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contributor authorBoland, Enda L.
contributor authorGrogan, James A.
contributor authorMcHugh, Peter E.
date accessioned2017-11-25T07:18:31Z
date available2017-11-25T07:18:31Z
date copyright2017/3/5
date issued2017
identifier issn1932-6181
identifier othermed_011_02_021013.pdf
identifier urihttp://138.201.223.254:8080/yetl1/handle/yetl/4235221
description abstractCoronary stents made from degradable biomaterials such as magnesium alloy are an emerging technology in the treatment of coronary artery disease. Biodegradable stents provide mechanical support to the artery during the initial scaffolding period after which the artery will have remodeled. The subsequent resorption of the stent biomaterial by the body has potential to reduce the risk associated with long-term placement of these devices, such as in-stent restenosis, late stent thrombosis, and fatigue fracture. Computational modeling such as finite-element analysis has proven to be an extremely useful tool in the continued design and development of these medical devices. What is lacking in computational modeling literature is the representation of the active response of the arterial tissue in the weeks and months following stent implantation, i.e., neointimal remodeling. The phenomenon of neointimal remodeling is particularly interesting and significant in the case of biodegradable stents, when both stent degradation and neointimal remodeling can occur simultaneously, presenting the possibility of a mechanical interaction and transfer of load between the degrading stent and the remodeling artery. In this paper, a computational modeling framework is developed that combines magnesium alloy degradation and neointimal remodeling, which is capable of simulating both uniform (best case) and localized pitting (realistic) stent corrosion in a remodeling artery. The framework is used to evaluate the effects of the neointima on the mechanics of the stent, when the stent is undergoing uniform or pitting corrosion, and to assess the effects of the neointimal formation rate relative to the overall stent degradation rate (for both uniform and pitting conditions).
publisherThe American Society of Mechanical Engineers (ASME)
titleComputational Modeling of the Mechanical Performance of a Magnesium Stent Undergoing Uniform and Pitting Corrosion in a Remodeling Artery
typeJournal Paper
journal volume11
journal issue2
journal titleJournal of Medical Devices
identifier doi10.1115/1.4035895
journal fristpage21013
journal lastpage021013-10
treeJournal of Medical Devices:;2017:;volume( 011 ):;issue: 002
contenttypeFulltext


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