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On the Process-Related Rivet Microstructural Evolution Material Flow and Mechanical Properties of Ti-6Al-4V/GFRP Friction-Riveted Joints

机译:Ti-6Al-4V / GFRP摩擦铆接工艺相关的铆钉组织演变材料流动和力学性能

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摘要

In the current work, process-related thermo-mechanical changes in the rivet microstructure, joint local and global mechanical properties, and their correlation with the rivet plastic deformation regime were investigated for Ti-6Al-4V (rivet) and glass-fiber-reinforced polyester (GF-P) friction-riveted joints of a single polymeric base plate. Joints displaying similar quasi-static mechanical performance to conventional bolted joints were selected for detailed characterization. The mechanical performance was assessed on lap shear specimens, whereby the friction-riveted joints were connected with AA2198 gussets. Two levels of energy input were used, resulting in process temperatures varying from 460 ± 130 °C to 758 ± 56 °C and fast cooling rates (178 ± 15 °C/s, 59 ± 15 °C/s). A complex final microstructure was identified in the rivet. Whereas equiaxial α-grains with β-phase precipitated in their grain boundaries were identified in the rivet heat-affected zone, refined α′ martensite, Widmanstätten structures and β-fleck domains were present in the plastically deformed rivet volume. The transition from equiaxed to acicular structures resulted in an increase of up to 24% in microhardness in comparison to the base material. A study on the rivet material flow through microtexture of the α-Ti phase and β-fleck orientation revealed a strong effect of shear stress and forging which induced simple shear deformation. By combining advanced microstructural analysis techniques with local mechanical testing and temperature measurement, the nature of the complex rivet plastic deformational regime could be determined.
机译:在当前的工作中,研究了Ti-6Al-4V(铆钉)和玻璃纤维增​​强的铆钉微观结构,接头局部和整体力学性能及其与铆钉塑性变形机制的过程相关的热机械变化。单个聚合物基板的聚酯(GF-P)摩擦铆接接头。选择表现出与常规螺栓连接类似的准静态机械性能的接头进行详细表征。在搭接剪切试样上评估了机械性能,从而将铆接接头与AA2198角撑板相连。使用了两个级别的能量输入,从而使过程温度从460±130°C到758±56°C不等,并具有快速的冷却速度(178±15°C / s,59±15°C / s)。在铆钉中鉴定出复杂的最终微观结构。尽管在铆钉热影响区中发现了在其晶界中沉淀有β相的等轴α晶粒,但在塑性变形的铆钉体积中存在精制的α'马氏体,Widmanstätten结构和β斑点域。与基体材料相比,从等轴结构到针状结构的转变使显微硬度提高了24%。对铆钉材料流过α-Ti相和β斑点取向的微观组织的研究表明,剪切应力和锻造具有很强的作用,会引起简单的剪切变形。通过将先进的微结构分析技术与局部机械测试和温度测量相结合,可以确定复杂铆钉塑性变形形式的性质。

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