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Investigation of mechanical impact behavior of short carbon-fiber-reinforced PEEK composites

机译:短碳纤维增强PEEK复合材料的机械冲击性能研究

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This paper describes the results of an experimental and numerical investigation of the impact behavior of short carbon fiber reinforced polyether-ether-ketone (SCFR PEEK) composites. The biocompatibility of PEEK and its short fiber composites, their rapid processing by injection molding and suitability for modern imaging have supported technological advances in prosthetic implants used in orthopedic medicine. Surgical implants, including hip and cranial implants, can experience clinically significant impact loading during medical installation and useful life. While the incorporation of short fibers in a thermoplastic matrix can produce significant improvements in stiffness and strength, it can also cause a marked reduction in ductility, making study of their energy absorption capability essential. In this work, the mechanical impact behavior of PEEK composites reinforced with polyacrylonitrile (PAN) short carbon fibers 30% in weight is compared with unfilled PEEK. The perforation tests conducted covered an impact kinetic energy range from 21 J to 131 J, equivalent to the range observed in a fall, the leading cause of hip fractures. Energy absorption capability, damage extension and failure mechanism have been quantified and reported. A numerical modeling that includes homogenization of elastic material and anisotropic damage is presented and validated with experimental data. At all impact energies, SCFR PEEK composites showed a brittle failure and their absorption energy capability decreases drastically in comparison with unfilled PEEK. (C) 2015 Elsevier Ltd. All rights reserved.
机译:本文介绍了对短碳纤维增强聚醚醚酮(SCFR PEEK)复合材料的冲击行为进行实验和数值研究的结果。 PEEK及其短纤维复合材料的生物相容性,它们通过注射成型的快速加工以及对现代成像的适用性支持了整形外科用假体植入物的技术进步。外科植入物,包括髋关节和颅骨植入物,在医疗安装和使用寿命期间会承受临床上显着的冲击载荷。虽然在热塑性基体中掺入短纤维可以显着改善刚度和强度,但也会导致延展性显着降低,因此研究其能量吸收能力至关重要。在这项工作中,用重量比为30%的聚丙烯腈(PAN)短碳纤维增强的PEEK复合材料的机械冲击性能与未填充的PEEK进行了比较。进行的穿孔测试覆盖了21 J至131 J的冲击动能范围,相当于秋天跌落的幅度,跌倒是髋部骨折的主要原因。能量吸收能力,破坏扩展和破坏机理已被量化和报道。提出了包括弹性材料均质化和各向异性损伤在内的数值模型,并通过实验数据进行了验证。在所有冲击能量下,SCFR PEEK复合材料均表现出脆性破坏,与未填充的PEEK相比,其吸收能能力急剧下降。 (C)2015 Elsevier Ltd.保留所有权利。

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