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首页> 外文期刊>Tribology in Industry >Wear Resistance and Mechanical Behaviour of Epoxy/Mollusk Shell Biocomposites developed for Structural Applications
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Wear Resistance and Mechanical Behaviour of Epoxy/Mollusk Shell Biocomposites developed for Structural Applications

机译:为结构应用开发的环氧树脂/软体动物壳生物复合材料的耐磨性和力学行为

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Epoxy resin is one of the strongest commercially exploitable thermosetting polymers in the polymer family; however its expensive nature in comparison with other thermosetting polymers such as vinylester and polyester limits its applications as a structural material. Inexpensive fillers on the other hand, especially those derived from agro-industrial wastes are very important in reducing the overall cost of polymer composites and furthermore influential in enhancing some of their engineering properties. In the present study, the wear resistance and mechanical behaviour of epoxy polymer matrix filled with <75 and 75 μm calcined particles of African land snail shells have been comparatively investigated. The wear resistance and the mechanical behaviour of the composites were studied via Taber Abraser and INSTRON universal testing machine. Also, the elemental constituents of the calcined snail shell and the epoxy biocomposites were characterized by X-Ray Fluorescence Spectroscopy and Scanning Electron Microscopy/Energy Dispersion Spectroscopy. From the experimental results, it was observed that, at the highest filler loading, smaller particle size presented a biocomposite with significant enhancement in wear and mechanical properties. However, it was also observed that increase in particle size showed no significant enhancement in the mechanical properties of the biocomposites.
机译:环氧树脂是聚合物家族中最强的可商业利用的热固性聚合物之一。但是,与其他热固性聚合物(如乙烯基酯和聚酯)相比,其昂贵的性质限制了其作为结构材料的应用。另一方面,廉价的填料,尤其是那些来自农业工业废料的填料,对于降低聚合物复合材料的总成本非常重要,并且在提高其某些工程性能方面也具有影响力。在本研究中,已对填充有<75和75μm的非洲陆地蜗牛壳煅烧颗粒的环氧聚合物基质的耐磨性和力学性能进行了比较研究。通过Taber Abraser和INSTRON万能试验机研究了复合材料的耐磨性和机械性能。而且,通过X射线荧光光谱法和扫描电子显微镜/能量分散光谱法对煅烧的蜗牛壳和环氧生物复合材料的元素成分进行了表征。从实验结果可以看出,在最高填充量的情况下,较小的颗粒尺寸呈现出生物复合材料,其磨损和机械性能得到了显着提高。然而,还观察到,粒径的增加没有显示出生物复合材料的机械性能的显着提高。

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