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首页> 外文期刊>Journal of neurosurgical sciences >Single-phase friction riveting: metallic rivet deformation, temperature evolution, and joint mechanical performance
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Single-phase friction riveting: metallic rivet deformation, temperature evolution, and joint mechanical performance

机译:单相摩擦铆接:金属铆钉变形,温度演化和联合机械性能

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摘要

The present work explores the feasibility of single-phase friction riveting on unreinforced thermoplastics. In single phase, the load is kept constant throughout the process, avoiding the forging phase with higher axial force, used in the conventional process. This process variant can constitute an answer when payload restrictions exist. The results demonstrate the feasibility of single-phase friction riveting on unreinforced polyetherimide plates joined by AA2024 rivets with 5 mm of diameter. A Box-Behnken design of experiments and analysis of variance were used to set parameter matrix and understand the correlations between parameters and joint properties. A large variation of the mechanical energy input was observed (151-529 J). Over-deformation and material rupture were observed in higher energy conditions. Lower energy input yielded a bell-shaped rivet plastic deformation, corresponding to the best performance. The maximum process temperatures varied between 461 and 509 degrees C. This friction riveting process variant allowed a considerable high mechanical strength to be achieved, with ultimate tensile force of 7486 N, comparable with the two-phase friction riveting process, albeit applying lower axial forces, such as 2400 N. Within the investigated conditions, this study proves the feasibility of the single-phase process, achieving good global mechanical performance and energetically efficient conditions, without forging phase.
机译:目前的工作探讨了单相摩擦铆接对未粘接的热塑性塑料的可行性。在单相中,在整个过程中,负载保持恒定,避免具有较高轴向力的锻造相位,用于传统过程中。当存在有效载荷限制时,此过程变体可以构成答案。结果表明,通过直径为5mm的AA2024铆钉,单相摩擦铆接的单相摩擦铆接的可行性。用于设定参数矩阵并了解参数矩阵和联合性能之间的相关性的Box-Behnken设计。观察到机械能输入的大变化(151-529 j)。在更高的能量条件下观察到过度变形和材料破裂。较低的能量输入产生钟形铆钉塑性变形,对应于最佳性能。最大过程温度在461和509摄氏度之间变化。该摩擦铆接过程变体允许实现相当大的高机械强度,具有7486n的极限拉力,与两相摩擦铆接过程相当,尽管施加下轴向力,如在调查条件下,本研究证明了单相过程的可行性,实现了良好的全球机械性能和能源有效的条件,而无需锻造阶段。

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