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A fracture mechanics interpretation of rolling bearing fatigue

机译:滚动轴承疲劳的断裂力学解释

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摘要

In fatigue assessment of structures and components, it is now commonplace to use a defect-tolerant approach to account for the inevitable presence of surface and internal flaws, both detectable and undetectable. This approach has been applied to rolling bearings in an attempt to present contact stress limits as a function of defect size below which fatigue failure would not be expected. In essence, it is an extension to the existing rating life methods developed by Ioannides and Harris that incorporate a fatigue limit stress in the estimation of bearing life, a concept similar to that of the endurance limit in structural fatigue. Such a fracture mechanics approach to sub-surface initiated fatigue in rolling bearing steels containing non-metallic inclusions, based upon the work of Murakami, has led to an allowable contact stress limit as a function of maximum inclusion size (as estimated by extreme value analysis). An alternative, less conservative fracture mechanics based stress limit is the prevention of propagation of cracks formed on inclusions (termed 'butterflies') by shear (Mode II) loading. The approach has been developed by examination of butterflies formed in service in rolling element bearings manufactured in bainitic steel with maximum inclusion sizes in excess of 100 μm. The observed lack of micro-crack formation on inclusions and non-propagation of butterflies support the concept of a fatigue endurance limit that is related to the cleanliness of the bearing steel.
机译:在结构和部件的疲劳评估中,现在普遍使用容错方法来解决不可避免存在的可检测和不可检测的表面和内部缺陷。该方法已被应用于滚动轴承,以试图根据缺陷尺寸呈现接触应力极限,在该极限值以下将不会发生疲劳失效。从本质上讲,它是对Ioannides和Harris所开发的现有额定寿命方法的扩展,该方法将疲劳极限应力纳入轴承寿命的估算中,该概念类似于结构疲劳的耐久性极限。基于村上的工作,采用这种断裂力学方法来处理含非金属夹杂物的滚动轴承钢中的表面下引起的疲劳,已导致允许的接触应力极限随最大夹杂物尺寸的变化而变化(通过极值分析估算) )。另一种不太保守的基于断裂力学的应力极限是通过剪切(模式II)载荷防止夹杂物(称为“蝴蝶”)上形成的裂纹扩展。该方法是通过检查使用贝氏体钢制造的滚动轴承中形成的蝶形零件开发出来的,最大夹杂物尺寸超过100μm。观察到的夹杂物上没有微裂纹的形成以及蝴蝶的不扩散支持了与轴承钢的清洁度有关的疲劳极限的概念。

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