Trentadue F, De Tommasi D, Puglisi G
Dipartimento di Scienze dell'Ingegneria Civile e dell'Architettura, Politecnico di Bari, Via Re David 200, 70125, Bari, Italy.
Dipartimento di Scienze dell'Ingegneria Civile e dell'Architettura, Politecnico di Bari, Via Re David 200, 70125, Bari, Italy.
J Mech Behav Biomed Mater. 2021 Mar;115:104277. doi: 10.1016/j.jmbbm.2020.104277. Epub 2020 Dec 22.
An effective description of the mechanical behavior of biodegradable copolymers suture threads requires the analysis of their response under cyclic loading and the prediction of the fundamental damage and residual stretches effects. In this paper we propose a micromechanically-based model adopting a new form of Worm Like Chain free energy for the copolymer chains, which takes care of the insurgence of residual stretches on the basis of a rigorous statistical mechanics result. Under the affinity hypothesis we subsequently derive the macroscopic response of the material. The obtained model has a clear physical interpretation and depends on a small number of parameters, which can be fitted by a simple uniaxial test. The effectiveness of the theoretical results has then been verified by performing cyclic tests on Monocryl® monofilament sutures and showing the ability of the model in predicting with high accuracy the history dependence, the damage and permanent deformations in the obtained response.
对可生物降解共聚物缝合线的力学行为进行有效描述,需要分析其在循环载荷下的响应,并预测基本损伤和残余拉伸效应。在本文中,我们提出了一种基于微观力学的模型,该模型采用了一种新形式的蠕虫状链自由能来描述共聚物链,它基于严格的统计力学结果考虑了残余拉伸的出现。在亲和性假设下,我们随后推导出了材料的宏观响应。所得到的模型具有清晰的物理解释,并且依赖于少量参数,这些参数可以通过简单的单轴试验进行拟合。通过对Monocryl®单丝缝合线进行循环试验,并展示该模型在高精度预测所得响应中的历史依赖性、损伤和永久变形的能力,验证了理论结果的有效性。