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Injection moulding process: CFD evaluation on the orientation of polymeric chains for manufacturing heart valves.

机译:注塑工艺:CFD评估用于制造心脏瓣膜的聚合物链的取向。

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摘要

Introduction: Polymeric Heart Valve (PHV) prostheses aim at combining the hemodynamic advantages of biological valves with the durability of mechanical valves. Styrene Block Polymers (SBPs) appear to be the best materials for this application, because of their excellent biocompatibility, chemical stability and fatigue resistance. SBPs can be processed by injection moulding, allowing controlling the alignment of the polystyrene micro-chains. Aim of this work is to simulate the injection moulding process to analyse polymer chains orientation within the PHV leaflets and optimise manufacturing. Material and methods: Small Angle X-ray Scattering Analysis was performed on a thin membrane made of poly-(Styrene-Isoprene-Butadiene-Styrene) with 19% styrene (SI/BS19) manufactured by injection moulding, to visualise the polymer chains orientation in the material. Based on these data a total of six numerical models (Fluent®14.0, ANSYS Inc., Canonsburg, PA, USA) of the PHV mould differing in the polymer injection inlets and outlets were developed. A hexahedral mesh, including approximately 1,000,000 cells was used. The Carreau Model was used to describe SI/BS19 rheology. Data from the\udcomputational analysis were used to calculate the directions along which the polymer chains were aligned. Results: SI/BS19 chains orientation along the leaflets is mainly perpendicular to the flow direction of the polymer. Polymer chains orientation along the leaflets does not change significantly when different locations of the injectors are considered. Also different polymer mass flow rates exerts negligible effects on the polymer chains orientation. Discussion: The numerical model allowed a reliable simulation of the injection moulding process showing that a different location of the injectors do\udnot affect polymer chains orientation as well as different mass flow rates of the polymer. These results allow the optimisation of the moulding process in terms of minimisation of the manufacturing time duration.
机译:简介:人工心脏瓣膜(PHV)假体旨在将生物瓣膜的血液动力学优势与机械瓣膜的耐用性相结合。苯乙烯嵌段聚合物(SBP)由于具有出色的生物相容性,化学稳定性和抗疲劳性,因此似乎是该应用的最佳材料。 SBP可以通过注塑成型加工,从而可以控制聚苯乙烯微链的排列。这项工作的目的是模拟注射成型过程,以分析PHV传单内的聚合物链取向并优化制造。材料和方法:小角X射线散射分析是通过注塑成型的聚(苯乙烯-异戊二烯-丁二烯-苯乙烯)与19%苯乙烯(SI / BS19)制成的薄膜进行的,以可视化聚合物链的取向在材料上。根据这些数据,开发了六个在聚合物注入口和出口处不同的PHV模具的数值模型(Fluent®14.0,ANSYS Inc.,Canonsburg,PA,美国)。使用包括大约1,000,000个单元的六面体网格。 Carreau模型用于描述SI / BS19流变学。来自计算分析的数据用于计算聚合物链排列的方向。结果:沿着小叶的SI / BS19链取向主要垂直于聚合物的流动方向。当考虑到注射器的不同位置时,沿着小叶的聚合物链取向不会显着改变。同样,不同的聚合物质量流速对聚合物链的取向影响可忽略不计。讨论:数值模型可以对注射成型过程进行可靠的模拟,表明注射器的不同位置不会影响聚合物链的取向以及聚合物的质量流量。这些结果允许在最小化制造持续时间方面优化模制工艺。

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