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Surface Roughness and Deformation of Grain during Tensile Plastic Deformation of Polycrystalline Titanium

机译:多晶钛拉伸塑性变形期间谷物的表面粗糙度和变形

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摘要

The surface folds formed due to plastic deformation and the deformation behaviors of two kinds of polycrystalline titanium with grain sizes of about 30mum and 150mum respectively have been consecutively observed and measured by the scanning probe microscope. The results show that the surface folds in two kinds of specimens were increased with the increase of strain, but their relative position were kept unchanged during deformation. A large amount of twins were formed in each grain when the plastic strain reached about 0.1, which resulted in some new plastic folds. However, these new plastic folds had no influence on the positions of the plastic folds in both specimens as a whole. The roughness, the maximum height difference, and the averaged slope angle of the microscope surface profile increase with the applied tensile strain. But the surface roughness of the specimens with large grains are 1.4 to 4 times higher than that of the specimens with small grains. Two sudden changes in roughness could be observed in the specimens with large grains while the roughness in the specimens with small grains were kept smoothly increased. The influence of grain size on the plastic mechanism and surface roughness were discussed.
机译:通过扫描探针显微镜连续观察和测量,通过塑性变形和两种具有约30mum和150mum的晶粒尺寸的两种多晶硅钛的变​​形行为形成的表面折叠。结果表明,随着应变的增加,两种样品中的表面折叠,但在变形期间它们的相对位置保持不变。当塑料应变达到约0.1时,在每个谷物中形成大量的双胞胎,导致一些新的塑料折叠。然而,这些新的塑料褶皱对整个标本中的塑料折叠的位置没有影响。显微镜表面轮廓的粗糙度,最大高度差和平均倾斜角度随着施加的拉伸应变而增加。但具有大晶粒的样品的表面粗糙度比具有小颗粒的标本高1.4〜4倍。可以在具有大颗粒的标本中观察到粗糙度的两个突然变化,而具有小晶粒的标本中的粗糙度保持平滑地增加。讨论了晶粒尺寸对塑料机理和表面粗糙度的影响。

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