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Behavior of alloy Ti―6Al―4V under pre-fretting and subsequent fatigue conditions

机译:Ti-6Al-4V合金在预微动及后续疲劳条件下的行为

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The mechanical behavior and microstructural changes in Ti―6Al―4V were determined in fretting tests, followed by axial fatigue tests. Prior to fatigue testing, specimens were subjected to fretting conditions over a range of contact stresses and fretting displacements. Fretting frequency was 100 Hz. High cycle fatigue (HCF) tests were run at 1000 Hz. The fretting test involved a flat-on-flat, bare Ti―6Al―4V/bare Ti―6Al―4V fretting system. The fretting process typically generated very shallow surface cracks at the ends of the wear scar. Subsequently, these shallow cracks were observed to propagate in axial fatigue tests, reducing the fatigue life significantly. Evidence of frictional heating during fretting was observed in the formation of scale-like oxide in the wear scar. Formation of oxides appeared to increase with increasing contact stress. Increased oxygen content was detected in the near surface regions of specimens. Large near surface deformation was typically observed within the wear scar. The contact geometry and slight tilting of the stationary fretting pad influenced the character of the fretting scar and the fretting-induced cracking. Fracture surfaces exhibited featureless, battered surfaces at the crack origins followed by (a) cleavage-type crack propagation, (b) formation of fatigue striations, and (c) final ductile tearing.
机译:在微动试验中确定了Ti-6Al-4V的力学行为和微观结构变化,随后进行了轴向疲劳试验。在疲劳测试之前,将样品置于一系列接触应力和微动位移的微动条件下。微动频率为100Hz。高循环疲劳(HCF)测试以1000 Hz进行。微动测试包括平坦的,平坦的Ti-6Al-4V /裸Ti-6Al-4V微动系统。微动过程通常会在磨损痕迹的末端产生非常浅的表面裂纹。随后,观察到这些浅裂纹在轴向疲劳试验中扩展,从而显着降低了疲劳寿命。在磨损痕迹中形成鳞片状氧化物的过程中,观察到了微动过程中摩擦加热的迹象。氧化物的形成似乎随着接触应力的增加而增加。在样品的近表面区域检测到氧含量增加。通常在磨损痕迹中观察到较大的近表面变形。固定的微动垫的接触几何形状和轻微倾斜会影响微动疤痕和微动引起的开裂的特性。断裂表面在裂纹起点处呈现出无特征的受虐表面,随后是(a)裂开型裂纹扩展,(b)疲劳条纹的形成以及(c)最终的韧性撕裂。

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