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Mechanical characterisation of polyurethane elastomer for biomedical applications

机译:生物医学应用聚氨酯弹性体的机械特性

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摘要

Mechanical testing and modelling of a material for biomedical applications have to be based on conditions representative of the application of interest. In this work, an ether-based polyurethane elastomer is used to build mock arteries. The aim is to study the behaviour of arteries under pulsatile loading conditions and how that behaviour changes with the development and progression of atherosclerosis. Polyurethane elastomers are widely used as biomaterials, e.g. in tube form for bypasses and catheters. However, their mechanical behaviour has not been extensively characterised. This work establishes the variations in the behaviour of polyurethane elastomer with temperature, humidity and strain rate and also reports planar and equibiaxial tension, relaxation, creep and cyclic test results, providing a comprehensive characterisation of the material. Test results are used to determine the properties of the polyurethane elastomer and in the selection of a representative material model for future simulations of arterial behaviour and the development of atherosclerosis. The results show that the behaviour of the elastomer is significantly dependent on both humidity and temperature, with Young’s modulus of 7.4 MPa, 5.3 MPa and 4.7 MPa under dry-room temperature, wet-room temperature and wet at 37 ∘C conditions, respectively. The elastomer also exhibits rate-dependent viscoelastic behaviour. Yeoh’s hyperelastic material model provided the best fit to the entire range of experimental data. The Neo-Hookean model provides a good fit at small strain but significantly diverges at large strains. Nevertheless, in applications where deformations are relatively small, i.e. below 15%, the Neo-Hookean model can be used.
机译:用于生物医学应用的材料的机械测试和建模必须基于代表感兴趣应用的条件。在这项工作中,使用基于醚的聚氨酯弹性体来构建模拟动脉。目的是研究脉搏负荷条件下的动脉行为,以及该行为如何随动脉粥样硬化的发展和进展而变化。聚氨酯弹性体被广泛用作生物材料,例如聚氨酯。管形式,用于旁路和导管。但是,它们的机械性能尚未得到广泛表征。这项工作确定了聚氨酯弹性体的行为随温度,湿度和应变速率的变化,还报告了平面和等双轴拉伸,松弛,蠕变和循环测试结果,从而对材料进行了全面的表征。测试结果用于确定聚氨酯弹性体的性能,并在选择具有代表性的材料模型以用于将来的动脉行为模拟和动脉粥样硬化的发展。结果表明,弹性体的性能显着取决于湿度和温度,在室温,37℃和37℃条件下,杨氏模量分别为7.4 MPa,5.3 MPa和4.7 MPa。弹性体还表现出速率依赖性的粘弹性行为。 Yeoh的超弹性材料模型最适合整个实验数据范围。 Neo-Hookean模型在小应变时提供了很好的拟合度,但在大应变时却大相径庭。但是,在变形相对较小(即低于15%)的应用中,可以使用Neo-Hookean模型。

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