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Modeling and simulation of nonlinear electro-thermo-mechanical continua with application to shape memory polymeric medical devices

机译:非线性电热 - 热机械延续应用塑造塑造聚合物医用装置的建模与仿真

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Shape memory materials have gained considerable attention thanks to their ability to change physical properties when subjected to external stimuli such as temperature, pH, humidity, electromagnetic fields, etc. These materials are increasingly used for a large number of biomedical applications. For applications inside the human body, contactless control can be achieved by the addition of electric and/or magnetic particles that can react to electromagnetic fields, thus leading to a composite biomaterial. The difficulty of developing accurate numerical models for smart materials results from their multiscale nature and from the multiphysics coupling of involved phenomena. This coupling involves electromagnetic, thermal and mechanical problems. This paper contributes to the multiphysics modeling of a shape memory polymer material used as a medical stent. The stent is excited by electromagnetic fields produced by a coil which can be wrapped around a failing organ. In this paper we develop large deformation formulations for the coupled electro-thermo-mechanical problem using the electric potential to solve the electric problem. The formulations are then discretized and solved using the finite element method. Results are validated by comparison with results in the literature. (C) 2019 Elsevier B.V. All rights reserved.
机译:由于它们在诸如温度,pH,湿度,电磁场等的外部刺激等外部刺激等时,它们的形状记忆材料具有相当大的关注。这些材料越来越多地用于大量的生物医学应用。对于人体内的应用,可以通过加入可以对电磁场反应的电和/或磁性颗粒来实现非接触式控制,从而导致复合生物材料。为智能材料开发精确数值模型的难度是由它们的多尺度的性质和涉及现象的多体耦合来产生的。该耦合涉及电磁,热和机械问题。本文有助于用作医用支架的形状记忆聚合物材料的多体造型建模。支架是由由线圈产生的电磁场激励,该线圈可以缠绕在失败的器官周围。在本文中,我们使用电位为耦合电热机械问题开发大变形配方以解决电力问题。然后使用有限元方法离散化并解决制剂。通过与文献结果进行比较验证了结果。 (c)2019 Elsevier B.v.保留所有权利。

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