"Effect of freezing on the passive mechanical properties of arterial samples"
written by Jorge O. Virues Delgadillo, Sebastien Delorme, Rouwayda El-Ayoubi, Robert DiRaddo, Savvas G. Hatzikiriakos,
published by Journal of Biomedical Science and Engineering, Vol.3 No.7, 2010
has been cited by the following article(s):
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[1] Effect of Freezing and Thawing on the Biomechanical Characteristics of Porcine Ocular Tissues
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[8] Age-Dependent Changes in Geometry, Tissue Composition and Mechanical Properties of Fetal to Adult Cryopreserved Human Heart Valves
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[13] Characterization of the Toughness and Elastic Properties of Fresh and Cryopreserved Arteries
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[14] Modeling the Propagation of Aortic Dissection
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[15] Effect of sample preservation on stress softening and permanent set of porcine skin
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[16] Large Deformation Characterization of Porcine Thoracic Aortas: Inverse Modeling Fitting of Uniaxial and Biaxial Tests
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[17] Age-dependent changes of stress and strain in the human heart valve and their relation with collagen remodeling
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[18] Characterization of Calcified Plaques Retrieved From Occluded Arteries and Comparison With Potential Artificial Analogues
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[19] The biaxial mechanical behaviour of abdominal aortic aneurysm intraluminal thrombus: Classification of morphology and the determination of layer and region specific properties
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[20] The impact of long term freezing on the mechanical properties of porcine aortic tissue
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[21] Mechanics of the pulmonary valve in the aortic position
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[22] Differential mechanical response and microstructural organization between non-human primate femoral and carotid arteries
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[23] Tension to passively cinch the mitral annulus through coronary sinus access: An ex vivo study in ovine model
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[24] Changes in mechanical, structural integrity and microbiological properties following cryopreservation of human cadaveric iliac arteries
[25] The biaxial mechanical behaviour of abdominal aortic aneurysm intraluminal thrombus: classification of morphology and the determination of layer and region …
[26] Characterization of heterogeneous material properties of aorta using nanoindentation
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[27] Comparison of methods used to measure the thickness of soft tissues and their influence on the evaluation of tensile stress
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[28] Mechanical analysis of ovine and pediatric pulmonary artery for heart valve stent design
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[29] Material properties of aged human mitral valve leaflets
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[30] Engineering Analysis of Minimally Invasive Mitral Valve Repair
[31] Development of biomimetic squid-inspired suckers
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[32] Multilayer material properties of aorta determined from nanoindentation tests
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[33] The contribution of vascular smooth muscle, elastin and collagen on the passive mechanics of porcine carotid arteries
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[34] Multilayer Quasi-Linear Viscoelastic Characterization of Porcine Aorta Using Nanoindentation
[35] Modeling collagen remodeling in tissue engineered cardiovascular tissues