journal of the mechanical behavior of biomedical materials.
[21] C. Pfueller,et al. Multiple sclerosis lesions and irreversible brain tissue damage: a comparative ultrahigh-field strength magnetic resonance imaging study. , 2012, Archives of neurology.
[22] Claudio M. García-Herrera,et al. Mechanical behaviour and rupture of normal and pathological human ascending aortic wall , 2012, Medical & Biological Engineering & Computing.
[23] Maciej Kozarski,et al. A modular computational circulatory model applicable to VAD testing and training , 2012, Journal of Artificial Organs.
[24] Yanhang Zhang,et al. Changes in the mechanical and biochemical properties of aortic tissue due to cold storage. , 2011, The Journal of surgical research.
[25] Madhavan L Raghavan,et al. Biomechanical failure properties and microstructural content of ruptured and unruptured abdominal aortic aneurysms. , 2011, Journal of biomechanics.
[26] K. Khanafer,et al. Determination of the elastic modulus of ascending thoracic aortic aneurysm at different ranges of pressure using uniaxial tensile testing. , 2011, The Journal of thoracic and cardiovascular surgery.
[27] J Swedenborg,et al. Biomechanical rupture risk assessment of abdominal aortic aneurysms: model complexity versus predictability of finite element simulations. , 2010, European journal of vascular and endovascular surgery : the official journal of the European Society for Vascular Surgery.
[28] R Berguer,et al. In vitro characterisation of physiological and maximum elastic modulus of ascending thoracic aortic aneurysms using uniaxial tensile testing. , 2010, European journal of vascular and endovascular surgery : the official journal of the European Society for Vascular Surgery.
[29] Urs Utzinger,et al. Microstructural and biomechanical alterations of the human aorta as a function of age and location , 2010, Biomechanics and modeling in mechanobiology.
[30] Ray W. Ogden,et al. Anisotropy and Nonlinear Elasticity in Arterial Wall Mechanics , 2009 .
[31] Dimitrios P Sokolis,et al. Ascending thoracic aortic aneurysms are associated with compositional remodeling and vessel stiffening but not weakening in age-matched subjects. , 2009, The Journal of thoracic and cardiovascular surgery.
[32] J. Xiong,et al. Measurement and analysis of ultimate mechanical properties, stress-strain curve fit, and elastic modulus formula of human abdominal aortic aneurysm and nonaneurysmal abdominal aorta. , 2008, Journal of vascular surgery.
[33] S. Allender,et al. European cardiovascular disease statistics , 2008 .
[34] K. Eagle,et al. Aortic Diameter ≥5.5 cm Is Not a Good Predictor of Type A Aortic Dissection: Observations From the International Registry of Acute Aortic Dissection (IRAD) , 2007, Circulation.
[35] Narayan Yoganandan,et al. Mechanics of fresh, refrigerated, and frozen arterial tissue. , 2007, The Journal of surgical research.
[36] Jonathan P Vande Geest,et al. A Biomechanics‐Based Rupture Potential Index for Abdominal Aortic Aneurysm Risk Assessment , 2006, Annals of the New York Academy of Sciences.
[37] John A Elefteriades,et al. Novel measurement of relative aortic size predicts rupture of thoracic aortic aneurysms. , 2006, The Annals of thoracic surgery.
[38] V. Barocas,et al. Effects of Freezing and Cryopreservation on the Mechanical Properties of Arteries , 2006, Annals of Biomedical Engineering.
[39] R. Ogden,et al. Hyperelastic modelling of arterial layers with distributed collagen fibre orientations , 2006, Journal of The Royal Society Interface.
[40] John A Elefteriades,et al. Mechanical deterioration underlies malignant behavior of aneurysmal human ascending aorta. , 2005, The Journal of thoracic and cardiovascular surgery.
[41] M J Fagan,et al. A comparative study of aortic wall stress using finite element analysis for ruptured and non-ruptured abdominal aortic aneurysms. , 2004, European journal of vascular and endovascular surgery : the official journal of the European Society for Vascular Surgery.
[42] Thoralf M Sundt,et al. The influence of mechanical properties on wall stress and distensibility of the dilated ascending aorta. , 2003, The Journal of thoracic and cardiovascular surgery.
[43] Bartley P Griffith,et al. Effect of aneurysm on the tensile strength and biomechanical behavior of the ascending thoracic aorta. , 2003, The Annals of thoracic surgery.
[44] Mark F Fillinger,et al. Prediction of rupture risk in abdominal aortic aneurysm during observation: wall stress versus diameter. , 2003, Journal of vascular surgery.