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Experimental Investigation of the Blanked Surface of C5191 Phosphor Bronze Sheet over a Wide Range of Blanking Speeds

机译:C5191磷青铜板消隐表面在广泛的消隐速度下的实验研究

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摘要

The influence of blanking speed on the blanked surface quality of C5191 bronze phosphorus sheets, with a thickness of 0.12 mm, was systematically studied to demonstrate the mechanism under high speed blanking. The morphology and microstructure of the blanked edge were observed by using a variety of techniques, including optical microscopy (OM), scanning electron microscope (SEM), electron backscatter diffraction (EBSD), and transmission electron microscope (TEM). The results revealed that the local temperature and microhardness of the shear zone increased with the increase in blanking speed. Moreover, the quality of blanked edge significantly improved with the increase in blanking speed due to the combined influence of strain rate hardening and thermal softening. In addition, the blanked edge grains were elongated along the blanking direction and formed dislocation cells and sub-grains in some areas. The blanked edge is dominated by {000} <100> cubic texture at higher blanking speeds, and {112} <111> texture at lower blanking speeds. When punched at an ultra-high speed of 3000 strokes per minute (SPM 3000), the local area of the blanked edge exhibited distinct microstructural features, including low dislocation density, nanocrystals with high-angle grain boundaries, and significant differences in grain orientation. Additionally, the selected area electron diffraction (SAED) pattern exhibited a discontinuous ring-like structure, indicating the occurrence of adiabatic shearing with dynamic recrystallization.
机译:系统地研究了厚度为0.12mm的C5191青铜磷板的消隐表面质量的影响,以展示高速消隐下的机制。通过使用各种技术观察消隐边缘的形态和微观结构,包括光学显微镜(OM),扫描电子显微镜(SEM),电子背散射衍射(EBSD)和透射电子显微镜(TEM)。结果表明,剪切区的局部温度和微硬度随着消隐速度的增加而增加。此外,由于应变速率硬化和热软化的影响,消隐速度的增加显着改善了消隐速度的增加。另外,沿着消隐方向伸长凸缘的边缘晶粒并在一些区域形成位错细胞和亚粒。消隐边缘以更高的消隐速度为主导的{000} <100>立方纹理,{112} <111>以较低的消隐速度纹理。当以每分钟3000英尺的超高速度(SPM 3000)冲出(SPM 3000)时,消隐边缘的局部区域表现出不同的微观结构特征,包括低位脱位密度,具有高角度晶界的纳米晶体,以及晶粒取向的显着差异。另外,所选择的区域电子衍射(SAED)图案表现出不连续的环状结构,表明具有动态再结晶的绝热剪切的发生。

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