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首页> 外文期刊>Intelligence: A Multidisciplinary Journal >Biomechanical Response under Stress-Controlled Tension-Tension Fatigue of a Novel Carbon Fiber/Epoxy Intramedullary Nail for Femur Fractures
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Biomechanical Response under Stress-Controlled Tension-Tension Fatigue of a Novel Carbon Fiber/Epoxy Intramedullary Nail for Femur Fractures

机译:股骨骨折新型碳纤维/环氧髓内钉胁迫下的生物力学反应

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摘要

Metallic intramedullary nails are the "gold standard" implant for repairing femur shaft fractures. However, their rigidity may eliminate axial micromotion at the fracture (causing delayed healing) and they may carry too much load relative to the femur (causing "stress shielding"). Consequently, some researchers have proposed fiber-reinforced composite nails, but only one evaluated cyclic fatigue performance. Therefore, this study assessed the cyclic fatigue response of a carbon fiber/epoxy nail with a novel ply stacking sequence of [O-2/-45/45(2)/-45/0/-45/45(2)/-45(2)/45(2)/-45/90(2)] previously developed by the present authors. Nails were cyclically loaded in tension-tension at 5 Hz with a stress ratio of R=0.1 from 30% - 85% of the material's ultimate tensile strength (UTS). Thermographic stress analysis, rather than conventional fatigue testing, was used to obtain high cycle fatigue strength (HCFS), below which the nail can be cyclically loaded indefinitely without damage. Also, the mechanical test machine's built-in load cell and an extensometer were used to create stress-strain curves, from which the change in static E-0 and dynamic E* moduli were obtained. Results showed that HCFS was 70.3% of UTS (or about 283 MPa), while E-0 and E* remained at 42 GPa without any dRegradation during testing. The current nail shows potential for clinical use. (C) 2020 IPEM. Published by Elsevier Ltd. All rights reserved.
机译:金属髓内钉是修复股骨轴骨折的“金标准”植入物。然而,它们的刚性可以消除裂缝处的轴向微观(导致延迟愈合),并且它们可以相对于股骨携带过多的负载(导致“应力屏蔽”)。因此,一些研究人员已经提出了纤维增强的复合钉,但只有一个评估的循环疲劳性能。因此,该研究评估了用[O-2 / -45 / 45(2)/ - 45/0 / -45 / 45 / -45(2)/ - 的新型层堆叠序列的碳纤维/环氧钉的循环疲劳反应。/ - 45(2)/ 45(2)/ - 45/90(2)]以前由本地作者开发。钉子在5Hz的张力张力下循环地装载张力,应力比为r = 0.1的30%-85% - 85%的材料的最终拉伸强度(UT)。热成分应力分析,而不是常规疲劳检测,用于获得高循环疲劳强度(HCF),下面,钉子可以无限期地循环加载而不会损坏。此外,使用机械测试机的内置称重传感器和扩展仪来产生应力 - 应变曲线,从中获得静态E-0和动态E *模态的变化。结果表明,HCFS为70.3%的UTS(或约283MPa),而E-0和E *仍然在测试期间没有任何散发的GPA。目前的指甲显示临床使用的可能性。 (c)2020 IPEM。 elsevier有限公司出版。保留所有权利。

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