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Modeling and simulation of material degradation in biodegradable wound closure devices

机译:可生物降解伤口闭合装置中材料降解的建模和仿真

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Biodegradable materials have been used as wound closure materials. It is important for these materials to enhance wound healing when the wound is vulnerable, and maintain wound closure until the wound is heal. This article studies the degradation process of bioresorbable magnesium micro-clips for wound closure in voice/laryngeal microsurgery. A novel computational approach is proposed to model degradation of the biodegradable micro-clips. The degradation process that considers both material and geometry of the device as well as its deployment is modeled as an energy minimization problem that is iteratively solved using active contour and incremental finite element methods. Strain energy of the micro-clip during degradation is calculated with the stretching and bending functions in the active contour formulation. The degradation rate is computed from strain energy using a transformation formulation. By relating strain energy to material degradation, the degradation rates and geometries of the micro-clip during degradation can be represented using a simulated degradation map. Computer simulation of the degradation of the micro-clip presented in the study is validated by in vivo and in vitro experiments.
机译:可生物降解的材料已被用作伤口闭合材料。对于这些材料,重要的是在伤口易受伤时增强伤口愈合,并保持伤口闭合直至伤口愈合。本文研究了声音/喉显微外科手术中用于伤口闭合的生物可吸收镁微夹的降解过程。提出了一种新颖的计算方法来模拟可生物降解的微夹子的降解。同时考虑设备的材料和几何形状以及其部署的退化过程被建模为能量最小化问题,可以使用主动轮廓和增量有限元方法迭代地解决该问题。利用活动轮廓公式中的拉伸和弯曲功能,可以计算出降解过程中微夹子的应变能。使用转换公式根据应变能计算降解率。通过将应变能与材料降解相关联,可以使用模拟的降解图来表示降解过程中微夹子的降解速率和几何形状。通过体内和体外实验验证了该研究中微夹子降解的计算机模拟。

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