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Cyclic pressure on compression-moulded bioresorbable phosphate glass fibre reinforced composites

机译:压缩模塑生物可吸收磷酸盐玻璃纤维增​​强复合材料的循环压力

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摘要

The use of thermoplastic composites based on poly(lactic) acid and phosphate glass fibres over metallic alloys for clinical restorative treatment is highly beneficial due to their biocompatibility and biodegradability. However, difficulties in achieving a thorough melt impregnation at high fibre contents while limiting polymer degradation is one of the main issues encountered during their manufacture. This paper reports for the first time on the effects of pressure cycling on the mechanical properties of compression moulded polylactic acid-phosphate glass fibre composites. The strength of the composites consolidated under pressure cycling were at least 30% higher than those in which conventional static pressure was used. The marked disparity was attributed to the influence of pressure cycling on the fibre preform permeability, the melt viscosity and the capillary pressure, leading to improved fibre wet-out with respect to static pressure. Implementation of a cyclic pressure appeared to promote the occurrence of transcrystallinity in the polymer matrix as suggested by DSC traces. The fibre content influenced PLA thermal degradation since the matrix molecular weight decreased as the fibre content increased on account of the moisture adsorbed by the glass surface. However, this extent of degradation did not impair the matrix mechanical performance in the composites.
机译:由于其生物相容性和生物降解性,在金属合金上使用基于聚乳酸和磷酸盐玻璃纤维的热塑性复合材料进行金属修复非常有用。然而,在高纤维含量下实现充分的熔体浸渍同时限制聚合物降解的困难是其制造过程中遇到的主要问题之一。本文首次报道了压力循环对压缩成型的聚乳酸-磷酸盐玻璃纤维复合材料力学性能的影响。在压力循环下固结的复合材料的强度比使用常规静压的强度高至少30%。明显的差异归因于压力循环对纤维预制棒渗透性,熔体粘度和毛细压力的影响,从而导致纤维相对于静压的浸润得到改善。如DSC迹线所示,施加循环压力似乎促进了聚合物基体中结晶性的发生。纤维含量影响PLA热降解,因为由于玻璃表面吸附的水分,随着纤维含量的增加,基质分子量降低,因此分子量降低。但是,这种降解程度不会损害复合材料的基体机械性能。

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