牛骨粒度分布对牛骨增强聚酯复合材料力学性能的影响。

Biotechnology Research International Pub Date : 2013-01-01 Epub Date: 2013-11-14 DOI:10.1155/2013/725396
Isiaka Oluwole Oladele, Temitope Akinyemi Adewole
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引用次数: 31

摘要

本文研究了牛骨粒径分布对聚酯基复合材料力学性能的影响,以考虑该材料作为生物材料的适用性。牛骨从屠宰场采购,用水清洗,晒干4周后,用大锤粉碎,并用实验室球磨机进一步粉碎。对骨粉进行筛分,筛分尺寸分别为75 μm、106 μm和300 μm。复合材料是通过使用预定比例的2,4,6和8%将它们浇铸到拉伸和弯曲试验模具中来开发的。固化后的样品从模具中剥离,在室温下进一步固化3周,然后对其进行拉伸和弯曲试验。拉伸和弯曲强度从75 μm大幅提高了8 wt%,韧性从300 μm大幅提高了6 wt%和8 wt%。这表明,细颗粒导致强度提高,而粗颗粒导致韧性提高。结果表明,这些材料在结构上是相容的,是由动物纤维基颗粒发展而来的;作为生物材料,它也有助于与表面条件的相容性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Influence of cow bone particle size distribution on the mechanical properties of cow bone-reinforced polyester composites.

Influence of cow bone particle size distribution on the mechanical properties of cow bone-reinforced polyester composites.

Influence of cow bone particle size distribution on the mechanical properties of cow bone-reinforced polyester composites.

Influence of cow bone particle size distribution on the mechanical properties of cow bone-reinforced polyester composites.

This work was carried out to investigate the influence of cow bone particle size distribution on the mechanical properties of polyester matrix composites in order to consider the suitability of the materials as biomaterials. Cow bone was procured from an abattoir, washed with water, and sun-dried for 4 weeks after which it was crushed with a sledge hammer and was further pulverized with laboratory ball mill. Sieve size analysis was carried out on the pulverized bone where it was sieved into three different sizes of 75, 106, and 300 μm sieve sizes. Composite materials were developed by casting them into tensile and flexural tests moulds using predetermined proportions of 2, 4, 6, and 8%. The samples after curing were striped from the moulds and were allowed to be further cured at room temperature for 3 weeks before tensile and flexural tests were performed on them. Both tensile and flexural strength were highly enhanced by 8 wt% from 75 μm while toughness was highly enhanced by 6 and 8 wt% from 300 μm. This shows that fine particles lead to improved strength while coarse particles lead to improved toughness. The results show that these materials are structurally compatible and are being developed from animal fibre based particle; it is expected to also aid the compatibility with the surface conditions as biomaterials.

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